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gezelter |
411 |
!! |
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!! Copyright (c) 2005 The University of Notre Dame. All Rights Reserved. |
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!! |
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!! The University of Notre Dame grants you ("Licensee") a |
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!! non-exclusive, royalty free, license to use, modify and |
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!! redistribute this software in source and binary code form, provided |
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!! that the following conditions are met: |
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!! |
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!! 1. Acknowledgement of the program authors must be made in any |
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!! publication of scientific results based in part on use of the |
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!! program. An acceptable form of acknowledgement is citation of |
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!! the article in which the program was described (Matthew |
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!! A. Meineke, Charles F. Vardeman II, Teng Lin, Christopher |
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!! J. Fennell and J. Daniel Gezelter, "OOPSE: An Object-Oriented |
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!! Parallel Simulation Engine for Molecular Dynamics," |
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!! J. Comput. Chem. 26, pp. 252-271 (2005)) |
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!! |
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!! 2. Redistributions of source code must retain the above copyright |
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!! notice, this list of conditions and the following disclaimer. |
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!! |
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!! 3. Redistributions in binary form must reproduce the above copyright |
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!! notice, this list of conditions and the following disclaimer in the |
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!! documentation and/or other materials provided with the |
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!! distribution. |
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!! |
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!! This software is provided "AS IS," without a warranty of any |
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!! kind. All express or implied conditions, representations and |
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!! warranties, including any implied warranty of merchantability, |
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!! fitness for a particular purpose or non-infringement, are hereby |
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!! excluded. The University of Notre Dame and its licensors shall not |
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!! be liable for any damages suffered by licensee as a result of |
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!! using, modifying or distributing the software or its |
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!! derivatives. In no event will the University of Notre Dame or its |
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!! licensors be liable for any lost revenue, profit or data, or for |
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!! direct, indirect, special, consequential, incidental or punitive |
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!! damages, however caused and regardless of the theory of liability, |
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!! arising out of the use of or inability to use software, even if the |
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!! University of Notre Dame has been advised of the possibility of |
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!! such damages. |
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!! |
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module electrostatic_module |
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gezelter |
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gezelter |
411 |
use force_globals |
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use definitions |
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use atype_module |
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use vector_class |
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use simulation |
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use status |
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#ifdef IS_MPI |
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use mpiSimulation |
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#endif |
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implicit none |
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PRIVATE |
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gezelter |
602 |
#define __FORTRAN90 |
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#include "UseTheForce/DarkSide/fElectrostaticSummationMethod.h" |
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gezelter |
434 |
!! these prefactors convert the multipole interactions into kcal / mol |
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!! all were computed assuming distances are measured in angstroms |
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!! Charge-Charge, assuming charges are measured in electrons |
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gezelter |
411 |
real(kind=dp), parameter :: pre11 = 332.0637778_dp |
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gezelter |
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!! Charge-Dipole, assuming charges are measured in electrons, and |
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!! dipoles are measured in debyes |
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real(kind=dp), parameter :: pre12 = 69.13373_dp |
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!! Dipole-Dipole, assuming dipoles are measured in debyes |
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real(kind=dp), parameter :: pre22 = 14.39325_dp |
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!! Charge-Quadrupole, assuming charges are measured in electrons, and |
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!! quadrupoles are measured in 10^-26 esu cm^2 |
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!! This unit is also known affectionately as an esu centi-barn. |
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real(kind=dp), parameter :: pre14 = 69.13373_dp |
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gezelter |
411 |
|
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gezelter |
602 |
!! variables to handle different summation methods for long-range electrostatics: |
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integer, save :: summationMethod = NONE |
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chrisfen |
603 |
logical, save :: summationMethodChecked = .false. |
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gezelter |
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real(kind=DP), save :: defaultCutoff = 0.0_DP |
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logical, save :: haveDefaultCutoff = .false. |
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real(kind=DP), save :: dampingAlpha = 0.0_DP |
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logical, save :: haveDampingAlpha = .false. |
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real(kind=DP), save :: dielectric = 0.0_DP |
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logical, save :: haveDielectric = .false. |
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real(kind=DP), save :: constERFC = 0.0_DP |
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real(kind=DP), save :: constEXP = 0.0_DP |
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logical, save :: haveDWAconstants = .false. |
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public :: setElectrostaticSummationMethod |
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public :: setElectrostaticCutoffRadius |
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public :: setDampedWolfAlpha |
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public :: setReactionFieldDielectric |
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gezelter |
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public :: newElectrostaticType |
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public :: setCharge |
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public :: setDipoleMoment |
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public :: setSplitDipoleDistance |
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public :: setQuadrupoleMoments |
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public :: doElectrostaticPair |
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public :: getCharge |
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public :: getDipoleMoment |
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chrisfen |
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public :: pre22 |
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chuckv |
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public :: destroyElectrostaticTypes |
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gezelter |
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|
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type :: Electrostatic |
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integer :: c_ident |
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logical :: is_Charge = .false. |
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logical :: is_Dipole = .false. |
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logical :: is_SplitDipole = .false. |
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logical :: is_Quadrupole = .false. |
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chrisfen |
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logical :: is_Tap = .false. |
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gezelter |
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real(kind=DP) :: charge = 0.0_DP |
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real(kind=DP) :: dipole_moment = 0.0_DP |
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real(kind=DP) :: split_dipole_distance = 0.0_DP |
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real(kind=DP), dimension(3) :: quadrupole_moments = 0.0_DP |
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end type Electrostatic |
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type(Electrostatic), dimension(:), allocatable :: ElectrostaticMap |
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contains |
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gezelter |
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subroutine setElectrostaticSummationMethod(the_ESM) |
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integer, intent(in) :: the_ESM |
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if ((the_ESM .le. 0) .or. (the_ESM .gt. REACTION_FIELD)) then |
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call handleError("setElectrostaticSummationMethod", "Unsupported Summation Method") |
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endif |
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end subroutine setElectrostaticSummationMethod |
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subroutine setElectrostaticCutoffRadius(thisRcut) |
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real(kind=dp), intent(in) :: thisRcut |
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defaultCutoff = thisRcut |
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haveDefaultCutoff = .true. |
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end subroutine setElectrostaticCutoffRadius |
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subroutine setDampedWolfAlpha(thisAlpha) |
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real(kind=dp), intent(in) :: thisAlpha |
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dampingAlpha = thisAlpha |
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haveDampingAlpha = .true. |
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end subroutine setDampedWolfAlpha |
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subroutine setReactionFieldDielectric(thisDielectric) |
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real(kind=dp), intent(in) :: thisDielectric |
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dielectric = thisDielectric |
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haveDielectric = .true. |
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end subroutine setReactionFieldDielectric |
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gezelter |
411 |
subroutine newElectrostaticType(c_ident, is_Charge, is_Dipole, & |
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chrisfen |
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is_SplitDipole, is_Quadrupole, is_Tap, status) |
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gezelter |
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|
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gezelter |
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integer, intent(in) :: c_ident |
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logical, intent(in) :: is_Charge |
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logical, intent(in) :: is_Dipole |
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logical, intent(in) :: is_SplitDipole |
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logical, intent(in) :: is_Quadrupole |
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chrisfen |
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logical, intent(in) :: is_Tap |
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gezelter |
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integer, intent(out) :: status |
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integer :: nAtypes, myATID, i, j |
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status = 0 |
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myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) |
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gezelter |
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|
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gezelter |
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!! Be simple-minded and assume that we need an ElectrostaticMap that |
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!! is the same size as the total number of atom types |
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if (.not.allocated(ElectrostaticMap)) then |
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gezelter |
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|
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gezelter |
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nAtypes = getSize(atypes) |
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gezelter |
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gezelter |
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if (nAtypes == 0) then |
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status = -1 |
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return |
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end if |
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gezelter |
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gezelter |
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if (.not. allocated(ElectrostaticMap)) then |
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allocate(ElectrostaticMap(nAtypes)) |
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endif |
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gezelter |
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gezelter |
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end if |
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if (myATID .gt. size(ElectrostaticMap)) then |
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status = -1 |
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return |
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endif |
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gezelter |
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|
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gezelter |
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! set the values for ElectrostaticMap for this atom type: |
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ElectrostaticMap(myATID)%c_ident = c_ident |
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ElectrostaticMap(myATID)%is_Charge = is_Charge |
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ElectrostaticMap(myATID)%is_Dipole = is_Dipole |
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ElectrostaticMap(myATID)%is_SplitDipole = is_SplitDipole |
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ElectrostaticMap(myATID)%is_Quadrupole = is_Quadrupole |
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chrisfen |
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ElectrostaticMap(myATID)%is_Tap = is_Tap |
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gezelter |
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gezelter |
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end subroutine newElectrostaticType |
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subroutine setCharge(c_ident, charge, status) |
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integer, intent(in) :: c_ident |
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real(kind=dp), intent(in) :: charge |
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integer, intent(out) :: status |
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integer :: myATID |
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status = 0 |
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myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) |
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if (.not.allocated(ElectrostaticMap)) then |
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call handleError("electrostatic", "no ElectrostaticMap was present before first call of setCharge!") |
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status = -1 |
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return |
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end if |
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if (myATID .gt. size(ElectrostaticMap)) then |
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call handleError("electrostatic", "ElectrostaticMap was found to be too small during setCharge!") |
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status = -1 |
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return |
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endif |
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if (.not.ElectrostaticMap(myATID)%is_Charge) then |
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call handleError("electrostatic", "Attempt to setCharge of an atom type that is not a charge!") |
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status = -1 |
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return |
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gezelter |
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endif |
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gezelter |
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ElectrostaticMap(myATID)%charge = charge |
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end subroutine setCharge |
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subroutine setDipoleMoment(c_ident, dipole_moment, status) |
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integer, intent(in) :: c_ident |
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real(kind=dp), intent(in) :: dipole_moment |
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integer, intent(out) :: status |
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integer :: myATID |
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status = 0 |
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myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) |
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if (.not.allocated(ElectrostaticMap)) then |
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call handleError("electrostatic", "no ElectrostaticMap was present before first call of setDipoleMoment!") |
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status = -1 |
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return |
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end if |
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if (myATID .gt. size(ElectrostaticMap)) then |
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call handleError("electrostatic", "ElectrostaticMap was found to be too small during setDipoleMoment!") |
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status = -1 |
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return |
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endif |
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if (.not.ElectrostaticMap(myATID)%is_Dipole) then |
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call handleError("electrostatic", "Attempt to setDipoleMoment of an atom type that is not a dipole!") |
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status = -1 |
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return |
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endif |
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ElectrostaticMap(myATID)%dipole_moment = dipole_moment |
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end subroutine setDipoleMoment |
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subroutine setSplitDipoleDistance(c_ident, split_dipole_distance, status) |
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integer, intent(in) :: c_ident |
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real(kind=dp), intent(in) :: split_dipole_distance |
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integer, intent(out) :: status |
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integer :: myATID |
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status = 0 |
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myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) |
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if (.not.allocated(ElectrostaticMap)) then |
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call handleError("electrostatic", "no ElectrostaticMap was present before first call of setSplitDipoleDistance!") |
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status = -1 |
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return |
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end if |
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if (myATID .gt. size(ElectrostaticMap)) then |
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call handleError("electrostatic", "ElectrostaticMap was found to be too small during setSplitDipoleDistance!") |
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status = -1 |
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return |
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endif |
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if (.not.ElectrostaticMap(myATID)%is_SplitDipole) then |
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call handleError("electrostatic", "Attempt to setSplitDipoleDistance of an atom type that is not a splitDipole!") |
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status = -1 |
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return |
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endif |
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ElectrostaticMap(myATID)%split_dipole_distance = split_dipole_distance |
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end subroutine setSplitDipoleDistance |
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subroutine setQuadrupoleMoments(c_ident, quadrupole_moments, status) |
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integer, intent(in) :: c_ident |
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real(kind=dp), intent(in), dimension(3) :: quadrupole_moments |
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integer, intent(out) :: status |
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integer :: myATID, i, j |
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status = 0 |
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myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) |
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296 |
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if (.not.allocated(ElectrostaticMap)) then |
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call handleError("electrostatic", "no ElectrostaticMap was present before first call of setQuadrupoleMoments!") |
298 |
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status = -1 |
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return |
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end if |
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if (myATID .gt. size(ElectrostaticMap)) then |
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call handleError("electrostatic", "ElectrostaticMap was found to be too small during setQuadrupoleMoments!") |
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status = -1 |
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return |
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endif |
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if (.not.ElectrostaticMap(myATID)%is_Quadrupole) then |
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call handleError("electrostatic", "Attempt to setQuadrupoleMoments of an atom type that is not a quadrupole!") |
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status = -1 |
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return |
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endif |
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gezelter |
507 |
|
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gezelter |
411 |
do i = 1, 3 |
315 |
gezelter |
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ElectrostaticMap(myATID)%quadrupole_moments(i) = & |
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quadrupole_moments(i) |
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enddo |
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gezelter |
411 |
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end subroutine setQuadrupoleMoments |
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gezelter |
507 |
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gezelter |
411 |
function getCharge(atid) result (c) |
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integer, intent(in) :: atid |
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integer :: localError |
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real(kind=dp) :: c |
326 |
gezelter |
507 |
|
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gezelter |
411 |
if (.not.allocated(ElectrostaticMap)) then |
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call handleError("electrostatic", "no ElectrostaticMap was present before first call of getCharge!") |
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return |
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end if |
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gezelter |
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|
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gezelter |
411 |
if (.not.ElectrostaticMap(atid)%is_Charge) then |
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call handleError("electrostatic", "getCharge was called for an atom type that isn't a charge!") |
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return |
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endif |
336 |
gezelter |
507 |
|
337 |
gezelter |
411 |
c = ElectrostaticMap(atid)%charge |
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end function getCharge |
339 |
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function getDipoleMoment(atid) result (dm) |
341 |
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integer, intent(in) :: atid |
342 |
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integer :: localError |
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real(kind=dp) :: dm |
344 |
gezelter |
507 |
|
345 |
gezelter |
411 |
if (.not.allocated(ElectrostaticMap)) then |
346 |
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call handleError("electrostatic", "no ElectrostaticMap was present before first call of getDipoleMoment!") |
347 |
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return |
348 |
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end if |
349 |
gezelter |
507 |
|
350 |
gezelter |
411 |
if (.not.ElectrostaticMap(atid)%is_Dipole) then |
351 |
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call handleError("electrostatic", "getDipoleMoment was called for an atom type that isn't a dipole!") |
352 |
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return |
353 |
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endif |
354 |
gezelter |
507 |
|
355 |
gezelter |
411 |
dm = ElectrostaticMap(atid)%dipole_moment |
356 |
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end function getDipoleMoment |
357 |
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358 |
gezelter |
602 |
subroutine checkSummationMethod() |
359 |
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360 |
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if (summationMethod .eq. DAMPED_WOLF) then |
361 |
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if (.not.haveDWAconstants) then |
362 |
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363 |
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if (.not.haveDampingAlpha) then |
364 |
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call handleError("checkSummationMethod", "no Damping Alpha set!") |
365 |
|
|
endif |
366 |
|
|
|
367 |
chrisfen |
603 |
if (.not.haveDefaultCutoff) then |
368 |
|
|
call handleError("checkSummationMethod", "no Default Cutoff set!") |
369 |
|
|
endif |
370 |
|
|
|
371 |
|
|
constEXP = exp(-dampingAlpha*dampingAlpha*defaultCutoff*defaultCutoff) |
372 |
|
|
constERFC = erfc(dampingAlpha*defaultCutoff) |
373 |
gezelter |
602 |
|
374 |
|
|
haveDWAconstants = .true. |
375 |
|
|
endif |
376 |
|
|
endif |
377 |
|
|
|
378 |
chrisfen |
603 |
if (summationMethod .eq. REACTION_FIELD) then |
379 |
|
|
if (.not.haveDielectric) then |
380 |
|
|
call handleError("checkSummationMethod", "no reaction field Dielectric set!") |
381 |
|
|
endif |
382 |
|
|
endif |
383 |
|
|
|
384 |
|
|
summationMethodChecked = .true. |
385 |
gezelter |
602 |
end subroutine checkSummationMethod |
386 |
|
|
|
387 |
|
|
|
388 |
|
|
|
389 |
gezelter |
411 |
subroutine doElectrostaticPair(atom1, atom2, d, rij, r2, sw, & |
390 |
chrisfen |
597 |
vpair, fpair, pot, eFrame, f, t, do_pot, corrMethod, rcuti) |
391 |
gezelter |
507 |
|
392 |
gezelter |
411 |
logical, intent(in) :: do_pot |
393 |
gezelter |
507 |
|
394 |
gezelter |
411 |
integer, intent(in) :: atom1, atom2 |
395 |
|
|
integer :: localError |
396 |
chrisfen |
580 |
integer, intent(in) :: corrMethod |
397 |
gezelter |
411 |
|
398 |
chrisfen |
597 |
real(kind=dp), intent(in) :: rij, r2, sw, rcuti |
399 |
gezelter |
411 |
real(kind=dp), intent(in), dimension(3) :: d |
400 |
|
|
real(kind=dp), intent(inout) :: vpair |
401 |
|
|
real(kind=dp), intent(inout), dimension(3) :: fpair |
402 |
|
|
|
403 |
chrisfen |
597 |
real( kind = dp ) :: pot, swi |
404 |
gezelter |
411 |
real( kind = dp ), dimension(9,nLocal) :: eFrame |
405 |
|
|
real( kind = dp ), dimension(3,nLocal) :: f |
406 |
|
|
real( kind = dp ), dimension(3,nLocal) :: t |
407 |
gezelter |
507 |
|
408 |
gezelter |
439 |
real (kind = dp), dimension(3) :: ux_i, uy_i, uz_i |
409 |
|
|
real (kind = dp), dimension(3) :: ux_j, uy_j, uz_j |
410 |
|
|
real (kind = dp), dimension(3) :: dudux_i, duduy_i, duduz_i |
411 |
|
|
real (kind = dp), dimension(3) :: dudux_j, duduy_j, duduz_j |
412 |
gezelter |
411 |
|
413 |
|
|
logical :: i_is_Charge, i_is_Dipole, i_is_SplitDipole, i_is_Quadrupole |
414 |
|
|
logical :: j_is_Charge, j_is_Dipole, j_is_SplitDipole, j_is_Quadrupole |
415 |
chrisfen |
532 |
logical :: i_is_Tap, j_is_Tap |
416 |
gezelter |
411 |
integer :: me1, me2, id1, id2 |
417 |
|
|
real (kind=dp) :: q_i, q_j, mu_i, mu_j, d_i, d_j |
418 |
gezelter |
439 |
real (kind=dp) :: qxx_i, qyy_i, qzz_i |
419 |
|
|
real (kind=dp) :: qxx_j, qyy_j, qzz_j |
420 |
|
|
real (kind=dp) :: cx_i, cy_i, cz_i |
421 |
|
|
real (kind=dp) :: cx_j, cy_j, cz_j |
422 |
|
|
real (kind=dp) :: cx2, cy2, cz2 |
423 |
gezelter |
411 |
real (kind=dp) :: ct_i, ct_j, ct_ij, a1 |
424 |
gezelter |
421 |
real (kind=dp) :: riji, ri, ri2, ri3, ri4 |
425 |
chrisfen |
597 |
real (kind=dp) :: pref, vterm, epot, dudr, vterm1, vterm2 |
426 |
gezelter |
421 |
real (kind=dp) :: xhat, yhat, zhat |
427 |
gezelter |
411 |
real (kind=dp) :: dudx, dudy, dudz |
428 |
chrisfen |
532 |
real (kind=dp) :: scale, sc2, bigR, switcher, dswitcher |
429 |
chrisfen |
597 |
real (kind=dp) :: rcuti2, rcuti3, rcuti4 |
430 |
gezelter |
411 |
|
431 |
|
|
if (.not.allocated(ElectrostaticMap)) then |
432 |
|
|
call handleError("electrostatic", "no ElectrostaticMap was present before first call of do_electrostatic_pair!") |
433 |
|
|
return |
434 |
|
|
end if |
435 |
|
|
|
436 |
gezelter |
602 |
if (.not.summationMethodChecked) then |
437 |
|
|
call checkSummationMethod() |
438 |
|
|
endif |
439 |
|
|
|
440 |
|
|
|
441 |
gezelter |
411 |
#ifdef IS_MPI |
442 |
|
|
me1 = atid_Row(atom1) |
443 |
|
|
me2 = atid_Col(atom2) |
444 |
|
|
#else |
445 |
|
|
me1 = atid(atom1) |
446 |
|
|
me2 = atid(atom2) |
447 |
|
|
#endif |
448 |
|
|
|
449 |
|
|
!! some variables we'll need independent of electrostatic type: |
450 |
|
|
|
451 |
|
|
riji = 1.0d0 / rij |
452 |
|
|
|
453 |
gezelter |
421 |
xhat = d(1) * riji |
454 |
|
|
yhat = d(2) * riji |
455 |
|
|
zhat = d(3) * riji |
456 |
gezelter |
411 |
|
457 |
chrisfen |
597 |
rcuti2 = rcuti*rcuti |
458 |
|
|
rcuti3 = rcuti2*rcuti |
459 |
|
|
rcuti4 = rcuti2*rcuti2 |
460 |
|
|
|
461 |
|
|
swi = 1.0d0 / sw |
462 |
|
|
|
463 |
gezelter |
411 |
!! logicals |
464 |
|
|
i_is_Charge = ElectrostaticMap(me1)%is_Charge |
465 |
|
|
i_is_Dipole = ElectrostaticMap(me1)%is_Dipole |
466 |
|
|
i_is_SplitDipole = ElectrostaticMap(me1)%is_SplitDipole |
467 |
|
|
i_is_Quadrupole = ElectrostaticMap(me1)%is_Quadrupole |
468 |
chrisfen |
532 |
i_is_Tap = ElectrostaticMap(me1)%is_Tap |
469 |
gezelter |
411 |
|
470 |
|
|
j_is_Charge = ElectrostaticMap(me2)%is_Charge |
471 |
|
|
j_is_Dipole = ElectrostaticMap(me2)%is_Dipole |
472 |
|
|
j_is_SplitDipole = ElectrostaticMap(me2)%is_SplitDipole |
473 |
|
|
j_is_Quadrupole = ElectrostaticMap(me2)%is_Quadrupole |
474 |
chrisfen |
532 |
j_is_Tap = ElectrostaticMap(me2)%is_Tap |
475 |
gezelter |
411 |
|
476 |
|
|
if (i_is_Charge) then |
477 |
|
|
q_i = ElectrostaticMap(me1)%charge |
478 |
|
|
endif |
479 |
gezelter |
507 |
|
480 |
gezelter |
411 |
if (i_is_Dipole) then |
481 |
|
|
mu_i = ElectrostaticMap(me1)%dipole_moment |
482 |
|
|
#ifdef IS_MPI |
483 |
gezelter |
439 |
uz_i(1) = eFrame_Row(3,atom1) |
484 |
|
|
uz_i(2) = eFrame_Row(6,atom1) |
485 |
|
|
uz_i(3) = eFrame_Row(9,atom1) |
486 |
gezelter |
411 |
#else |
487 |
gezelter |
439 |
uz_i(1) = eFrame(3,atom1) |
488 |
|
|
uz_i(2) = eFrame(6,atom1) |
489 |
|
|
uz_i(3) = eFrame(9,atom1) |
490 |
gezelter |
411 |
#endif |
491 |
gezelter |
439 |
ct_i = uz_i(1)*xhat + uz_i(2)*yhat + uz_i(3)*zhat |
492 |
gezelter |
411 |
|
493 |
|
|
if (i_is_SplitDipole) then |
494 |
|
|
d_i = ElectrostaticMap(me1)%split_dipole_distance |
495 |
|
|
endif |
496 |
gezelter |
507 |
|
497 |
gezelter |
411 |
endif |
498 |
|
|
|
499 |
gezelter |
439 |
if (i_is_Quadrupole) then |
500 |
|
|
qxx_i = ElectrostaticMap(me1)%quadrupole_moments(1) |
501 |
|
|
qyy_i = ElectrostaticMap(me1)%quadrupole_moments(2) |
502 |
|
|
qzz_i = ElectrostaticMap(me1)%quadrupole_moments(3) |
503 |
|
|
#ifdef IS_MPI |
504 |
|
|
ux_i(1) = eFrame_Row(1,atom1) |
505 |
|
|
ux_i(2) = eFrame_Row(4,atom1) |
506 |
|
|
ux_i(3) = eFrame_Row(7,atom1) |
507 |
|
|
uy_i(1) = eFrame_Row(2,atom1) |
508 |
|
|
uy_i(2) = eFrame_Row(5,atom1) |
509 |
|
|
uy_i(3) = eFrame_Row(8,atom1) |
510 |
|
|
uz_i(1) = eFrame_Row(3,atom1) |
511 |
|
|
uz_i(2) = eFrame_Row(6,atom1) |
512 |
|
|
uz_i(3) = eFrame_Row(9,atom1) |
513 |
|
|
#else |
514 |
|
|
ux_i(1) = eFrame(1,atom1) |
515 |
|
|
ux_i(2) = eFrame(4,atom1) |
516 |
|
|
ux_i(3) = eFrame(7,atom1) |
517 |
|
|
uy_i(1) = eFrame(2,atom1) |
518 |
|
|
uy_i(2) = eFrame(5,atom1) |
519 |
|
|
uy_i(3) = eFrame(8,atom1) |
520 |
|
|
uz_i(1) = eFrame(3,atom1) |
521 |
|
|
uz_i(2) = eFrame(6,atom1) |
522 |
|
|
uz_i(3) = eFrame(9,atom1) |
523 |
|
|
#endif |
524 |
|
|
cx_i = ux_i(1)*xhat + ux_i(2)*yhat + ux_i(3)*zhat |
525 |
|
|
cy_i = uy_i(1)*xhat + uy_i(2)*yhat + uy_i(3)*zhat |
526 |
|
|
cz_i = uz_i(1)*xhat + uz_i(2)*yhat + uz_i(3)*zhat |
527 |
|
|
endif |
528 |
|
|
|
529 |
gezelter |
411 |
if (j_is_Charge) then |
530 |
|
|
q_j = ElectrostaticMap(me2)%charge |
531 |
|
|
endif |
532 |
gezelter |
507 |
|
533 |
gezelter |
411 |
if (j_is_Dipole) then |
534 |
|
|
mu_j = ElectrostaticMap(me2)%dipole_moment |
535 |
|
|
#ifdef IS_MPI |
536 |
gezelter |
439 |
uz_j(1) = eFrame_Col(3,atom2) |
537 |
|
|
uz_j(2) = eFrame_Col(6,atom2) |
538 |
|
|
uz_j(3) = eFrame_Col(9,atom2) |
539 |
gezelter |
411 |
#else |
540 |
gezelter |
439 |
uz_j(1) = eFrame(3,atom2) |
541 |
|
|
uz_j(2) = eFrame(6,atom2) |
542 |
|
|
uz_j(3) = eFrame(9,atom2) |
543 |
gezelter |
411 |
#endif |
544 |
chrisfen |
465 |
ct_j = uz_j(1)*xhat + uz_j(2)*yhat + uz_j(3)*zhat |
545 |
gezelter |
411 |
|
546 |
|
|
if (j_is_SplitDipole) then |
547 |
|
|
d_j = ElectrostaticMap(me2)%split_dipole_distance |
548 |
|
|
endif |
549 |
|
|
endif |
550 |
|
|
|
551 |
gezelter |
439 |
if (j_is_Quadrupole) then |
552 |
|
|
qxx_j = ElectrostaticMap(me2)%quadrupole_moments(1) |
553 |
|
|
qyy_j = ElectrostaticMap(me2)%quadrupole_moments(2) |
554 |
|
|
qzz_j = ElectrostaticMap(me2)%quadrupole_moments(3) |
555 |
|
|
#ifdef IS_MPI |
556 |
|
|
ux_j(1) = eFrame_Col(1,atom2) |
557 |
|
|
ux_j(2) = eFrame_Col(4,atom2) |
558 |
|
|
ux_j(3) = eFrame_Col(7,atom2) |
559 |
|
|
uy_j(1) = eFrame_Col(2,atom2) |
560 |
|
|
uy_j(2) = eFrame_Col(5,atom2) |
561 |
|
|
uy_j(3) = eFrame_Col(8,atom2) |
562 |
|
|
uz_j(1) = eFrame_Col(3,atom2) |
563 |
|
|
uz_j(2) = eFrame_Col(6,atom2) |
564 |
|
|
uz_j(3) = eFrame_Col(9,atom2) |
565 |
|
|
#else |
566 |
|
|
ux_j(1) = eFrame(1,atom2) |
567 |
|
|
ux_j(2) = eFrame(4,atom2) |
568 |
|
|
ux_j(3) = eFrame(7,atom2) |
569 |
|
|
uy_j(1) = eFrame(2,atom2) |
570 |
|
|
uy_j(2) = eFrame(5,atom2) |
571 |
|
|
uy_j(3) = eFrame(8,atom2) |
572 |
|
|
uz_j(1) = eFrame(3,atom2) |
573 |
|
|
uz_j(2) = eFrame(6,atom2) |
574 |
|
|
uz_j(3) = eFrame(9,atom2) |
575 |
|
|
#endif |
576 |
|
|
cx_j = ux_j(1)*xhat + ux_j(2)*yhat + ux_j(3)*zhat |
577 |
|
|
cy_j = uy_j(1)*xhat + uy_j(2)*yhat + uy_j(3)*zhat |
578 |
|
|
cz_j = uz_j(1)*xhat + uz_j(2)*yhat + uz_j(3)*zhat |
579 |
|
|
endif |
580 |
chrisfen |
554 |
|
581 |
|
|
!!$ switcher = 1.0d0 |
582 |
|
|
!!$ dswitcher = 0.0d0 |
583 |
|
|
!!$ ebalance = 0.0d0 |
584 |
|
|
!!$ ! weaken the dipole interaction at close range for TAP water |
585 |
|
|
!!$ if (j_is_Tap .and. i_is_Tap) then |
586 |
|
|
!!$ call calc_switch(rij, mu_i, switcher, dswitcher) |
587 |
|
|
!!$ endif |
588 |
gezelter |
439 |
|
589 |
gezelter |
411 |
epot = 0.0_dp |
590 |
|
|
dudx = 0.0_dp |
591 |
|
|
dudy = 0.0_dp |
592 |
|
|
dudz = 0.0_dp |
593 |
|
|
|
594 |
gezelter |
439 |
dudux_i = 0.0_dp |
595 |
|
|
duduy_i = 0.0_dp |
596 |
|
|
duduz_i = 0.0_dp |
597 |
gezelter |
411 |
|
598 |
gezelter |
439 |
dudux_j = 0.0_dp |
599 |
|
|
duduy_j = 0.0_dp |
600 |
|
|
duduz_j = 0.0_dp |
601 |
gezelter |
411 |
|
602 |
|
|
if (i_is_Charge) then |
603 |
|
|
|
604 |
|
|
if (j_is_Charge) then |
605 |
gezelter |
507 |
|
606 |
chrisfen |
597 |
if (corrMethod .eq. 1) then |
607 |
|
|
vterm = pre11 * q_i * q_j * (riji - rcuti) |
608 |
gezelter |
411 |
|
609 |
chrisfen |
597 |
vpair = vpair + vterm |
610 |
|
|
epot = epot + sw * vterm |
611 |
|
|
|
612 |
|
|
dudr = - sw * pre11 * q_i * q_j * (riji*riji*riji - rcuti2*rcuti) |
613 |
|
|
|
614 |
|
|
dudx = dudx + dudr * d(1) |
615 |
|
|
dudy = dudy + dudr * d(2) |
616 |
|
|
dudz = dudz + dudr * d(3) |
617 |
gezelter |
411 |
|
618 |
chrisfen |
597 |
else |
619 |
|
|
vterm = pre11 * q_i * q_j * riji |
620 |
gezelter |
507 |
|
621 |
chrisfen |
597 |
vpair = vpair + vterm |
622 |
|
|
epot = epot + sw * vterm |
623 |
|
|
|
624 |
|
|
dudr = - sw * vterm * riji |
625 |
|
|
|
626 |
|
|
dudx = dudx + dudr * xhat |
627 |
|
|
dudy = dudy + dudr * yhat |
628 |
|
|
dudz = dudz + dudr * zhat |
629 |
|
|
|
630 |
|
|
endif |
631 |
|
|
|
632 |
gezelter |
411 |
endif |
633 |
|
|
|
634 |
|
|
if (j_is_Dipole) then |
635 |
|
|
|
636 |
chrisfen |
597 |
pref = sw * pre12 * q_i * mu_j |
637 |
gezelter |
411 |
|
638 |
chrisfen |
597 |
if (corrMethod .eq. 1) then |
639 |
|
|
ri2 = riji * riji |
640 |
|
|
ri3 = ri2 * riji |
641 |
gezelter |
507 |
|
642 |
chrisfen |
597 |
vterm = - pref * ct_j * (ri2 - rcuti2) |
643 |
|
|
vpair = vpair + swi*vterm |
644 |
|
|
epot = epot + vterm |
645 |
|
|
|
646 |
|
|
!! this has a + sign in the () because the rij vector is |
647 |
|
|
!! r_j - r_i and the charge-dipole potential takes the origin |
648 |
|
|
!! as the point dipole, which is atom j in this case. |
649 |
|
|
|
650 |
|
|
dudx = dudx - pref * ( ri3*( uz_j(1) - 3.0d0*ct_j*xhat) & |
651 |
|
|
- rcuti3*( uz_j(1) - 3.0d0*ct_j*d(1)*rcuti ) ) |
652 |
|
|
dudy = dudy - pref * ( ri3*( uz_j(2) - 3.0d0*ct_j*yhat) & |
653 |
|
|
- rcuti3*( uz_j(2) - 3.0d0*ct_j*d(2)*rcuti ) ) |
654 |
|
|
dudz = dudz - pref * ( ri3*( uz_j(3) - 3.0d0*ct_j*zhat) & |
655 |
|
|
- rcuti3*( uz_j(3) - 3.0d0*ct_j*d(3)*rcuti ) ) |
656 |
|
|
|
657 |
|
|
duduz_j(1) = duduz_j(1) - pref*( ri2*xhat - d(1)*rcuti3 ) |
658 |
|
|
duduz_j(2) = duduz_j(2) - pref*( ri2*yhat - d(2)*rcuti3 ) |
659 |
|
|
duduz_j(3) = duduz_j(3) - pref*( ri2*zhat - d(3)*rcuti3 ) |
660 |
gezelter |
411 |
|
661 |
chrisfen |
597 |
else |
662 |
|
|
if (j_is_SplitDipole) then |
663 |
|
|
BigR = sqrt(r2 + 0.25_dp * d_j * d_j) |
664 |
|
|
ri = 1.0_dp / BigR |
665 |
|
|
scale = rij * ri |
666 |
|
|
else |
667 |
|
|
ri = riji |
668 |
|
|
scale = 1.0_dp |
669 |
|
|
endif |
670 |
|
|
|
671 |
|
|
ri2 = ri * ri |
672 |
|
|
ri3 = ri2 * ri |
673 |
|
|
sc2 = scale * scale |
674 |
|
|
|
675 |
|
|
vterm = - pref * ct_j * ri2 * scale |
676 |
|
|
vpair = vpair + swi * vterm |
677 |
|
|
epot = epot + vterm |
678 |
|
|
|
679 |
|
|
!! this has a + sign in the () because the rij vector is |
680 |
|
|
!! r_j - r_i and the charge-dipole potential takes the origin |
681 |
|
|
!! as the point dipole, which is atom j in this case. |
682 |
|
|
|
683 |
|
|
dudx = dudx - pref * ri3 * ( uz_j(1) - 3.0d0*ct_j*xhat*sc2) |
684 |
|
|
dudy = dudy - pref * ri3 * ( uz_j(2) - 3.0d0*ct_j*yhat*sc2) |
685 |
|
|
dudz = dudz - pref * ri3 * ( uz_j(3) - 3.0d0*ct_j*zhat*sc2) |
686 |
|
|
|
687 |
|
|
duduz_j(1) = duduz_j(1) - pref * ri2 * xhat * scale |
688 |
|
|
duduz_j(2) = duduz_j(2) - pref * ri2 * yhat * scale |
689 |
|
|
duduz_j(3) = duduz_j(3) - pref * ri2 * zhat * scale |
690 |
gezelter |
411 |
|
691 |
chrisfen |
597 |
endif |
692 |
gezelter |
411 |
endif |
693 |
gezelter |
421 |
|
694 |
gezelter |
439 |
if (j_is_Quadrupole) then |
695 |
|
|
ri2 = riji * riji |
696 |
|
|
ri3 = ri2 * riji |
697 |
gezelter |
440 |
ri4 = ri2 * ri2 |
698 |
gezelter |
439 |
cx2 = cx_j * cx_j |
699 |
|
|
cy2 = cy_j * cy_j |
700 |
|
|
cz2 = cz_j * cz_j |
701 |
|
|
|
702 |
gezelter |
443 |
|
703 |
chrisfen |
597 |
pref = sw * pre14 * q_i / 3.0_dp |
704 |
gezelter |
439 |
|
705 |
chrisfen |
597 |
if (corrMethod .eq. 1) then |
706 |
|
|
vterm1 = pref * ri3*( qxx_j * (3.0_dp*cx2 - 1.0_dp) + & |
707 |
|
|
qyy_j * (3.0_dp*cy2 - 1.0_dp) + & |
708 |
|
|
qzz_j * (3.0_dp*cz2 - 1.0_dp) ) |
709 |
|
|
vterm2 = pref * rcuti3*( qxx_j * (3.0_dp*cx2 - 1.0_dp) + & |
710 |
|
|
qyy_j * (3.0_dp*cy2 - 1.0_dp) + & |
711 |
|
|
qzz_j * (3.0_dp*cz2 - 1.0_dp) ) |
712 |
|
|
vpair = vpair + swi*( vterm1 - vterm2 ) |
713 |
|
|
epot = epot + ( vterm1 - vterm2 ) |
714 |
|
|
|
715 |
|
|
dudx = dudx - (5.0_dp * & |
716 |
|
|
(vterm1*riji*xhat - vterm2*rcuti2*d(1))) + pref * ( & |
717 |
|
|
(ri4 - rcuti4)*(qxx_j*(6.0_dp*cx_j*ux_j(1)) - & |
718 |
|
|
qxx_j*2.0_dp*(xhat - rcuti*d(1))) + & |
719 |
|
|
(ri4 - rcuti4)*(qyy_j*(6.0_dp*cy_j*uy_j(1)) - & |
720 |
|
|
qyy_j*2.0_dp*(xhat - rcuti*d(1))) + & |
721 |
|
|
(ri4 - rcuti4)*(qzz_j*(6.0_dp*cz_j*uz_j(1)) - & |
722 |
|
|
qzz_j*2.0_dp*(xhat - rcuti*d(1))) ) |
723 |
|
|
dudy = dudy - (5.0_dp * & |
724 |
|
|
(vterm1*riji*yhat - vterm2*rcuti2*d(2))) + pref * ( & |
725 |
|
|
(ri4 - rcuti4)*(qxx_j*(6.0_dp*cx_j*ux_j(2)) - & |
726 |
|
|
qxx_j*2.0_dp*(yhat - rcuti*d(2))) + & |
727 |
|
|
(ri4 - rcuti4)*(qyy_j*(6.0_dp*cy_j*uy_j(2)) - & |
728 |
|
|
qyy_j*2.0_dp*(yhat - rcuti*d(2))) + & |
729 |
|
|
(ri4 - rcuti4)*(qzz_j*(6.0_dp*cz_j*uz_j(2)) - & |
730 |
|
|
qzz_j*2.0_dp*(yhat - rcuti*d(2))) ) |
731 |
|
|
dudz = dudz - (5.0_dp * & |
732 |
|
|
(vterm1*riji*zhat - vterm2*rcuti2*d(3))) + pref * ( & |
733 |
|
|
(ri4 - rcuti4)*(qxx_j*(6.0_dp*cx_j*ux_j(3)) - & |
734 |
|
|
qxx_j*2.0_dp*(zhat - rcuti*d(3))) + & |
735 |
|
|
(ri4 - rcuti4)*(qyy_j*(6.0_dp*cy_j*uy_j(3)) - & |
736 |
|
|
qyy_j*2.0_dp*(zhat - rcuti*d(3))) + & |
737 |
|
|
(ri4 - rcuti4)*(qzz_j*(6.0_dp*cz_j*uz_j(3)) - & |
738 |
|
|
qzz_j*2.0_dp*(zhat - rcuti*d(3))) ) |
739 |
|
|
|
740 |
|
|
dudux_j(1) = dudux_j(1) + pref * (ri3*(qxx_j*6.0_dp*cx_j*xhat) - & |
741 |
|
|
rcuti4*(qxx_j*6.0_dp*cx_j*d(1))) |
742 |
|
|
dudux_j(2) = dudux_j(2) + pref * (ri3*(qxx_j*6.0_dp*cx_j*yhat) - & |
743 |
|
|
rcuti4*(qxx_j*6.0_dp*cx_j*d(2))) |
744 |
|
|
dudux_j(3) = dudux_j(3) + pref * (ri3*(qxx_j*6.0_dp*cx_j*zhat) - & |
745 |
|
|
rcuti4*(qxx_j*6.0_dp*cx_j*d(3))) |
746 |
|
|
|
747 |
|
|
duduy_j(1) = duduy_j(1) + pref * (ri3*(qyy_j*6.0_dp*cy_j*xhat) - & |
748 |
|
|
rcuti4*(qyy_j*6.0_dp*cx_j*d(1))) |
749 |
|
|
duduy_j(2) = duduy_j(2) + pref * (ri3*(qyy_j*6.0_dp*cy_j*yhat) - & |
750 |
|
|
rcuti4*(qyy_j*6.0_dp*cx_j*d(2))) |
751 |
|
|
duduy_j(3) = duduy_j(3) + pref * (ri3*(qyy_j*6.0_dp*cy_j*zhat) - & |
752 |
|
|
rcuti4*(qyy_j*6.0_dp*cx_j*d(3))) |
753 |
|
|
|
754 |
|
|
duduz_j(1) = duduz_j(1) + pref * (ri3*(qzz_j*6.0_dp*cz_j*xhat) - & |
755 |
|
|
rcuti4*(qzz_j*6.0_dp*cx_j*d(1))) |
756 |
|
|
duduz_j(2) = duduz_j(2) + pref * (ri3*(qzz_j*6.0_dp*cz_j*yhat) - & |
757 |
|
|
rcuti4*(qzz_j*6.0_dp*cx_j*d(2))) |
758 |
|
|
duduz_j(3) = duduz_j(3) + pref * (ri3*(qzz_j*6.0_dp*cz_j*zhat) - & |
759 |
|
|
rcuti4*(qzz_j*6.0_dp*cx_j*d(3))) |
760 |
|
|
|
761 |
|
|
else |
762 |
|
|
vterm = pref * ri3 * (qxx_j * (3.0_dp*cx2 - 1.0_dp) + & |
763 |
|
|
qyy_j * (3.0_dp*cy2 - 1.0_dp) + & |
764 |
|
|
qzz_j * (3.0_dp*cz2 - 1.0_dp)) |
765 |
|
|
vpair = vpair + swi * vterm |
766 |
|
|
epot = epot + vterm |
767 |
|
|
|
768 |
|
|
dudx = dudx - 5.0_dp*vterm*riji*xhat + pref * ri4 * ( & |
769 |
|
|
qxx_j*(6.0_dp*cx_j*ux_j(1) - 2.0_dp*xhat) + & |
770 |
|
|
qyy_j*(6.0_dp*cy_j*uy_j(1) - 2.0_dp*xhat) + & |
771 |
|
|
qzz_j*(6.0_dp*cz_j*uz_j(1) - 2.0_dp*xhat) ) |
772 |
|
|
dudy = dudy - 5.0_dp*vterm*riji*yhat + pref * ri4 * ( & |
773 |
|
|
qxx_j*(6.0_dp*cx_j*ux_j(2) - 2.0_dp*yhat) + & |
774 |
|
|
qyy_j*(6.0_dp*cy_j*uy_j(2) - 2.0_dp*yhat) + & |
775 |
|
|
qzz_j*(6.0_dp*cz_j*uz_j(2) - 2.0_dp*yhat) ) |
776 |
|
|
dudz = dudz - 5.0_dp*vterm*riji*zhat + pref * ri4 * ( & |
777 |
|
|
qxx_j*(6.0_dp*cx_j*ux_j(3) - 2.0_dp*zhat) + & |
778 |
|
|
qyy_j*(6.0_dp*cy_j*uy_j(3) - 2.0_dp*zhat) + & |
779 |
|
|
qzz_j*(6.0_dp*cz_j*uz_j(3) - 2.0_dp*zhat) ) |
780 |
|
|
|
781 |
|
|
dudux_j(1) = dudux_j(1) + pref * ri3*(qxx_j*6.0_dp*cx_j*xhat) |
782 |
|
|
dudux_j(2) = dudux_j(2) + pref * ri3*(qxx_j*6.0_dp*cx_j*yhat) |
783 |
|
|
dudux_j(3) = dudux_j(3) + pref * ri3*(qxx_j*6.0_dp*cx_j*zhat) |
784 |
|
|
|
785 |
|
|
duduy_j(1) = duduy_j(1) + pref * ri3*(qyy_j*6.0_dp*cy_j*xhat) |
786 |
|
|
duduy_j(2) = duduy_j(2) + pref * ri3*(qyy_j*6.0_dp*cy_j*yhat) |
787 |
|
|
duduy_j(3) = duduy_j(3) + pref * ri3*(qyy_j*6.0_dp*cy_j*zhat) |
788 |
|
|
|
789 |
|
|
duduz_j(1) = duduz_j(1) + pref * ri3*(qzz_j*6.0_dp*cz_j*xhat) |
790 |
|
|
duduz_j(2) = duduz_j(2) + pref * ri3*(qzz_j*6.0_dp*cz_j*yhat) |
791 |
|
|
duduz_j(3) = duduz_j(3) + pref * ri3*(qzz_j*6.0_dp*cz_j*zhat) |
792 |
|
|
|
793 |
|
|
endif |
794 |
gezelter |
439 |
endif |
795 |
gezelter |
411 |
endif |
796 |
gezelter |
507 |
|
797 |
gezelter |
411 |
if (i_is_Dipole) then |
798 |
gezelter |
507 |
|
799 |
gezelter |
411 |
if (j_is_Charge) then |
800 |
|
|
|
801 |
chrisfen |
597 |
pref = sw * pre12 * q_j * mu_i |
802 |
gezelter |
411 |
|
803 |
chrisfen |
597 |
if (corrMethod .eq. 1) then |
804 |
|
|
ri2 = riji * riji |
805 |
|
|
ri3 = ri2 * riji |
806 |
gezelter |
507 |
|
807 |
chrisfen |
597 |
vterm = pref * ct_i * (ri2 - rcuti2) |
808 |
|
|
vpair = vpair + swi * vterm |
809 |
|
|
epot = epot + vterm |
810 |
|
|
|
811 |
|
|
!! this has a + sign in the () because the rij vector is |
812 |
|
|
!! r_j - r_i and the charge-dipole potential takes the origin |
813 |
|
|
!! as the point dipole, which is atom j in this case. |
814 |
|
|
|
815 |
|
|
dudx = dudx + pref * ( ri3*( uz_i(1) - 3.0d0*ct_i*xhat) & |
816 |
|
|
- rcuti3*( uz_i(1) - 3.0d0*ct_i*d(1)*rcuti ) ) |
817 |
|
|
dudy = dudy + pref * ( ri3*( uz_i(2) - 3.0d0*ct_i*yhat) & |
818 |
|
|
- rcuti3*( uz_i(2) - 3.0d0*ct_i*d(2)*rcuti ) ) |
819 |
|
|
dudz = dudz + pref * ( ri3*( uz_i(3) - 3.0d0*ct_i*zhat) & |
820 |
|
|
- rcuti3*( uz_i(3) - 3.0d0*ct_i*d(3)*rcuti ) ) |
821 |
|
|
|
822 |
|
|
duduz_i(1) = duduz_i(1) - pref*( ri2*xhat - d(1)*rcuti3 ) |
823 |
|
|
duduz_i(2) = duduz_i(2) - pref*( ri2*yhat - d(2)*rcuti3 ) |
824 |
|
|
duduz_i(3) = duduz_i(3) - pref*( ri2*zhat - d(3)*rcuti3 ) |
825 |
gezelter |
411 |
|
826 |
chrisfen |
597 |
else |
827 |
|
|
if (i_is_SplitDipole) then |
828 |
gezelter |
421 |
BigR = sqrt(r2 + 0.25_dp * d_i * d_i) |
829 |
|
|
ri = 1.0_dp / BigR |
830 |
chrisfen |
597 |
scale = rij * ri |
831 |
|
|
else |
832 |
gezelter |
421 |
ri = riji |
833 |
|
|
scale = 1.0_dp |
834 |
|
|
endif |
835 |
chrisfen |
597 |
|
836 |
|
|
ri2 = ri * ri |
837 |
|
|
ri3 = ri2 * ri |
838 |
|
|
sc2 = scale * scale |
839 |
|
|
|
840 |
|
|
vterm = pref * ct_i * ri2 * scale |
841 |
|
|
vpair = vpair + swi * vterm |
842 |
|
|
epot = epot + vterm |
843 |
|
|
|
844 |
|
|
dudx = dudx + pref * ri3 * ( uz_i(1) - 3.0d0 * ct_i * xhat*sc2) |
845 |
|
|
dudy = dudy + pref * ri3 * ( uz_i(2) - 3.0d0 * ct_i * yhat*sc2) |
846 |
|
|
dudz = dudz + pref * ri3 * ( uz_i(3) - 3.0d0 * ct_i * zhat*sc2) |
847 |
|
|
|
848 |
|
|
duduz_i(1) = duduz_i(1) + pref * ri2 * xhat * scale |
849 |
|
|
duduz_i(2) = duduz_i(2) + pref * ri2 * yhat * scale |
850 |
|
|
duduz_i(3) = duduz_i(3) + pref * ri2 * zhat * scale |
851 |
gezelter |
421 |
endif |
852 |
chrisfen |
597 |
endif |
853 |
gezelter |
421 |
|
854 |
chrisfen |
597 |
if (j_is_Dipole) then |
855 |
gezelter |
421 |
|
856 |
chrisfen |
597 |
pref = sw * pre22 * mu_i * mu_j |
857 |
gezelter |
411 |
|
858 |
chrisfen |
597 |
if (corrMethod .eq. 1) then |
859 |
|
|
ri2 = riji * riji |
860 |
|
|
ri3 = ri2 * riji |
861 |
|
|
ri4 = ri2 * ri2 |
862 |
gezelter |
507 |
|
863 |
chrisfen |
597 |
vterm = pref * (ri3 - rcuti3) * (ct_ij - 3.0d0 * ct_i * ct_j) |
864 |
|
|
vpair = vpair + swi * vterm |
865 |
|
|
epot = epot + vterm |
866 |
|
|
|
867 |
|
|
a1 = 5.0d0 * ct_i * ct_j - ct_ij |
868 |
|
|
|
869 |
|
|
dudx = dudx + pref*3.0d0*ri4 & |
870 |
|
|
*(a1*xhat-ct_i*uz_j(1)-ct_j*uz_i(1)) - & |
871 |
|
|
pref*3.0d0*rcuti4*(a1*rcuti*d(1)-ct_i*uz_j(1)-ct_j*uz_i(1)) |
872 |
|
|
dudy = dudy + pref*3.0d0*ri4 & |
873 |
|
|
*(a1*yhat-ct_i*uz_j(2)-ct_j*uz_i(2)) - & |
874 |
|
|
pref*3.0d0*rcuti4*(a1*rcuti*d(2)-ct_i*uz_j(2)-ct_j*uz_i(2)) |
875 |
|
|
dudz = dudz + pref*3.0d0*ri4 & |
876 |
|
|
*(a1*zhat-ct_i*uz_j(3)-ct_j*uz_i(3)) - & |
877 |
|
|
pref*3.0d0*rcuti4*(a1*rcuti*d(3)-ct_i*uz_j(3)-ct_j*uz_i(3)) |
878 |
|
|
|
879 |
|
|
duduz_i(1) = duduz_i(1) + pref*(ri3*(uz_j(1) - 3.0d0*ct_j*xhat) & |
880 |
|
|
- rcuti3*(uz_j(1) - 3.0d0*ct_j*d(1)*rcuti)) |
881 |
|
|
duduz_i(2) = duduz_i(2) + pref*(ri3*(uz_j(2) - 3.0d0*ct_j*yhat) & |
882 |
|
|
- rcuti3*(uz_j(2) - 3.0d0*ct_j*d(2)*rcuti)) |
883 |
|
|
duduz_i(3) = duduz_i(3) + pref*(ri3*(uz_j(3) - 3.0d0*ct_j*zhat) & |
884 |
|
|
- rcuti3*(uz_j(3) - 3.0d0*ct_j*d(3)*rcuti)) |
885 |
|
|
duduz_j(1) = duduz_j(1) + pref*(ri3*(uz_i(1) - 3.0d0*ct_i*xhat) & |
886 |
|
|
- rcuti3*(uz_i(1) - 3.0d0*ct_i*d(1)*rcuti)) |
887 |
|
|
duduz_j(2) = duduz_j(2) + pref*(ri3*(uz_i(2) - 3.0d0*ct_i*yhat) & |
888 |
|
|
- rcuti3*(uz_i(2) - 3.0d0*ct_i*d(2)*rcuti)) |
889 |
|
|
duduz_j(3) = duduz_j(3) + pref*(ri3*(uz_i(3) - 3.0d0*ct_i*zhat) & |
890 |
|
|
- rcuti3*(uz_i(3) - 3.0d0*ct_i*d(3)*rcuti)) |
891 |
|
|
else |
892 |
|
|
|
893 |
|
|
if (i_is_SplitDipole) then |
894 |
|
|
if (j_is_SplitDipole) then |
895 |
|
|
BigR = sqrt(r2 + 0.25_dp * d_i * d_i + 0.25_dp * d_j * d_j) |
896 |
|
|
else |
897 |
|
|
BigR = sqrt(r2 + 0.25_dp * d_i * d_i) |
898 |
|
|
endif |
899 |
|
|
ri = 1.0_dp / BigR |
900 |
|
|
scale = rij * ri |
901 |
|
|
else |
902 |
|
|
if (j_is_SplitDipole) then |
903 |
|
|
BigR = sqrt(r2 + 0.25_dp * d_j * d_j) |
904 |
|
|
ri = 1.0_dp / BigR |
905 |
|
|
scale = rij * ri |
906 |
|
|
else |
907 |
|
|
ri = riji |
908 |
|
|
scale = 1.0_dp |
909 |
|
|
endif |
910 |
|
|
endif |
911 |
|
|
|
912 |
|
|
ct_ij = uz_i(1)*uz_j(1) + uz_i(2)*uz_j(2) + uz_i(3)*uz_j(3) |
913 |
|
|
|
914 |
|
|
ri2 = ri * ri |
915 |
|
|
ri3 = ri2 * ri |
916 |
|
|
ri4 = ri2 * ri2 |
917 |
|
|
sc2 = scale * scale |
918 |
|
|
|
919 |
|
|
vterm = pref * ri3 * (ct_ij - 3.0d0 * ct_i * ct_j * sc2) |
920 |
|
|
vpair = vpair + swi * vterm |
921 |
|
|
epot = epot + vterm |
922 |
|
|
|
923 |
|
|
a1 = 5.0d0 * ct_i * ct_j * sc2 - ct_ij |
924 |
|
|
|
925 |
|
|
dudx = dudx + pref*3.0d0*ri4*scale & |
926 |
|
|
*(a1*xhat-ct_i*uz_j(1)-ct_j*uz_i(1)) |
927 |
|
|
dudy = dudy + pref*3.0d0*ri4*scale & |
928 |
|
|
*(a1*yhat-ct_i*uz_j(2)-ct_j*uz_i(2)) |
929 |
|
|
dudz = dudz + pref*3.0d0*ri4*scale & |
930 |
|
|
*(a1*zhat-ct_i*uz_j(3)-ct_j*uz_i(3)) |
931 |
|
|
|
932 |
|
|
duduz_i(1) = duduz_i(1) + pref*ri3 & |
933 |
|
|
*(uz_j(1) - 3.0d0*ct_j*xhat*sc2) |
934 |
|
|
duduz_i(2) = duduz_i(2) + pref*ri3 & |
935 |
|
|
*(uz_j(2) - 3.0d0*ct_j*yhat*sc2) |
936 |
|
|
duduz_i(3) = duduz_i(3) + pref*ri3 & |
937 |
|
|
*(uz_j(3) - 3.0d0*ct_j*zhat*sc2) |
938 |
|
|
|
939 |
|
|
duduz_j(1) = duduz_j(1) + pref*ri3 & |
940 |
|
|
*(uz_i(1) - 3.0d0*ct_i*xhat*sc2) |
941 |
|
|
duduz_j(2) = duduz_j(2) + pref*ri3 & |
942 |
|
|
*(uz_i(2) - 3.0d0*ct_i*yhat*sc2) |
943 |
|
|
duduz_j(3) = duduz_j(3) + pref*ri3 & |
944 |
|
|
*(uz_i(3) - 3.0d0*ct_i*zhat*sc2) |
945 |
|
|
endif |
946 |
gezelter |
411 |
endif |
947 |
|
|
endif |
948 |
gezelter |
439 |
|
949 |
|
|
if (i_is_Quadrupole) then |
950 |
|
|
if (j_is_Charge) then |
951 |
gezelter |
507 |
|
952 |
gezelter |
439 |
ri2 = riji * riji |
953 |
|
|
ri3 = ri2 * riji |
954 |
gezelter |
440 |
ri4 = ri2 * ri2 |
955 |
gezelter |
439 |
cx2 = cx_i * cx_i |
956 |
|
|
cy2 = cy_i * cy_i |
957 |
|
|
cz2 = cz_i * cz_i |
958 |
gezelter |
507 |
|
959 |
chrisfen |
597 |
pref = sw * pre14 * q_j / 3.0_dp |
960 |
gezelter |
507 |
|
961 |
chrisfen |
597 |
if (corrMethod .eq. 1) then |
962 |
|
|
vterm1 = pref * ri3*( qxx_i * (3.0_dp*cx2 - 1.0_dp) + & |
963 |
|
|
qyy_i * (3.0_dp*cy2 - 1.0_dp) + & |
964 |
|
|
qzz_i * (3.0_dp*cz2 - 1.0_dp) ) |
965 |
|
|
vterm2 = pref * rcuti3*( qxx_i * (3.0_dp*cx2 - 1.0_dp) + & |
966 |
|
|
qyy_i * (3.0_dp*cy2 - 1.0_dp) + & |
967 |
|
|
qzz_i * (3.0_dp*cz2 - 1.0_dp) ) |
968 |
|
|
vpair = vpair + swi * ( vterm1 - vterm2 ) |
969 |
|
|
epot = epot + ( vterm1 - vterm2 ) |
970 |
|
|
|
971 |
|
|
dudx = dudx - (5.0_dp*(vterm1*riji*xhat - vterm2*rcuti2*d(1))) + & |
972 |
|
|
pref * ( (ri4 - rcuti4)*(qxx_i*(6.0_dp*cx_i*ux_i(1)) - & |
973 |
|
|
qxx_i*2.0_dp*(xhat - rcuti*d(1))) + & |
974 |
|
|
(ri4 - rcuti4)*(qyy_i*(6.0_dp*cy_i*uy_i(1)) - & |
975 |
|
|
qyy_i*2.0_dp*(xhat - rcuti*d(1))) + & |
976 |
|
|
(ri4 - rcuti4)*(qzz_i*(6.0_dp*cz_i*uz_i(1)) - & |
977 |
|
|
qzz_i*2.0_dp*(xhat - rcuti*d(1))) ) |
978 |
|
|
dudy = dudy - (5.0_dp*(vterm1*riji*yhat - vterm2*rcuti2*d(2))) + & |
979 |
|
|
pref * ( (ri4 - rcuti4)*(qxx_i*(6.0_dp*cx_i*ux_i(2)) - & |
980 |
|
|
qxx_i*2.0_dp*(yhat - rcuti*d(2))) + & |
981 |
|
|
(ri4 - rcuti4)*(qyy_i*(6.0_dp*cy_i*uy_i(2)) - & |
982 |
|
|
qyy_i*2.0_dp*(yhat - rcuti*d(2))) + & |
983 |
|
|
(ri4 - rcuti4)*(qzz_i*(6.0_dp*cz_i*uz_i(2)) - & |
984 |
|
|
qzz_i*2.0_dp*(yhat - rcuti*d(2))) ) |
985 |
|
|
dudz = dudz - (5.0_dp*(vterm1*riji*zhat - vterm2*rcuti2*d(3))) + & |
986 |
|
|
pref * ( (ri4 - rcuti4)*(qxx_i*(6.0_dp*cx_i*ux_i(3)) - & |
987 |
|
|
qxx_i*2.0_dp*(zhat - rcuti*d(3))) + & |
988 |
|
|
(ri4 - rcuti4)*(qyy_i*(6.0_dp*cy_i*uy_i(3)) - & |
989 |
|
|
qyy_i*2.0_dp*(zhat - rcuti*d(3))) + & |
990 |
|
|
(ri4 - rcuti4)*(qzz_i*(6.0_dp*cz_i*uz_i(3)) - & |
991 |
|
|
qzz_i*2.0_dp*(zhat - rcuti*d(3))) ) |
992 |
|
|
|
993 |
|
|
dudux_i(1) = dudux_i(1) + pref * (ri3*(qxx_i*6.0_dp*cx_i*xhat) - & |
994 |
|
|
rcuti4*(qxx_i*6.0_dp*cx_i*d(1))) |
995 |
|
|
dudux_i(2) = dudux_i(2) + pref * (ri3*(qxx_i*6.0_dp*cx_i*yhat) - & |
996 |
|
|
rcuti4*(qxx_i*6.0_dp*cx_i*d(2))) |
997 |
|
|
dudux_i(3) = dudux_i(3) + pref * (ri3*(qxx_i*6.0_dp*cx_i*zhat) - & |
998 |
|
|
rcuti4*(qxx_i*6.0_dp*cx_i*d(3))) |
999 |
|
|
|
1000 |
|
|
duduy_i(1) = duduy_i(1) + pref * (ri3*(qyy_i*6.0_dp*cy_i*xhat) - & |
1001 |
|
|
rcuti4*(qyy_i*6.0_dp*cx_i*d(1))) |
1002 |
|
|
duduy_i(2) = duduy_i(2) + pref * (ri3*(qyy_i*6.0_dp*cy_i*yhat) - & |
1003 |
|
|
rcuti4*(qyy_i*6.0_dp*cx_i*d(2))) |
1004 |
|
|
duduy_i(3) = duduy_i(3) + pref * (ri3*(qyy_i*6.0_dp*cy_i*zhat) - & |
1005 |
|
|
rcuti4*(qyy_i*6.0_dp*cx_i*d(3))) |
1006 |
|
|
|
1007 |
|
|
duduz_i(1) = duduz_i(1) + pref * (ri3*(qzz_i*6.0_dp*cz_i*xhat) - & |
1008 |
|
|
rcuti4*(qzz_i*6.0_dp*cx_i*d(1))) |
1009 |
|
|
duduz_i(2) = duduz_i(2) + pref * (ri3*(qzz_i*6.0_dp*cz_i*yhat) - & |
1010 |
|
|
rcuti4*(qzz_i*6.0_dp*cx_i*d(2))) |
1011 |
|
|
duduz_i(3) = duduz_i(3) + pref * (ri3*(qzz_i*6.0_dp*cz_i*zhat) - & |
1012 |
|
|
rcuti4*(qzz_i*6.0_dp*cx_i*d(3))) |
1013 |
gezelter |
507 |
|
1014 |
chrisfen |
597 |
else |
1015 |
|
|
vterm = pref * ri3 * (qxx_i * (3.0_dp*cx2 - 1.0_dp) + & |
1016 |
|
|
qyy_i * (3.0_dp*cy2 - 1.0_dp) + & |
1017 |
|
|
qzz_i * (3.0_dp*cz2 - 1.0_dp)) |
1018 |
|
|
vpair = vpair + swi * vterm |
1019 |
|
|
epot = epot + vterm |
1020 |
|
|
|
1021 |
|
|
dudx = dudx - 5.0_dp*vterm*riji*xhat + pref * ri4 * ( & |
1022 |
|
|
qxx_i*(6.0_dp*cx_i*ux_i(1) - 2.0_dp*xhat) + & |
1023 |
|
|
qyy_i*(6.0_dp*cy_i*uy_i(1) - 2.0_dp*xhat) + & |
1024 |
|
|
qzz_i*(6.0_dp*cz_i*uz_i(1) - 2.0_dp*xhat) ) |
1025 |
|
|
dudy = dudy - 5.0_dp*vterm*riji*yhat + pref * ri4 * ( & |
1026 |
|
|
qxx_i*(6.0_dp*cx_i*ux_i(2) - 2.0_dp*yhat) + & |
1027 |
|
|
qyy_i*(6.0_dp*cy_i*uy_i(2) - 2.0_dp*yhat) + & |
1028 |
|
|
qzz_i*(6.0_dp*cz_i*uz_i(2) - 2.0_dp*yhat) ) |
1029 |
|
|
dudz = dudz - 5.0_dp*vterm*riji*zhat + pref * ri4 * ( & |
1030 |
|
|
qxx_i*(6.0_dp*cx_i*ux_i(3) - 2.0_dp*zhat) + & |
1031 |
|
|
qyy_i*(6.0_dp*cy_i*uy_i(3) - 2.0_dp*zhat) + & |
1032 |
|
|
qzz_i*(6.0_dp*cz_i*uz_i(3) - 2.0_dp*zhat) ) |
1033 |
|
|
|
1034 |
|
|
dudux_i(1) = dudux_i(1) + pref * ri3*(qxx_i*6.0_dp*cx_i*xhat) |
1035 |
|
|
dudux_i(2) = dudux_i(2) + pref * ri3*(qxx_i*6.0_dp*cx_i*yhat) |
1036 |
|
|
dudux_i(3) = dudux_i(3) + pref * ri3*(qxx_i*6.0_dp*cx_i*zhat) |
1037 |
|
|
|
1038 |
|
|
duduy_i(1) = duduy_i(1) + pref * ri3*(qyy_i*6.0_dp*cy_i*xhat) |
1039 |
|
|
duduy_i(2) = duduy_i(2) + pref * ri3*(qyy_i*6.0_dp*cy_i*yhat) |
1040 |
|
|
duduy_i(3) = duduy_i(3) + pref * ri3*(qyy_i*6.0_dp*cy_i*zhat) |
1041 |
|
|
|
1042 |
|
|
duduz_i(1) = duduz_i(1) + pref * ri3*(qzz_i*6.0_dp*cz_i*xhat) |
1043 |
|
|
duduz_i(2) = duduz_i(2) + pref * ri3*(qzz_i*6.0_dp*cz_i*yhat) |
1044 |
|
|
duduz_i(3) = duduz_i(3) + pref * ri3*(qzz_i*6.0_dp*cz_i*zhat) |
1045 |
|
|
endif |
1046 |
gezelter |
439 |
endif |
1047 |
|
|
endif |
1048 |
gezelter |
507 |
|
1049 |
|
|
|
1050 |
gezelter |
411 |
if (do_pot) then |
1051 |
|
|
#ifdef IS_MPI |
1052 |
|
|
pot_row(atom1) = pot_row(atom1) + 0.5d0*epot |
1053 |
|
|
pot_col(atom2) = pot_col(atom2) + 0.5d0*epot |
1054 |
|
|
#else |
1055 |
|
|
pot = pot + epot |
1056 |
|
|
#endif |
1057 |
|
|
endif |
1058 |
gezelter |
507 |
|
1059 |
gezelter |
411 |
#ifdef IS_MPI |
1060 |
|
|
f_Row(1,atom1) = f_Row(1,atom1) + dudx |
1061 |
|
|
f_Row(2,atom1) = f_Row(2,atom1) + dudy |
1062 |
|
|
f_Row(3,atom1) = f_Row(3,atom1) + dudz |
1063 |
gezelter |
507 |
|
1064 |
gezelter |
411 |
f_Col(1,atom2) = f_Col(1,atom2) - dudx |
1065 |
|
|
f_Col(2,atom2) = f_Col(2,atom2) - dudy |
1066 |
|
|
f_Col(3,atom2) = f_Col(3,atom2) - dudz |
1067 |
gezelter |
507 |
|
1068 |
gezelter |
411 |
if (i_is_Dipole .or. i_is_Quadrupole) then |
1069 |
gezelter |
439 |
t_Row(1,atom1)=t_Row(1,atom1) - uz_i(2)*duduz_i(3) + uz_i(3)*duduz_i(2) |
1070 |
|
|
t_Row(2,atom1)=t_Row(2,atom1) - uz_i(3)*duduz_i(1) + uz_i(1)*duduz_i(3) |
1071 |
|
|
t_Row(3,atom1)=t_Row(3,atom1) - uz_i(1)*duduz_i(2) + uz_i(2)*duduz_i(1) |
1072 |
gezelter |
411 |
endif |
1073 |
gezelter |
439 |
if (i_is_Quadrupole) then |
1074 |
|
|
t_Row(1,atom1)=t_Row(1,atom1) - ux_i(2)*dudux_i(3) + ux_i(3)*dudux_i(2) |
1075 |
|
|
t_Row(2,atom1)=t_Row(2,atom1) - ux_i(3)*dudux_i(1) + ux_i(1)*dudux_i(3) |
1076 |
|
|
t_Row(3,atom1)=t_Row(3,atom1) - ux_i(1)*dudux_i(2) + ux_i(2)*dudux_i(1) |
1077 |
gezelter |
411 |
|
1078 |
gezelter |
439 |
t_Row(1,atom1)=t_Row(1,atom1) - uy_i(2)*duduy_i(3) + uy_i(3)*duduy_i(2) |
1079 |
|
|
t_Row(2,atom1)=t_Row(2,atom1) - uy_i(3)*duduy_i(1) + uy_i(1)*duduy_i(3) |
1080 |
|
|
t_Row(3,atom1)=t_Row(3,atom1) - uy_i(1)*duduy_i(2) + uy_i(2)*duduy_i(1) |
1081 |
|
|
endif |
1082 |
|
|
|
1083 |
gezelter |
411 |
if (j_is_Dipole .or. j_is_Quadrupole) then |
1084 |
gezelter |
439 |
t_Col(1,atom2)=t_Col(1,atom2) - uz_j(2)*duduz_j(3) + uz_j(3)*duduz_j(2) |
1085 |
|
|
t_Col(2,atom2)=t_Col(2,atom2) - uz_j(3)*duduz_j(1) + uz_j(1)*duduz_j(3) |
1086 |
|
|
t_Col(3,atom2)=t_Col(3,atom2) - uz_j(1)*duduz_j(2) + uz_j(2)*duduz_j(1) |
1087 |
gezelter |
411 |
endif |
1088 |
gezelter |
439 |
if (j_is_Quadrupole) then |
1089 |
|
|
t_Col(1,atom2)=t_Col(1,atom2) - ux_j(2)*dudux_j(3) + ux_j(3)*dudux_j(2) |
1090 |
|
|
t_Col(2,atom2)=t_Col(2,atom2) - ux_j(3)*dudux_j(1) + ux_j(1)*dudux_j(3) |
1091 |
|
|
t_Col(3,atom2)=t_Col(3,atom2) - ux_j(1)*dudux_j(2) + ux_j(2)*dudux_j(1) |
1092 |
gezelter |
411 |
|
1093 |
gezelter |
439 |
t_Col(1,atom2)=t_Col(1,atom2) - uy_j(2)*duduy_j(3) + uy_j(3)*duduy_j(2) |
1094 |
|
|
t_Col(2,atom2)=t_Col(2,atom2) - uy_j(3)*duduy_j(1) + uy_j(1)*duduy_j(3) |
1095 |
|
|
t_Col(3,atom2)=t_Col(3,atom2) - uy_j(1)*duduy_j(2) + uy_j(2)*duduy_j(1) |
1096 |
|
|
endif |
1097 |
|
|
|
1098 |
gezelter |
411 |
#else |
1099 |
|
|
f(1,atom1) = f(1,atom1) + dudx |
1100 |
|
|
f(2,atom1) = f(2,atom1) + dudy |
1101 |
|
|
f(3,atom1) = f(3,atom1) + dudz |
1102 |
gezelter |
507 |
|
1103 |
gezelter |
411 |
f(1,atom2) = f(1,atom2) - dudx |
1104 |
|
|
f(2,atom2) = f(2,atom2) - dudy |
1105 |
|
|
f(3,atom2) = f(3,atom2) - dudz |
1106 |
gezelter |
507 |
|
1107 |
gezelter |
411 |
if (i_is_Dipole .or. i_is_Quadrupole) then |
1108 |
gezelter |
439 |
t(1,atom1)=t(1,atom1) - uz_i(2)*duduz_i(3) + uz_i(3)*duduz_i(2) |
1109 |
|
|
t(2,atom1)=t(2,atom1) - uz_i(3)*duduz_i(1) + uz_i(1)*duduz_i(3) |
1110 |
|
|
t(3,atom1)=t(3,atom1) - uz_i(1)*duduz_i(2) + uz_i(2)*duduz_i(1) |
1111 |
gezelter |
411 |
endif |
1112 |
gezelter |
439 |
if (i_is_Quadrupole) then |
1113 |
|
|
t(1,atom1)=t(1,atom1) - ux_i(2)*dudux_i(3) + ux_i(3)*dudux_i(2) |
1114 |
|
|
t(2,atom1)=t(2,atom1) - ux_i(3)*dudux_i(1) + ux_i(1)*dudux_i(3) |
1115 |
|
|
t(3,atom1)=t(3,atom1) - ux_i(1)*dudux_i(2) + ux_i(2)*dudux_i(1) |
1116 |
|
|
|
1117 |
|
|
t(1,atom1)=t(1,atom1) - uy_i(2)*duduy_i(3) + uy_i(3)*duduy_i(2) |
1118 |
|
|
t(2,atom1)=t(2,atom1) - uy_i(3)*duduy_i(1) + uy_i(1)*duduy_i(3) |
1119 |
|
|
t(3,atom1)=t(3,atom1) - uy_i(1)*duduy_i(2) + uy_i(2)*duduy_i(1) |
1120 |
|
|
endif |
1121 |
|
|
|
1122 |
gezelter |
411 |
if (j_is_Dipole .or. j_is_Quadrupole) then |
1123 |
gezelter |
439 |
t(1,atom2)=t(1,atom2) - uz_j(2)*duduz_j(3) + uz_j(3)*duduz_j(2) |
1124 |
|
|
t(2,atom2)=t(2,atom2) - uz_j(3)*duduz_j(1) + uz_j(1)*duduz_j(3) |
1125 |
|
|
t(3,atom2)=t(3,atom2) - uz_j(1)*duduz_j(2) + uz_j(2)*duduz_j(1) |
1126 |
gezelter |
411 |
endif |
1127 |
gezelter |
439 |
if (j_is_Quadrupole) then |
1128 |
|
|
t(1,atom2)=t(1,atom2) - ux_j(2)*dudux_j(3) + ux_j(3)*dudux_j(2) |
1129 |
|
|
t(2,atom2)=t(2,atom2) - ux_j(3)*dudux_j(1) + ux_j(1)*dudux_j(3) |
1130 |
|
|
t(3,atom2)=t(3,atom2) - ux_j(1)*dudux_j(2) + ux_j(2)*dudux_j(1) |
1131 |
|
|
|
1132 |
|
|
t(1,atom2)=t(1,atom2) - uy_j(2)*duduy_j(3) + uy_j(3)*duduy_j(2) |
1133 |
|
|
t(2,atom2)=t(2,atom2) - uy_j(3)*duduy_j(1) + uy_j(1)*duduy_j(3) |
1134 |
|
|
t(3,atom2)=t(3,atom2) - uy_j(1)*duduy_j(2) + uy_j(2)*duduy_j(1) |
1135 |
|
|
endif |
1136 |
|
|
|
1137 |
gezelter |
411 |
#endif |
1138 |
gezelter |
507 |
|
1139 |
gezelter |
411 |
#ifdef IS_MPI |
1140 |
|
|
id1 = AtomRowToGlobal(atom1) |
1141 |
|
|
id2 = AtomColToGlobal(atom2) |
1142 |
|
|
#else |
1143 |
|
|
id1 = atom1 |
1144 |
|
|
id2 = atom2 |
1145 |
|
|
#endif |
1146 |
|
|
|
1147 |
|
|
if (molMembershipList(id1) .ne. molMembershipList(id2)) then |
1148 |
gezelter |
507 |
|
1149 |
gezelter |
411 |
fpair(1) = fpair(1) + dudx |
1150 |
|
|
fpair(2) = fpair(2) + dudy |
1151 |
|
|
fpair(3) = fpair(3) + dudz |
1152 |
|
|
|
1153 |
|
|
endif |
1154 |
|
|
|
1155 |
|
|
return |
1156 |
|
|
end subroutine doElectrostaticPair |
1157 |
chuckv |
492 |
|
1158 |
chrisfen |
532 |
!! calculates the switching functions and their derivatives for a given |
1159 |
|
|
subroutine calc_switch(r, mu, scale, dscale) |
1160 |
gezelter |
507 |
|
1161 |
chrisfen |
532 |
real (kind=dp), intent(in) :: r, mu |
1162 |
|
|
real (kind=dp), intent(inout) :: scale, dscale |
1163 |
|
|
real (kind=dp) :: rl, ru, mulow, minRatio, temp, scaleVal |
1164 |
|
|
|
1165 |
|
|
! distances must be in angstroms |
1166 |
|
|
rl = 2.75d0 |
1167 |
chrisfen |
534 |
ru = 3.75d0 |
1168 |
|
|
mulow = 0.0d0 !3.3856d0 ! 1.84 * 1.84 |
1169 |
chrisfen |
532 |
minRatio = mulow / (mu*mu) |
1170 |
|
|
scaleVal = 1.0d0 - minRatio |
1171 |
|
|
|
1172 |
|
|
if (r.lt.rl) then |
1173 |
|
|
scale = minRatio |
1174 |
|
|
dscale = 0.0d0 |
1175 |
|
|
elseif (r.gt.ru) then |
1176 |
|
|
scale = 1.0d0 |
1177 |
|
|
dscale = 0.0d0 |
1178 |
|
|
else |
1179 |
|
|
scale = 1.0d0 - scaleVal*((ru + 2.0d0*r - 3.0d0*rl) * (ru-r)**2) & |
1180 |
|
|
/ ((ru - rl)**3) |
1181 |
|
|
dscale = -scaleVal * 6.0d0 * (r-ru)*(r-rl)/((ru - rl)**3) |
1182 |
|
|
endif |
1183 |
|
|
|
1184 |
|
|
return |
1185 |
|
|
end subroutine calc_switch |
1186 |
|
|
|
1187 |
chuckv |
492 |
subroutine destroyElectrostaticTypes() |
1188 |
|
|
|
1189 |
gezelter |
507 |
if(allocated(ElectrostaticMap)) deallocate(ElectrostaticMap) |
1190 |
|
|
|
1191 |
chuckv |
492 |
end subroutine destroyElectrostaticTypes |
1192 |
|
|
|
1193 |
gezelter |
411 |
end module electrostatic_module |