| 1 | gezelter | 2095 | !! | 
| 2 |  |  | !! Copyright (c) 2005 The University of Notre Dame. All Rights Reserved. | 
| 3 |  |  | !! | 
| 4 |  |  | !! The University of Notre Dame grants you ("Licensee") a | 
| 5 |  |  | !! non-exclusive, royalty free, license to use, modify and | 
| 6 |  |  | !! redistribute this software in source and binary code form, provided | 
| 7 |  |  | !! that the following conditions are met: | 
| 8 |  |  | !! | 
| 9 |  |  | !! 1. Acknowledgement of the program authors must be made in any | 
| 10 |  |  | !!    publication of scientific results based in part on use of the | 
| 11 |  |  | !!    program.  An acceptable form of acknowledgement is citation of | 
| 12 |  |  | !!    the article in which the program was described (Matthew | 
| 13 |  |  | !!    A. Meineke, Charles F. Vardeman II, Teng Lin, Christopher | 
| 14 |  |  | !!    J. Fennell and J. Daniel Gezelter, "OOPSE: An Object-Oriented | 
| 15 |  |  | !!    Parallel Simulation Engine for Molecular Dynamics," | 
| 16 |  |  | !!    J. Comput. Chem. 26, pp. 252-271 (2005)) | 
| 17 |  |  | !! | 
| 18 |  |  | !! 2. Redistributions of source code must retain the above copyright | 
| 19 |  |  | !!    notice, this list of conditions and the following disclaimer. | 
| 20 |  |  | !! | 
| 21 |  |  | !! 3. Redistributions in binary form must reproduce the above copyright | 
| 22 |  |  | !!    notice, this list of conditions and the following disclaimer in the | 
| 23 |  |  | !!    documentation and/or other materials provided with the | 
| 24 |  |  | !!    distribution. | 
| 25 |  |  | !! | 
| 26 |  |  | !! This software is provided "AS IS," without a warranty of any | 
| 27 |  |  | !! kind. All express or implied conditions, representations and | 
| 28 |  |  | !! warranties, including any implied warranty of merchantability, | 
| 29 |  |  | !! fitness for a particular purpose or non-infringement, are hereby | 
| 30 |  |  | !! excluded.  The University of Notre Dame and its licensors shall not | 
| 31 |  |  | !! be liable for any damages suffered by licensee as a result of | 
| 32 |  |  | !! using, modifying or distributing the software or its | 
| 33 |  |  | !! derivatives. In no event will the University of Notre Dame or its | 
| 34 |  |  | !! licensors be liable for any lost revenue, profit or data, or for | 
| 35 |  |  | !! direct, indirect, special, consequential, incidental or punitive | 
| 36 |  |  | !! damages, however caused and regardless of the theory of liability, | 
| 37 |  |  | !! arising out of the use of or inability to use software, even if the | 
| 38 |  |  | !! University of Notre Dame has been advised of the possibility of | 
| 39 |  |  | !! such damages. | 
| 40 |  |  | !! | 
| 41 |  |  |  | 
| 42 |  |  | module electrostatic_module | 
| 43 |  |  |  | 
| 44 |  |  | use force_globals | 
| 45 |  |  | use definitions | 
| 46 |  |  | use atype_module | 
| 47 |  |  | use vector_class | 
| 48 |  |  | use simulation | 
| 49 |  |  | use status | 
| 50 |  |  | #ifdef IS_MPI | 
| 51 |  |  | use mpiSimulation | 
| 52 |  |  | #endif | 
| 53 |  |  | implicit none | 
| 54 |  |  |  | 
| 55 |  |  | PRIVATE | 
| 56 |  |  |  | 
| 57 | gezelter | 2118 | !! these prefactors convert the multipole interactions into kcal / mol | 
| 58 |  |  | !! all were computed assuming distances are measured in angstroms | 
| 59 |  |  | !! Charge-Charge, assuming charges are measured in electrons | 
| 60 | gezelter | 2095 | real(kind=dp), parameter :: pre11 = 332.0637778_dp | 
| 61 | gezelter | 2118 | !! Charge-Dipole, assuming charges are measured in electrons, and | 
| 62 |  |  | !! dipoles are measured in debyes | 
| 63 |  |  | real(kind=dp), parameter :: pre12 = 69.13373_dp | 
| 64 |  |  | !! Dipole-Dipole, assuming dipoles are measured in debyes | 
| 65 |  |  | real(kind=dp), parameter :: pre22 = 14.39325_dp | 
| 66 |  |  | !! Charge-Quadrupole, assuming charges are measured in electrons, and | 
| 67 |  |  | !! quadrupoles are measured in 10^-26 esu cm^2 | 
| 68 |  |  | !! This unit is also known affectionately as an esu centi-barn. | 
| 69 |  |  | real(kind=dp), parameter :: pre14 = 69.13373_dp | 
| 70 | gezelter | 2095 |  | 
| 71 |  |  | public :: newElectrostaticType | 
| 72 |  |  | public :: setCharge | 
| 73 |  |  | public :: setDipoleMoment | 
| 74 |  |  | public :: setSplitDipoleDistance | 
| 75 |  |  | public :: setQuadrupoleMoments | 
| 76 |  |  | public :: doElectrostaticPair | 
| 77 |  |  | public :: getCharge | 
| 78 |  |  | public :: getDipoleMoment | 
| 79 |  |  |  | 
| 80 |  |  | type :: Electrostatic | 
| 81 |  |  | integer :: c_ident | 
| 82 |  |  | logical :: is_Charge = .false. | 
| 83 |  |  | logical :: is_Dipole = .false. | 
| 84 |  |  | logical :: is_SplitDipole = .false. | 
| 85 |  |  | logical :: is_Quadrupole = .false. | 
| 86 |  |  | real(kind=DP) :: charge = 0.0_DP | 
| 87 |  |  | real(kind=DP) :: dipole_moment = 0.0_DP | 
| 88 |  |  | real(kind=DP) :: split_dipole_distance = 0.0_DP | 
| 89 |  |  | real(kind=DP), dimension(3) :: quadrupole_moments = 0.0_DP | 
| 90 |  |  | end type Electrostatic | 
| 91 |  |  |  | 
| 92 |  |  | type(Electrostatic), dimension(:), allocatable :: ElectrostaticMap | 
| 93 |  |  |  | 
| 94 |  |  | contains | 
| 95 |  |  |  | 
| 96 |  |  | subroutine newElectrostaticType(c_ident, is_Charge, is_Dipole, & | 
| 97 |  |  | is_SplitDipole, is_Quadrupole, status) | 
| 98 |  |  |  | 
| 99 |  |  | integer, intent(in) :: c_ident | 
| 100 |  |  | logical, intent(in) :: is_Charge | 
| 101 |  |  | logical, intent(in) :: is_Dipole | 
| 102 |  |  | logical, intent(in) :: is_SplitDipole | 
| 103 |  |  | logical, intent(in) :: is_Quadrupole | 
| 104 |  |  | integer, intent(out) :: status | 
| 105 |  |  | integer :: nAtypes, myATID, i, j | 
| 106 |  |  |  | 
| 107 |  |  | status = 0 | 
| 108 |  |  | myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) | 
| 109 |  |  |  | 
| 110 |  |  | !! Be simple-minded and assume that we need an ElectrostaticMap that | 
| 111 |  |  | !! is the same size as the total number of atom types | 
| 112 |  |  |  | 
| 113 |  |  | if (.not.allocated(ElectrostaticMap)) then | 
| 114 |  |  |  | 
| 115 |  |  | nAtypes = getSize(atypes) | 
| 116 |  |  |  | 
| 117 |  |  | if (nAtypes == 0) then | 
| 118 |  |  | status = -1 | 
| 119 |  |  | return | 
| 120 |  |  | end if | 
| 121 |  |  |  | 
| 122 |  |  | if (.not. allocated(ElectrostaticMap)) then | 
| 123 |  |  | allocate(ElectrostaticMap(nAtypes)) | 
| 124 |  |  | endif | 
| 125 |  |  |  | 
| 126 |  |  | end if | 
| 127 |  |  |  | 
| 128 |  |  | if (myATID .gt. size(ElectrostaticMap)) then | 
| 129 |  |  | status = -1 | 
| 130 |  |  | return | 
| 131 |  |  | endif | 
| 132 |  |  |  | 
| 133 |  |  | ! set the values for ElectrostaticMap for this atom type: | 
| 134 |  |  |  | 
| 135 |  |  | ElectrostaticMap(myATID)%c_ident = c_ident | 
| 136 |  |  | ElectrostaticMap(myATID)%is_Charge = is_Charge | 
| 137 |  |  | ElectrostaticMap(myATID)%is_Dipole = is_Dipole | 
| 138 |  |  | ElectrostaticMap(myATID)%is_SplitDipole = is_SplitDipole | 
| 139 |  |  | ElectrostaticMap(myATID)%is_Quadrupole = is_Quadrupole | 
| 140 |  |  |  | 
| 141 |  |  | end subroutine newElectrostaticType | 
| 142 |  |  |  | 
| 143 |  |  | subroutine setCharge(c_ident, charge, status) | 
| 144 |  |  | integer, intent(in) :: c_ident | 
| 145 |  |  | real(kind=dp), intent(in) :: charge | 
| 146 |  |  | integer, intent(out) :: status | 
| 147 |  |  | integer :: myATID | 
| 148 |  |  |  | 
| 149 |  |  | status = 0 | 
| 150 |  |  | myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) | 
| 151 |  |  |  | 
| 152 |  |  | if (.not.allocated(ElectrostaticMap)) then | 
| 153 |  |  | call handleError("electrostatic", "no ElectrostaticMap was present before first call of setCharge!") | 
| 154 |  |  | status = -1 | 
| 155 |  |  | return | 
| 156 |  |  | end if | 
| 157 |  |  |  | 
| 158 |  |  | if (myATID .gt. size(ElectrostaticMap)) then | 
| 159 |  |  | call handleError("electrostatic", "ElectrostaticMap was found to be too small during setCharge!") | 
| 160 |  |  | status = -1 | 
| 161 |  |  | return | 
| 162 |  |  | endif | 
| 163 |  |  |  | 
| 164 |  |  | if (.not.ElectrostaticMap(myATID)%is_Charge) then | 
| 165 |  |  | call handleError("electrostatic", "Attempt to setCharge of an atom type that is not a charge!") | 
| 166 |  |  | status = -1 | 
| 167 |  |  | return | 
| 168 |  |  | endif | 
| 169 |  |  |  | 
| 170 |  |  | ElectrostaticMap(myATID)%charge = charge | 
| 171 |  |  | end subroutine setCharge | 
| 172 |  |  |  | 
| 173 |  |  | subroutine setDipoleMoment(c_ident, dipole_moment, status) | 
| 174 |  |  | integer, intent(in) :: c_ident | 
| 175 |  |  | real(kind=dp), intent(in) :: dipole_moment | 
| 176 |  |  | integer, intent(out) :: status | 
| 177 |  |  | integer :: myATID | 
| 178 |  |  |  | 
| 179 |  |  | status = 0 | 
| 180 |  |  | myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) | 
| 181 |  |  |  | 
| 182 |  |  | if (.not.allocated(ElectrostaticMap)) then | 
| 183 |  |  | call handleError("electrostatic", "no ElectrostaticMap was present before first call of setDipoleMoment!") | 
| 184 |  |  | status = -1 | 
| 185 |  |  | return | 
| 186 |  |  | end if | 
| 187 |  |  |  | 
| 188 |  |  | if (myATID .gt. size(ElectrostaticMap)) then | 
| 189 |  |  | call handleError("electrostatic", "ElectrostaticMap was found to be too small during setDipoleMoment!") | 
| 190 |  |  | status = -1 | 
| 191 |  |  | return | 
| 192 |  |  | endif | 
| 193 |  |  |  | 
| 194 |  |  | if (.not.ElectrostaticMap(myATID)%is_Dipole) then | 
| 195 |  |  | call handleError("electrostatic", "Attempt to setDipoleMoment of an atom type that is not a dipole!") | 
| 196 |  |  | status = -1 | 
| 197 |  |  | return | 
| 198 |  |  | endif | 
| 199 |  |  |  | 
| 200 |  |  | ElectrostaticMap(myATID)%dipole_moment = dipole_moment | 
| 201 |  |  | end subroutine setDipoleMoment | 
| 202 |  |  |  | 
| 203 |  |  | subroutine setSplitDipoleDistance(c_ident, split_dipole_distance, status) | 
| 204 |  |  | integer, intent(in) :: c_ident | 
| 205 |  |  | real(kind=dp), intent(in) :: split_dipole_distance | 
| 206 |  |  | integer, intent(out) :: status | 
| 207 |  |  | integer :: myATID | 
| 208 |  |  |  | 
| 209 |  |  | status = 0 | 
| 210 |  |  | myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) | 
| 211 |  |  |  | 
| 212 |  |  | if (.not.allocated(ElectrostaticMap)) then | 
| 213 |  |  | call handleError("electrostatic", "no ElectrostaticMap was present before first call of setSplitDipoleDistance!") | 
| 214 |  |  | status = -1 | 
| 215 |  |  | return | 
| 216 |  |  | end if | 
| 217 |  |  |  | 
| 218 |  |  | if (myATID .gt. size(ElectrostaticMap)) then | 
| 219 |  |  | call handleError("electrostatic", "ElectrostaticMap was found to be too small during setSplitDipoleDistance!") | 
| 220 |  |  | status = -1 | 
| 221 |  |  | return | 
| 222 |  |  | endif | 
| 223 |  |  |  | 
| 224 |  |  | if (.not.ElectrostaticMap(myATID)%is_SplitDipole) then | 
| 225 |  |  | call handleError("electrostatic", "Attempt to setSplitDipoleDistance of an atom type that is not a splitDipole!") | 
| 226 |  |  | status = -1 | 
| 227 |  |  | return | 
| 228 |  |  | endif | 
| 229 |  |  |  | 
| 230 |  |  | ElectrostaticMap(myATID)%split_dipole_distance = split_dipole_distance | 
| 231 |  |  | end subroutine setSplitDipoleDistance | 
| 232 |  |  |  | 
| 233 |  |  | subroutine setQuadrupoleMoments(c_ident, quadrupole_moments, status) | 
| 234 |  |  | integer, intent(in) :: c_ident | 
| 235 |  |  | real(kind=dp), intent(in), dimension(3) :: quadrupole_moments | 
| 236 |  |  | integer, intent(out) :: status | 
| 237 |  |  | integer :: myATID, i, j | 
| 238 |  |  |  | 
| 239 |  |  | status = 0 | 
| 240 |  |  | myATID = getFirstMatchingElement(atypes, "c_ident", c_ident) | 
| 241 |  |  |  | 
| 242 |  |  | if (.not.allocated(ElectrostaticMap)) then | 
| 243 |  |  | call handleError("electrostatic", "no ElectrostaticMap was present before first call of setQuadrupoleMoments!") | 
| 244 |  |  | status = -1 | 
| 245 |  |  | return | 
| 246 |  |  | end if | 
| 247 |  |  |  | 
| 248 |  |  | if (myATID .gt. size(ElectrostaticMap)) then | 
| 249 |  |  | call handleError("electrostatic", "ElectrostaticMap was found to be too small during setQuadrupoleMoments!") | 
| 250 |  |  | status = -1 | 
| 251 |  |  | return | 
| 252 |  |  | endif | 
| 253 |  |  |  | 
| 254 |  |  | if (.not.ElectrostaticMap(myATID)%is_Quadrupole) then | 
| 255 |  |  | call handleError("electrostatic", "Attempt to setQuadrupoleMoments of an atom type that is not a quadrupole!") | 
| 256 |  |  | status = -1 | 
| 257 |  |  | return | 
| 258 |  |  | endif | 
| 259 |  |  |  | 
| 260 |  |  | do i = 1, 3 | 
| 261 |  |  | ElectrostaticMap(myATID)%quadrupole_moments(i) = & | 
| 262 |  |  | quadrupole_moments(i) | 
| 263 |  |  | enddo | 
| 264 |  |  |  | 
| 265 |  |  | end subroutine setQuadrupoleMoments | 
| 266 |  |  |  | 
| 267 |  |  |  | 
| 268 |  |  | function getCharge(atid) result (c) | 
| 269 |  |  | integer, intent(in) :: atid | 
| 270 |  |  | integer :: localError | 
| 271 |  |  | real(kind=dp) :: c | 
| 272 |  |  |  | 
| 273 |  |  | if (.not.allocated(ElectrostaticMap)) then | 
| 274 |  |  | call handleError("electrostatic", "no ElectrostaticMap was present before first call of getCharge!") | 
| 275 |  |  | return | 
| 276 |  |  | end if | 
| 277 |  |  |  | 
| 278 |  |  | if (.not.ElectrostaticMap(atid)%is_Charge) then | 
| 279 |  |  | call handleError("electrostatic", "getCharge was called for an atom type that isn't a charge!") | 
| 280 |  |  | return | 
| 281 |  |  | endif | 
| 282 |  |  |  | 
| 283 |  |  | c = ElectrostaticMap(atid)%charge | 
| 284 |  |  | end function getCharge | 
| 285 |  |  |  | 
| 286 |  |  | function getDipoleMoment(atid) result (dm) | 
| 287 |  |  | integer, intent(in) :: atid | 
| 288 |  |  | integer :: localError | 
| 289 |  |  | real(kind=dp) :: dm | 
| 290 |  |  |  | 
| 291 |  |  | if (.not.allocated(ElectrostaticMap)) then | 
| 292 |  |  | call handleError("electrostatic", "no ElectrostaticMap was present before first call of getDipoleMoment!") | 
| 293 |  |  | return | 
| 294 |  |  | end if | 
| 295 |  |  |  | 
| 296 |  |  | if (.not.ElectrostaticMap(atid)%is_Dipole) then | 
| 297 |  |  | call handleError("electrostatic", "getDipoleMoment was called for an atom type that isn't a dipole!") | 
| 298 |  |  | return | 
| 299 |  |  | endif | 
| 300 |  |  |  | 
| 301 |  |  | dm = ElectrostaticMap(atid)%dipole_moment | 
| 302 |  |  | end function getDipoleMoment | 
| 303 |  |  |  | 
| 304 |  |  | subroutine doElectrostaticPair(atom1, atom2, d, rij, r2, sw, & | 
| 305 |  |  | vpair, fpair, pot, eFrame, f, t, do_pot) | 
| 306 |  |  |  | 
| 307 |  |  | logical, intent(in) :: do_pot | 
| 308 |  |  |  | 
| 309 |  |  | integer, intent(in) :: atom1, atom2 | 
| 310 |  |  | integer :: localError | 
| 311 |  |  |  | 
| 312 |  |  | real(kind=dp), intent(in) :: rij, r2, sw | 
| 313 |  |  | real(kind=dp), intent(in), dimension(3) :: d | 
| 314 |  |  | real(kind=dp), intent(inout) :: vpair | 
| 315 |  |  | real(kind=dp), intent(inout), dimension(3) :: fpair | 
| 316 |  |  |  | 
| 317 |  |  | real( kind = dp ) :: pot | 
| 318 |  |  | real( kind = dp ), dimension(9,nLocal) :: eFrame | 
| 319 |  |  | real( kind = dp ), dimension(3,nLocal) :: f | 
| 320 |  |  | real( kind = dp ), dimension(3,nLocal) :: t | 
| 321 |  |  |  | 
| 322 | gezelter | 2123 | real (kind = dp), dimension(3) :: ux_i, uy_i, uz_i | 
| 323 |  |  | real (kind = dp), dimension(3) :: ux_j, uy_j, uz_j | 
| 324 |  |  | real (kind = dp), dimension(3) :: dudux_i, duduy_i, duduz_i | 
| 325 |  |  | real (kind = dp), dimension(3) :: dudux_j, duduy_j, duduz_j | 
| 326 | gezelter | 2095 |  | 
| 327 |  |  | logical :: i_is_Charge, i_is_Dipole, i_is_SplitDipole, i_is_Quadrupole | 
| 328 |  |  | logical :: j_is_Charge, j_is_Dipole, j_is_SplitDipole, j_is_Quadrupole | 
| 329 |  |  | integer :: me1, me2, id1, id2 | 
| 330 |  |  | real (kind=dp) :: q_i, q_j, mu_i, mu_j, d_i, d_j | 
| 331 | gezelter | 2123 | real (kind=dp) :: qxx_i, qyy_i, qzz_i | 
| 332 |  |  | real (kind=dp) :: qxx_j, qyy_j, qzz_j | 
| 333 |  |  | real (kind=dp) :: cx_i, cy_i, cz_i | 
| 334 |  |  | real (kind=dp) :: cx_j, cy_j, cz_j | 
| 335 |  |  | real (kind=dp) :: cx2, cy2, cz2 | 
| 336 | gezelter | 2095 | real (kind=dp) :: ct_i, ct_j, ct_ij, a1 | 
| 337 | gezelter | 2105 | real (kind=dp) :: riji, ri, ri2, ri3, ri4 | 
| 338 | gezelter | 2095 | real (kind=dp) :: pref, vterm, epot, dudr | 
| 339 | gezelter | 2105 | real (kind=dp) :: xhat, yhat, zhat | 
| 340 | gezelter | 2095 | real (kind=dp) :: dudx, dudy, dudz | 
| 341 |  |  | real (kind=dp) :: drdxj, drdyj, drdzj | 
| 342 | gezelter | 2105 | real (kind=dp) :: scale, sc2, bigR | 
| 343 | gezelter | 2095 |  | 
| 344 |  |  | if (.not.allocated(ElectrostaticMap)) then | 
| 345 |  |  | call handleError("electrostatic", "no ElectrostaticMap was present before first call of do_electrostatic_pair!") | 
| 346 |  |  | return | 
| 347 |  |  | end if | 
| 348 |  |  |  | 
| 349 |  |  | #ifdef IS_MPI | 
| 350 |  |  | me1 = atid_Row(atom1) | 
| 351 |  |  | me2 = atid_Col(atom2) | 
| 352 |  |  | #else | 
| 353 |  |  | me1 = atid(atom1) | 
| 354 |  |  | me2 = atid(atom2) | 
| 355 |  |  | #endif | 
| 356 |  |  |  | 
| 357 |  |  | !! some variables we'll need independent of electrostatic type: | 
| 358 |  |  |  | 
| 359 |  |  | riji = 1.0d0 / rij | 
| 360 |  |  |  | 
| 361 | gezelter | 2105 | xhat = d(1) * riji | 
| 362 |  |  | yhat = d(2) * riji | 
| 363 |  |  | zhat = d(3) * riji | 
| 364 | gezelter | 2095 |  | 
| 365 | gezelter | 2105 | drdxj = xhat | 
| 366 |  |  | drdyj = yhat | 
| 367 |  |  | drdzj = zhat | 
| 368 | gezelter | 2095 |  | 
| 369 |  |  | !! logicals | 
| 370 |  |  |  | 
| 371 |  |  | i_is_Charge = ElectrostaticMap(me1)%is_Charge | 
| 372 |  |  | i_is_Dipole = ElectrostaticMap(me1)%is_Dipole | 
| 373 |  |  | i_is_SplitDipole = ElectrostaticMap(me1)%is_SplitDipole | 
| 374 |  |  | i_is_Quadrupole = ElectrostaticMap(me1)%is_Quadrupole | 
| 375 |  |  |  | 
| 376 |  |  | j_is_Charge = ElectrostaticMap(me2)%is_Charge | 
| 377 |  |  | j_is_Dipole = ElectrostaticMap(me2)%is_Dipole | 
| 378 |  |  | j_is_SplitDipole = ElectrostaticMap(me2)%is_SplitDipole | 
| 379 |  |  | j_is_Quadrupole = ElectrostaticMap(me2)%is_Quadrupole | 
| 380 |  |  |  | 
| 381 |  |  | if (i_is_Charge) then | 
| 382 |  |  | q_i = ElectrostaticMap(me1)%charge | 
| 383 |  |  | endif | 
| 384 |  |  |  | 
| 385 |  |  | if (i_is_Dipole) then | 
| 386 |  |  | mu_i = ElectrostaticMap(me1)%dipole_moment | 
| 387 |  |  | #ifdef IS_MPI | 
| 388 | gezelter | 2123 | uz_i(1) = eFrame_Row(3,atom1) | 
| 389 |  |  | uz_i(2) = eFrame_Row(6,atom1) | 
| 390 |  |  | uz_i(3) = eFrame_Row(9,atom1) | 
| 391 | gezelter | 2095 | #else | 
| 392 | gezelter | 2123 | uz_i(1) = eFrame(3,atom1) | 
| 393 |  |  | uz_i(2) = eFrame(6,atom1) | 
| 394 |  |  | uz_i(3) = eFrame(9,atom1) | 
| 395 | gezelter | 2095 | #endif | 
| 396 | gezelter | 2123 | ct_i = uz_i(1)*xhat + uz_i(2)*yhat + uz_i(3)*zhat | 
| 397 | gezelter | 2095 |  | 
| 398 |  |  | if (i_is_SplitDipole) then | 
| 399 |  |  | d_i = ElectrostaticMap(me1)%split_dipole_distance | 
| 400 |  |  | endif | 
| 401 |  |  |  | 
| 402 |  |  | endif | 
| 403 |  |  |  | 
| 404 | gezelter | 2123 | if (i_is_Quadrupole) then | 
| 405 |  |  | qxx_i = ElectrostaticMap(me1)%quadrupole_moments(1) | 
| 406 |  |  | qyy_i = ElectrostaticMap(me1)%quadrupole_moments(2) | 
| 407 |  |  | qzz_i = ElectrostaticMap(me1)%quadrupole_moments(3) | 
| 408 |  |  | #ifdef IS_MPI | 
| 409 |  |  | ux_i(1) = eFrame_Row(1,atom1) | 
| 410 |  |  | ux_i(2) = eFrame_Row(4,atom1) | 
| 411 |  |  | ux_i(3) = eFrame_Row(7,atom1) | 
| 412 |  |  | uy_i(1) = eFrame_Row(2,atom1) | 
| 413 |  |  | uy_i(2) = eFrame_Row(5,atom1) | 
| 414 |  |  | uy_i(3) = eFrame_Row(8,atom1) | 
| 415 |  |  | uz_i(1) = eFrame_Row(3,atom1) | 
| 416 |  |  | uz_i(2) = eFrame_Row(6,atom1) | 
| 417 |  |  | uz_i(3) = eFrame_Row(9,atom1) | 
| 418 |  |  | #else | 
| 419 |  |  | ux_i(1) = eFrame(1,atom1) | 
| 420 |  |  | ux_i(2) = eFrame(4,atom1) | 
| 421 |  |  | ux_i(3) = eFrame(7,atom1) | 
| 422 |  |  | uy_i(1) = eFrame(2,atom1) | 
| 423 |  |  | uy_i(2) = eFrame(5,atom1) | 
| 424 |  |  | uy_i(3) = eFrame(8,atom1) | 
| 425 |  |  | uz_i(1) = eFrame(3,atom1) | 
| 426 |  |  | uz_i(2) = eFrame(6,atom1) | 
| 427 |  |  | uz_i(3) = eFrame(9,atom1) | 
| 428 |  |  | #endif | 
| 429 |  |  | cx_i = ux_i(1)*xhat + ux_i(2)*yhat + ux_i(3)*zhat | 
| 430 |  |  | cy_i = uy_i(1)*xhat + uy_i(2)*yhat + uy_i(3)*zhat | 
| 431 |  |  | cz_i = uz_i(1)*xhat + uz_i(2)*yhat + uz_i(3)*zhat | 
| 432 |  |  | endif | 
| 433 |  |  |  | 
| 434 |  |  |  | 
| 435 | gezelter | 2095 | if (j_is_Charge) then | 
| 436 |  |  | q_j = ElectrostaticMap(me2)%charge | 
| 437 |  |  | endif | 
| 438 |  |  |  | 
| 439 |  |  | if (j_is_Dipole) then | 
| 440 |  |  | mu_j = ElectrostaticMap(me2)%dipole_moment | 
| 441 |  |  | #ifdef IS_MPI | 
| 442 | gezelter | 2123 | uz_j(1) = eFrame_Col(3,atom2) | 
| 443 |  |  | uz_j(2) = eFrame_Col(6,atom2) | 
| 444 |  |  | uz_j(3) = eFrame_Col(9,atom2) | 
| 445 | gezelter | 2095 | #else | 
| 446 | gezelter | 2123 | uz_j(1) = eFrame(3,atom2) | 
| 447 |  |  | uz_j(2) = eFrame(6,atom2) | 
| 448 |  |  | uz_j(3) = eFrame(9,atom2) | 
| 449 | gezelter | 2095 | #endif | 
| 450 | gezelter | 2123 | ct_j = uz_j(1)*drdxj + uz_j(2)*drdyj + uz_j(3)*drdzj | 
| 451 | gezelter | 2095 |  | 
| 452 |  |  | if (j_is_SplitDipole) then | 
| 453 |  |  | d_j = ElectrostaticMap(me2)%split_dipole_distance | 
| 454 |  |  | endif | 
| 455 |  |  | endif | 
| 456 |  |  |  | 
| 457 | gezelter | 2123 | if (j_is_Quadrupole) then | 
| 458 |  |  | qxx_j = ElectrostaticMap(me2)%quadrupole_moments(1) | 
| 459 |  |  | qyy_j = ElectrostaticMap(me2)%quadrupole_moments(2) | 
| 460 |  |  | qzz_j = ElectrostaticMap(me2)%quadrupole_moments(3) | 
| 461 |  |  | #ifdef IS_MPI | 
| 462 |  |  | ux_j(1) = eFrame_Col(1,atom2) | 
| 463 |  |  | ux_j(2) = eFrame_Col(4,atom2) | 
| 464 |  |  | ux_j(3) = eFrame_Col(7,atom2) | 
| 465 |  |  | uy_j(1) = eFrame_Col(2,atom2) | 
| 466 |  |  | uy_j(2) = eFrame_Col(5,atom2) | 
| 467 |  |  | uy_j(3) = eFrame_Col(8,atom2) | 
| 468 |  |  | uz_j(1) = eFrame_Col(3,atom2) | 
| 469 |  |  | uz_j(2) = eFrame_Col(6,atom2) | 
| 470 |  |  | uz_j(3) = eFrame_Col(9,atom2) | 
| 471 |  |  | #else | 
| 472 |  |  | ux_j(1) = eFrame(1,atom2) | 
| 473 |  |  | ux_j(2) = eFrame(4,atom2) | 
| 474 |  |  | ux_j(3) = eFrame(7,atom2) | 
| 475 |  |  | uy_j(1) = eFrame(2,atom2) | 
| 476 |  |  | uy_j(2) = eFrame(5,atom2) | 
| 477 |  |  | uy_j(3) = eFrame(8,atom2) | 
| 478 |  |  | uz_j(1) = eFrame(3,atom2) | 
| 479 |  |  | uz_j(2) = eFrame(6,atom2) | 
| 480 |  |  | uz_j(3) = eFrame(9,atom2) | 
| 481 |  |  | #endif | 
| 482 |  |  | cx_j = ux_j(1)*xhat + ux_j(2)*yhat + ux_j(3)*zhat | 
| 483 |  |  | cy_j = uy_j(1)*xhat + uy_j(2)*yhat + uy_j(3)*zhat | 
| 484 |  |  | cz_j = uz_j(1)*xhat + uz_j(2)*yhat + uz_j(3)*zhat | 
| 485 |  |  | endif | 
| 486 |  |  |  | 
| 487 | gezelter | 2095 | epot = 0.0_dp | 
| 488 |  |  | dudx = 0.0_dp | 
| 489 |  |  | dudy = 0.0_dp | 
| 490 |  |  | dudz = 0.0_dp | 
| 491 |  |  |  | 
| 492 | gezelter | 2123 | dudux_i = 0.0_dp | 
| 493 |  |  | duduy_i = 0.0_dp | 
| 494 |  |  | duduz_i = 0.0_dp | 
| 495 | gezelter | 2095 |  | 
| 496 | gezelter | 2123 | dudux_j = 0.0_dp | 
| 497 |  |  | duduy_j = 0.0_dp | 
| 498 |  |  | duduz_j = 0.0_dp | 
| 499 | gezelter | 2095 |  | 
| 500 |  |  | if (i_is_Charge) then | 
| 501 |  |  |  | 
| 502 |  |  | if (j_is_Charge) then | 
| 503 |  |  |  | 
| 504 |  |  | vterm = pre11 * q_i * q_j * riji | 
| 505 |  |  | vpair = vpair + vterm | 
| 506 |  |  | epot = epot + sw*vterm | 
| 507 |  |  |  | 
| 508 |  |  | dudr  = - sw * vterm * riji | 
| 509 |  |  |  | 
| 510 |  |  | dudx = dudx + dudr * drdxj | 
| 511 |  |  | dudy = dudy + dudr * drdyj | 
| 512 |  |  | dudz = dudz + dudr * drdzj | 
| 513 |  |  |  | 
| 514 |  |  | endif | 
| 515 |  |  |  | 
| 516 |  |  | if (j_is_Dipole) then | 
| 517 |  |  |  | 
| 518 | gezelter | 2105 | if (j_is_SplitDipole) then | 
| 519 |  |  | BigR = sqrt(r2 + 0.25_dp * d_j * d_j) | 
| 520 |  |  | ri = 1.0_dp / BigR | 
| 521 |  |  | scale = rij * ri | 
| 522 |  |  | else | 
| 523 |  |  | ri = riji | 
| 524 |  |  | scale = 1.0_dp | 
| 525 |  |  | endif | 
| 526 | gezelter | 2095 |  | 
| 527 | gezelter | 2105 | ri2 = ri * ri | 
| 528 |  |  | ri3 = ri2 * ri | 
| 529 |  |  | sc2 = scale * scale | 
| 530 |  |  |  | 
| 531 | gezelter | 2095 | pref = pre12 * q_i * mu_j | 
| 532 | gezelter | 2105 | vterm = pref * ct_j * ri2 * scale | 
| 533 | gezelter | 2095 | vpair = vpair + vterm | 
| 534 |  |  | epot = epot + sw * vterm | 
| 535 |  |  |  | 
| 536 | gezelter | 2105 | !! this has a + sign in the () because the rij vector is | 
| 537 |  |  | !! r_j - r_i and the charge-dipole potential takes the origin | 
| 538 |  |  | !! as the point dipole, which is atom j in this case. | 
| 539 | gezelter | 2095 |  | 
| 540 | gezelter | 2123 | dudx = dudx + pref * sw * ri3 * ( uz_j(1) + 3.0d0*ct_j*xhat*sc2) | 
| 541 |  |  | dudy = dudy + pref * sw * ri3 * ( uz_j(2) + 3.0d0*ct_j*yhat*sc2) | 
| 542 |  |  | dudz = dudz + pref * sw * ri3 * ( uz_j(3) + 3.0d0*ct_j*zhat*sc2) | 
| 543 | gezelter | 2105 |  | 
| 544 | gezelter | 2123 | duduz_j(1) = duduz_j(1) - pref * sw * ri2 * xhat * scale | 
| 545 |  |  | duduz_j(2) = duduz_j(2) - pref * sw * ri2 * yhat * scale | 
| 546 |  |  | duduz_j(3) = duduz_j(3) - pref * sw * ri2 * zhat * scale | 
| 547 | gezelter | 2095 |  | 
| 548 |  |  | endif | 
| 549 | gezelter | 2105 |  | 
| 550 | gezelter | 2123 | if (j_is_Quadrupole) then | 
| 551 |  |  | ri2 = riji * riji | 
| 552 |  |  | ri3 = ri2 * riji | 
| 553 | gezelter | 2124 | ri4 = ri2 * ri2 | 
| 554 | gezelter | 2123 | cx2 = cx_j * cx_j | 
| 555 |  |  | cy2 = cy_j * cy_j | 
| 556 |  |  | cz2 = cz_j * cz_j | 
| 557 |  |  |  | 
| 558 | gezelter | 2127 |  | 
| 559 |  |  | pref =  pre14 * q_i / 6.0_dp | 
| 560 | gezelter | 2123 | vterm = pref * ri3 * (qxx_j * (3.0_dp*cx2 - 1.0_dp) + & | 
| 561 |  |  | qyy_j * (3.0_dp*cy2 - 1.0_dp) + & | 
| 562 |  |  | qzz_j * (3.0_dp*cz2 - 1.0_dp)) | 
| 563 |  |  | vpair = vpair + vterm | 
| 564 |  |  | epot = epot + sw * vterm | 
| 565 |  |  |  | 
| 566 |  |  | dudx = dudx - 5.0_dp*sw*vterm*riji*xhat - pref * sw * ri4 * ( & | 
| 567 |  |  | qxx_j*(6.0_dp*cx_j*ux_j(1) - 2.0_dp*xhat) + & | 
| 568 |  |  | qyy_j*(6.0_dp*cy_j*uy_j(1) - 2.0_dp*xhat) + & | 
| 569 |  |  | qzz_j*(6.0_dp*cz_j*uz_j(1) - 2.0_dp*xhat) ) | 
| 570 |  |  | dudy = dudy - 5.0_dp*sw*vterm*riji*yhat - pref * sw * ri4 * ( & | 
| 571 |  |  | qxx_j*(6.0_dp*cx_j*ux_j(2) - 2.0_dp*yhat) + & | 
| 572 |  |  | qyy_j*(6.0_dp*cy_j*uy_j(2) - 2.0_dp*yhat) + & | 
| 573 |  |  | qzz_j*(6.0_dp*cz_j*uz_j(2) - 2.0_dp*yhat) ) | 
| 574 |  |  | dudz = dudz - 5.0_dp*sw*vterm*riji*zhat - pref * sw * ri4 * ( & | 
| 575 |  |  | qxx_j*(6.0_dp*cx_j*ux_j(3) - 2.0_dp*zhat) + & | 
| 576 |  |  | qyy_j*(6.0_dp*cy_j*uy_j(3) - 2.0_dp*zhat) + & | 
| 577 |  |  | qzz_j*(6.0_dp*cz_j*uz_j(3) - 2.0_dp*zhat) ) | 
| 578 |  |  |  | 
| 579 |  |  | dudux_j(1) = dudux_j(1) + pref * sw * ri3 * (qxx_j*6.0_dp*cx_j*xhat) | 
| 580 |  |  | dudux_j(2) = dudux_j(2) + pref * sw * ri3 * (qxx_j*6.0_dp*cx_j*yhat) | 
| 581 |  |  | dudux_j(3) = dudux_j(3) + pref * sw * ri3 * (qxx_j*6.0_dp*cx_j*zhat) | 
| 582 |  |  |  | 
| 583 |  |  | duduy_j(1) = duduy_j(1) + pref * sw * ri3 * (qyy_j*6.0_dp*cy_j*xhat) | 
| 584 |  |  | duduy_j(2) = duduy_j(2) + pref * sw * ri3 * (qyy_j*6.0_dp*cy_j*yhat) | 
| 585 |  |  | duduy_j(3) = duduy_j(3) + pref * sw * ri3 * (qyy_j*6.0_dp*cy_j*zhat) | 
| 586 |  |  |  | 
| 587 |  |  | duduz_j(1) = duduz_j(1) + pref * sw * ri3 * (qzz_j*6.0_dp*cz_j*xhat) | 
| 588 |  |  | duduz_j(2) = duduz_j(2) + pref * sw * ri3 * (qzz_j*6.0_dp*cz_j*yhat) | 
| 589 |  |  | duduz_j(3) = duduz_j(3) + pref * sw * ri3 * (qzz_j*6.0_dp*cz_j*zhat) | 
| 590 |  |  | endif | 
| 591 |  |  |  | 
| 592 | gezelter | 2095 | endif | 
| 593 |  |  |  | 
| 594 |  |  | if (i_is_Dipole) then | 
| 595 |  |  |  | 
| 596 |  |  | if (j_is_Charge) then | 
| 597 |  |  |  | 
| 598 | gezelter | 2105 | if (i_is_SplitDipole) then | 
| 599 |  |  | BigR = sqrt(r2 + 0.25_dp * d_i * d_i) | 
| 600 |  |  | ri = 1.0_dp / BigR | 
| 601 |  |  | scale = rij * ri | 
| 602 |  |  | else | 
| 603 |  |  | ri = riji | 
| 604 |  |  | scale = 1.0_dp | 
| 605 |  |  | endif | 
| 606 | gezelter | 2095 |  | 
| 607 | gezelter | 2105 | ri2 = ri * ri | 
| 608 |  |  | ri3 = ri2 * ri | 
| 609 |  |  | sc2 = scale * scale | 
| 610 |  |  |  | 
| 611 | gezelter | 2095 | pref = pre12 * q_j * mu_i | 
| 612 | gezelter | 2105 | vterm = pref * ct_i * ri2 * scale | 
| 613 | gezelter | 2095 | vpair = vpair + vterm | 
| 614 |  |  | epot = epot + sw * vterm | 
| 615 |  |  |  | 
| 616 | gezelter | 2123 | dudx = dudx + pref * sw * ri3 * ( uz_i(1) - 3.0d0 * ct_i * xhat*sc2) | 
| 617 |  |  | dudy = dudy + pref * sw * ri3 * ( uz_i(2) - 3.0d0 * ct_i * yhat*sc2) | 
| 618 |  |  | dudz = dudz + pref * sw * ri3 * ( uz_i(3) - 3.0d0 * ct_i * zhat*sc2) | 
| 619 | gezelter | 2095 |  | 
| 620 | gezelter | 2123 | duduz_i(1) = duduz_i(1) + pref * sw * ri2 * xhat * scale | 
| 621 |  |  | duduz_i(2) = duduz_i(2) + pref * sw * ri2 * yhat * scale | 
| 622 |  |  | duduz_i(3) = duduz_i(3) + pref * sw * ri2 * zhat * scale | 
| 623 | gezelter | 2095 | endif | 
| 624 |  |  |  | 
| 625 |  |  | if (j_is_Dipole) then | 
| 626 |  |  |  | 
| 627 | gezelter | 2105 | if (i_is_SplitDipole) then | 
| 628 |  |  | if (j_is_SplitDipole) then | 
| 629 |  |  | BigR = sqrt(r2 + 0.25_dp * d_i * d_i + 0.25_dp * d_j * d_j) | 
| 630 |  |  | else | 
| 631 |  |  | BigR = sqrt(r2 + 0.25_dp * d_i * d_i) | 
| 632 |  |  | endif | 
| 633 |  |  | ri = 1.0_dp / BigR | 
| 634 |  |  | scale = rij * ri | 
| 635 |  |  | else | 
| 636 |  |  | if (j_is_SplitDipole) then | 
| 637 |  |  | BigR = sqrt(r2 + 0.25_dp * d_j * d_j) | 
| 638 |  |  | ri = 1.0_dp / BigR | 
| 639 |  |  | scale = rij * ri | 
| 640 |  |  | else | 
| 641 |  |  | ri = riji | 
| 642 |  |  | scale = 1.0_dp | 
| 643 |  |  | endif | 
| 644 |  |  | endif | 
| 645 |  |  |  | 
| 646 | gezelter | 2123 | ct_ij = uz_i(1)*uz_j(1) + uz_i(2)*uz_j(2) + uz_i(3)*uz_j(3) | 
| 647 | gezelter | 2105 |  | 
| 648 |  |  | ri2 = ri * ri | 
| 649 |  |  | ri3 = ri2 * ri | 
| 650 | gezelter | 2095 | ri4 = ri2 * ri2 | 
| 651 | gezelter | 2105 | sc2 = scale * scale | 
| 652 | gezelter | 2095 |  | 
| 653 |  |  | pref = pre22 * mu_i * mu_j | 
| 654 | gezelter | 2105 | vterm = pref * ri3 * (ct_ij - 3.0d0 * ct_i * ct_j * sc2) | 
| 655 | gezelter | 2095 | vpair = vpair + vterm | 
| 656 |  |  | epot = epot + sw * vterm | 
| 657 |  |  |  | 
| 658 | gezelter | 2105 | a1 = 5.0d0 * ct_i * ct_j * sc2 - ct_ij | 
| 659 | gezelter | 2095 |  | 
| 660 | gezelter | 2123 | dudx=dudx+pref*sw*3.0d0*ri4*scale*(a1*xhat-ct_i*uz_j(1)-ct_j*uz_i(1)) | 
| 661 |  |  | dudy=dudy+pref*sw*3.0d0*ri4*scale*(a1*yhat-ct_i*uz_j(2)-ct_j*uz_i(2)) | 
| 662 |  |  | dudz=dudz+pref*sw*3.0d0*ri4*scale*(a1*zhat-ct_i*uz_j(3)-ct_j*uz_i(3)) | 
| 663 | gezelter | 2095 |  | 
| 664 | gezelter | 2123 | duduz_i(1) = duduz_i(1) + pref*sw*ri3*(uz_j(1) - 3.0d0*ct_j*xhat*sc2) | 
| 665 |  |  | duduz_i(2) = duduz_i(2) + pref*sw*ri3*(uz_j(2) - 3.0d0*ct_j*yhat*sc2) | 
| 666 |  |  | duduz_i(3) = duduz_i(3) + pref*sw*ri3*(uz_j(3) - 3.0d0*ct_j*zhat*sc2) | 
| 667 | gezelter | 2095 |  | 
| 668 | gezelter | 2123 | duduz_j(1) = duduz_j(1) + pref*sw*ri3*(uz_i(1) - 3.0d0*ct_i*xhat*sc2) | 
| 669 |  |  | duduz_j(2) = duduz_j(2) + pref*sw*ri3*(uz_i(2) - 3.0d0*ct_i*yhat*sc2) | 
| 670 |  |  | duduz_j(3) = duduz_j(3) + pref*sw*ri3*(uz_i(3) - 3.0d0*ct_i*zhat*sc2) | 
| 671 | gezelter | 2095 | endif | 
| 672 |  |  |  | 
| 673 |  |  | endif | 
| 674 | gezelter | 2123 |  | 
| 675 |  |  | if (i_is_Quadrupole) then | 
| 676 |  |  | if (j_is_Charge) then | 
| 677 |  |  |  | 
| 678 |  |  | ri2 = riji * riji | 
| 679 |  |  | ri3 = ri2 * riji | 
| 680 | gezelter | 2124 | ri4 = ri2 * ri2 | 
| 681 | gezelter | 2123 | cx2 = cx_i * cx_i | 
| 682 |  |  | cy2 = cy_i * cy_i | 
| 683 |  |  | cz2 = cz_i * cz_i | 
| 684 |  |  |  | 
| 685 | gezelter | 2124 | pref = pre14 * q_j / 6.0_dp | 
| 686 | gezelter | 2123 | vterm = pref * ri3 * (qxx_i * (3.0_dp*cx2 - 1.0_dp) + & | 
| 687 |  |  | qyy_i * (3.0_dp*cy2 - 1.0_dp) + & | 
| 688 |  |  | qzz_i * (3.0_dp*cz2 - 1.0_dp)) | 
| 689 |  |  | vpair = vpair + vterm | 
| 690 |  |  | epot = epot + sw * vterm | 
| 691 |  |  |  | 
| 692 |  |  | dudx = dudx - 5.0_dp*sw*vterm*riji*xhat - pref * sw * ri4 * ( & | 
| 693 |  |  | qxx_i*(6.0_dp*cx_i*ux_i(1) - 2.0_dp*xhat) + & | 
| 694 |  |  | qyy_i*(6.0_dp*cy_i*uy_i(1) - 2.0_dp*xhat) + & | 
| 695 |  |  | qzz_i*(6.0_dp*cz_i*uz_i(1) - 2.0_dp*xhat) ) | 
| 696 |  |  | dudy = dudy - 5.0_dp*sw*vterm*riji*yhat - pref * sw * ri4 * ( & | 
| 697 |  |  | qxx_i*(6.0_dp*cx_i*ux_i(2) - 2.0_dp*yhat) + & | 
| 698 |  |  | qyy_i*(6.0_dp*cy_i*uy_i(2) - 2.0_dp*yhat) + & | 
| 699 |  |  | qzz_i*(6.0_dp*cz_i*uz_i(2) - 2.0_dp*yhat) ) | 
| 700 |  |  | dudz = dudz - 5.0_dp*sw*vterm*riji*zhat - pref * sw * ri4 * ( & | 
| 701 |  |  | qxx_i*(6.0_dp*cx_i*ux_i(3) - 2.0_dp*zhat) + & | 
| 702 |  |  | qyy_i*(6.0_dp*cy_i*uy_i(3) - 2.0_dp*zhat) + & | 
| 703 |  |  | qzz_i*(6.0_dp*cz_i*uz_i(3) - 2.0_dp*zhat) ) | 
| 704 |  |  |  | 
| 705 |  |  | dudux_i(1) = dudux_i(1) + pref * sw * ri3 * (qxx_i*6.0_dp*cx_i*xhat) | 
| 706 |  |  | dudux_i(2) = dudux_i(2) + pref * sw * ri3 * (qxx_i*6.0_dp*cx_i*yhat) | 
| 707 |  |  | dudux_i(3) = dudux_i(3) + pref * sw * ri3 * (qxx_i*6.0_dp*cx_i*zhat) | 
| 708 |  |  |  | 
| 709 |  |  | duduy_i(1) = duduy_i(1) + pref * sw * ri3 * (qyy_i*6.0_dp*cy_i*xhat) | 
| 710 |  |  | duduy_i(2) = duduy_i(2) + pref * sw * ri3 * (qyy_i*6.0_dp*cy_i*yhat) | 
| 711 |  |  | duduy_i(3) = duduy_i(3) + pref * sw * ri3 * (qyy_i*6.0_dp*cy_i*zhat) | 
| 712 |  |  |  | 
| 713 |  |  | duduz_i(1) = duduz_i(1) + pref * sw * ri3 * (qzz_i*6.0_dp*cz_i*xhat) | 
| 714 |  |  | duduz_i(2) = duduz_i(2) + pref * sw * ri3 * (qzz_i*6.0_dp*cz_i*yhat) | 
| 715 |  |  | duduz_i(3) = duduz_i(3) + pref * sw * ri3 * (qzz_i*6.0_dp*cz_i*zhat) | 
| 716 |  |  | endif | 
| 717 |  |  | endif | 
| 718 |  |  |  | 
| 719 | gezelter | 2095 |  | 
| 720 |  |  | if (do_pot) then | 
| 721 |  |  | #ifdef IS_MPI | 
| 722 |  |  | pot_row(atom1) = pot_row(atom1) + 0.5d0*epot | 
| 723 |  |  | pot_col(atom2) = pot_col(atom2) + 0.5d0*epot | 
| 724 |  |  | #else | 
| 725 |  |  | pot = pot + epot | 
| 726 |  |  | #endif | 
| 727 |  |  | endif | 
| 728 |  |  |  | 
| 729 |  |  | #ifdef IS_MPI | 
| 730 |  |  | f_Row(1,atom1) = f_Row(1,atom1) + dudx | 
| 731 |  |  | f_Row(2,atom1) = f_Row(2,atom1) + dudy | 
| 732 |  |  | f_Row(3,atom1) = f_Row(3,atom1) + dudz | 
| 733 |  |  |  | 
| 734 |  |  | f_Col(1,atom2) = f_Col(1,atom2) - dudx | 
| 735 |  |  | f_Col(2,atom2) = f_Col(2,atom2) - dudy | 
| 736 |  |  | f_Col(3,atom2) = f_Col(3,atom2) - dudz | 
| 737 |  |  |  | 
| 738 |  |  | if (i_is_Dipole .or. i_is_Quadrupole) then | 
| 739 | gezelter | 2123 | t_Row(1,atom1)=t_Row(1,atom1) - uz_i(2)*duduz_i(3) + uz_i(3)*duduz_i(2) | 
| 740 |  |  | t_Row(2,atom1)=t_Row(2,atom1) - uz_i(3)*duduz_i(1) + uz_i(1)*duduz_i(3) | 
| 741 |  |  | t_Row(3,atom1)=t_Row(3,atom1) - uz_i(1)*duduz_i(2) + uz_i(2)*duduz_i(1) | 
| 742 | gezelter | 2095 | endif | 
| 743 | gezelter | 2123 | if (i_is_Quadrupole) then | 
| 744 |  |  | t_Row(1,atom1)=t_Row(1,atom1) - ux_i(2)*dudux_i(3) + ux_i(3)*dudux_i(2) | 
| 745 |  |  | t_Row(2,atom1)=t_Row(2,atom1) - ux_i(3)*dudux_i(1) + ux_i(1)*dudux_i(3) | 
| 746 |  |  | t_Row(3,atom1)=t_Row(3,atom1) - ux_i(1)*dudux_i(2) + ux_i(2)*dudux_i(1) | 
| 747 | gezelter | 2095 |  | 
| 748 | gezelter | 2123 | t_Row(1,atom1)=t_Row(1,atom1) - uy_i(2)*duduy_i(3) + uy_i(3)*duduy_i(2) | 
| 749 |  |  | t_Row(2,atom1)=t_Row(2,atom1) - uy_i(3)*duduy_i(1) + uy_i(1)*duduy_i(3) | 
| 750 |  |  | t_Row(3,atom1)=t_Row(3,atom1) - uy_i(1)*duduy_i(2) + uy_i(2)*duduy_i(1) | 
| 751 |  |  | endif | 
| 752 |  |  |  | 
| 753 | gezelter | 2095 | if (j_is_Dipole .or. j_is_Quadrupole) then | 
| 754 | gezelter | 2123 | t_Col(1,atom2)=t_Col(1,atom2) - uz_j(2)*duduz_j(3) + uz_j(3)*duduz_j(2) | 
| 755 |  |  | t_Col(2,atom2)=t_Col(2,atom2) - uz_j(3)*duduz_j(1) + uz_j(1)*duduz_j(3) | 
| 756 |  |  | t_Col(3,atom2)=t_Col(3,atom2) - uz_j(1)*duduz_j(2) + uz_j(2)*duduz_j(1) | 
| 757 | gezelter | 2095 | endif | 
| 758 | gezelter | 2123 | if (j_is_Quadrupole) then | 
| 759 |  |  | t_Col(1,atom2)=t_Col(1,atom2) - ux_j(2)*dudux_j(3) + ux_j(3)*dudux_j(2) | 
| 760 |  |  | t_Col(2,atom2)=t_Col(2,atom2) - ux_j(3)*dudux_j(1) + ux_j(1)*dudux_j(3) | 
| 761 |  |  | t_Col(3,atom2)=t_Col(3,atom2) - ux_j(1)*dudux_j(2) + ux_j(2)*dudux_j(1) | 
| 762 | gezelter | 2095 |  | 
| 763 | gezelter | 2123 | t_Col(1,atom2)=t_Col(1,atom2) - uy_j(2)*duduy_j(3) + uy_j(3)*duduy_j(2) | 
| 764 |  |  | t_Col(2,atom2)=t_Col(2,atom2) - uy_j(3)*duduy_j(1) + uy_j(1)*duduy_j(3) | 
| 765 |  |  | t_Col(3,atom2)=t_Col(3,atom2) - uy_j(1)*duduy_j(2) + uy_j(2)*duduy_j(1) | 
| 766 |  |  | endif | 
| 767 |  |  |  | 
| 768 | gezelter | 2095 | #else | 
| 769 |  |  | f(1,atom1) = f(1,atom1) + dudx | 
| 770 |  |  | f(2,atom1) = f(2,atom1) + dudy | 
| 771 |  |  | f(3,atom1) = f(3,atom1) + dudz | 
| 772 |  |  |  | 
| 773 |  |  | f(1,atom2) = f(1,atom2) - dudx | 
| 774 |  |  | f(2,atom2) = f(2,atom2) - dudy | 
| 775 |  |  | f(3,atom2) = f(3,atom2) - dudz | 
| 776 |  |  |  | 
| 777 |  |  | if (i_is_Dipole .or. i_is_Quadrupole) then | 
| 778 | gezelter | 2123 | t(1,atom1)=t(1,atom1) - uz_i(2)*duduz_i(3) + uz_i(3)*duduz_i(2) | 
| 779 |  |  | t(2,atom1)=t(2,atom1) - uz_i(3)*duduz_i(1) + uz_i(1)*duduz_i(3) | 
| 780 |  |  | t(3,atom1)=t(3,atom1) - uz_i(1)*duduz_i(2) + uz_i(2)*duduz_i(1) | 
| 781 | gezelter | 2095 | endif | 
| 782 | gezelter | 2123 | if (i_is_Quadrupole) then | 
| 783 |  |  | t(1,atom1)=t(1,atom1) - ux_i(2)*dudux_i(3) + ux_i(3)*dudux_i(2) | 
| 784 |  |  | t(2,atom1)=t(2,atom1) - ux_i(3)*dudux_i(1) + ux_i(1)*dudux_i(3) | 
| 785 |  |  | t(3,atom1)=t(3,atom1) - ux_i(1)*dudux_i(2) + ux_i(2)*dudux_i(1) | 
| 786 |  |  |  | 
| 787 |  |  | t(1,atom1)=t(1,atom1) - uy_i(2)*duduy_i(3) + uy_i(3)*duduy_i(2) | 
| 788 |  |  | t(2,atom1)=t(2,atom1) - uy_i(3)*duduy_i(1) + uy_i(1)*duduy_i(3) | 
| 789 |  |  | t(3,atom1)=t(3,atom1) - uy_i(1)*duduy_i(2) + uy_i(2)*duduy_i(1) | 
| 790 |  |  | endif | 
| 791 |  |  |  | 
| 792 | gezelter | 2095 | if (j_is_Dipole .or. j_is_Quadrupole) then | 
| 793 | gezelter | 2123 | t(1,atom2)=t(1,atom2) - uz_j(2)*duduz_j(3) + uz_j(3)*duduz_j(2) | 
| 794 |  |  | t(2,atom2)=t(2,atom2) - uz_j(3)*duduz_j(1) + uz_j(1)*duduz_j(3) | 
| 795 |  |  | t(3,atom2)=t(3,atom2) - uz_j(1)*duduz_j(2) + uz_j(2)*duduz_j(1) | 
| 796 | gezelter | 2095 | endif | 
| 797 | gezelter | 2123 | if (j_is_Quadrupole) then | 
| 798 |  |  | t(1,atom2)=t(1,atom2) - ux_j(2)*dudux_j(3) + ux_j(3)*dudux_j(2) | 
| 799 |  |  | t(2,atom2)=t(2,atom2) - ux_j(3)*dudux_j(1) + ux_j(1)*dudux_j(3) | 
| 800 |  |  | t(3,atom2)=t(3,atom2) - ux_j(1)*dudux_j(2) + ux_j(2)*dudux_j(1) | 
| 801 |  |  |  | 
| 802 |  |  | t(1,atom2)=t(1,atom2) - uy_j(2)*duduy_j(3) + uy_j(3)*duduy_j(2) | 
| 803 |  |  | t(2,atom2)=t(2,atom2) - uy_j(3)*duduy_j(1) + uy_j(1)*duduy_j(3) | 
| 804 |  |  | t(3,atom2)=t(3,atom2) - uy_j(1)*duduy_j(2) + uy_j(2)*duduy_j(1) | 
| 805 |  |  | endif | 
| 806 |  |  |  | 
| 807 | gezelter | 2095 | #endif | 
| 808 |  |  |  | 
| 809 |  |  | #ifdef IS_MPI | 
| 810 |  |  | id1 = AtomRowToGlobal(atom1) | 
| 811 |  |  | id2 = AtomColToGlobal(atom2) | 
| 812 |  |  | #else | 
| 813 |  |  | id1 = atom1 | 
| 814 |  |  | id2 = atom2 | 
| 815 |  |  | #endif | 
| 816 |  |  |  | 
| 817 |  |  | if (molMembershipList(id1) .ne. molMembershipList(id2)) then | 
| 818 |  |  |  | 
| 819 |  |  | fpair(1) = fpair(1) + dudx | 
| 820 |  |  | fpair(2) = fpair(2) + dudy | 
| 821 |  |  | fpair(3) = fpair(3) + dudz | 
| 822 |  |  |  | 
| 823 |  |  | endif | 
| 824 |  |  |  | 
| 825 |  |  | return | 
| 826 |  |  | end subroutine doElectrostaticPair | 
| 827 |  |  |  | 
| 828 |  |  | end module electrostatic_module |