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root/OpenMD/trunk/forceFields/MnM.frc
Revision: 1623
Committed: Mon Sep 12 21:49:41 2011 UTC (13 years, 10 months ago) by gezelter
File size: 16487 byte(s)
Log Message:
Adding Repulsive Power potential

File Contents

# Content
1 // This is the forcefield file for the Metal-NonMetal(MnM) Interaction Forcefield
2 //
3 // The sections are divided into AtomTypes
4 //
5
6
7 begin Options
8 Name = "MnM"
9 MetallicEnergyUnitScaling 23.0605423
10 end Options
11
12
13 begin BaseAtomTypes
14 //Name mass (amu)
15 CH4 16.05
16 CH3 15.04
17 CH2 14.03
18 CH 13.02
19 // Aromatic CH as in benzene
20 CHar 13.02
21 //
22 RCHar 12.0107
23 // CH3 (sp3) thiol/sulfide/disulfide
24 CH3S 15.04
25 // CH2 (sp3) thiol/sulfide/disulfide
26 CH2S 14.03
27 //CH (sp3) all other/thiol
28 CHS 13.02
29 //C (sp3) all other/thiol
30 CS 12.0107
31 // sulfone
32 SYZ 32.0655
33 // O in sulfone
34 //OY
35 // thiol S
36 SH 32.0655
37 //Thiol H
38 HS 1.0079
39 //Thiol S
40 S 32.0655
41 // Sulfoxide
42 SZ 32.0655
43 // Sulfur in disulfide
44 SS 32.0655
45 // Sulfur in aromatic (thiophene)
46 SP 32.0655
47 // sp2 carbon in thiophene
48 CS 12.0107
49 // Sulfur attached to gold
50 SAu 228.9807
51
52
53 //Water
54 SSD 18.0153
55 SSD1 18.0153
56 SSD_E 18.0153
57 SSD_RF 18.0153
58 O_TIP3P 15.9994
59 O_TIP4P 15.9994
60 O_TIP4P-Ew 15.9994
61 O_TIP5P 15.9994
62 O_TIP5P-E 15.9994
63 O_SPCE 15.9994
64 O_SPC 15.9994
65 H_TIP3P 1.0079
66 H_TIP4P 1.0079
67 H_TIP4P-Ew 1.0079
68 H_TIP5P 1.0079
69 H_SPCE 1.0079
70 H_SPC 1.0079
71 EP_TIP4P 0.0
72 EP_TIP4P-Ew 0.0
73 EP_TIP5P 0.0
74
75 //Standard Atoms
76 C 12.0107
77 S 32.0655
78 Ni 58.710
79 Cu 63.550
80 Rh 102.90550
81 Pd 106.42
82 Ag 107.8682
83 Ir 192.217
84 Pt 195.09
85 Au 196.97
86 end BaseAtomTypes
87
88 begin AtomTypes
89 end AtomTypes
90
91 begin DirectionalAtomTypes
92 //Name I_xx I_yy I_zz (All moments in (amu*Ang^2)
93 SSD 1.7696 0.6145 1.1550
94 SSD1 1.7696 0.6145 1.1550
95 SSD_E 1.7696 0.6145 1.1550
96 SSD_RF 1.7696 0.6145 1.1550
97 end DirectionalAtomTypes
98
99
100 begin LennardJonesAtomTypes
101 //Name epsilon sigma
102 SSD 0.152 3.051
103 SSD1 0.152 3.016
104 SSD_E 0.152 3.035
105 SSD_RF 0.152 3.019
106 O_TIP3P 0.1521 3.15061
107 O_TIP4P 0.1550 3.15365
108 O_TIP4P-Ew 0.16275 3.16435
109 O_TIP5P 0.16 3.12
110 O_TIP5P-E 0.178 3.097
111 O_SPCE 0.15532 3.16549
112 O_SPC 0.15532 3.16549
113 // From TraPPE-UA JPCB, 109, 24100 and JCPB 102,2569
114 CH4 0.2941 3.73
115 CH3 0.1947 3.75
116 CH2 0.09140 3.95
117 CH 0.0987 4.68
118 CS 0.0009935 6.40
119 CH3S 0.1947 3.75
120 CH2S 0.09140 3.95
121 CHS 0.0987 4.68
122 // From CPC 177 2007 S-S distance on gold surfaces is 4.45
123 S 0.3954 4.45
124 SH 0.4610 3.62
125 SS 0.3279 3.72
126 SP 0.3576 3.60
127 //From TraPPE-UA JPCB 104, 8008
128 CHar 0.1003 3.695
129 RCHar 0.04173 3.88
130 // ---- End From TraPPE-UA
131
132 end LennardJonesAtomTypes
133
134 begin SCAtomTypes
135 // Name epsilon(eV) c m n alpha(angstroms)
136 Ni 0.0073767 84.745 5.0 10.0 3.5157
137 Cu 0.0057921 84.843 5.0 10.0 3.6030
138 Rh 0.0024612 305.499 5.0 13.0 3.7984
139 Pd 0.0032864 148.205 6.0 12.0 3.8813
140 Ag 0.0039450 96.524 6.0 11.0 4.0691
141 Ir 0.0037674 224.815 6.0 13.0 3.8344
142 Pt 0.0097894 71.336 7.0 11.0 3.9163
143 Au 0.0078052 53.581 8.0 11.0 4.0651
144 end SCAtomTypes
145
146
147 // Metal non-metal interactions.
148 // Format: Metal Atom Type, Non-Metal Atom Type, Interaction Type, Interaction Parameters
149 // Where interaction type can be: MAW, LennardJones or ShiftedMorse or RepulsiveMorse
150 begin MetalNonMetalInteractions
151
152 //MAW (Metal Angular Water section)
153 // r_e, D_e beta ca1 cb1
154 Cu SSD_E MAW 2.5525 1.9850 1.1680 1.1250 0.750000
155 //Au SSD_E MAW 2.8170 1.7850 1.2680 1.2500 0.2050 0.0
156 //Au SSD_E MAW 2.7510 2.95 1.101 0.750000 0.750000
157 //1. 1.5 2.6500001 -3.000162356E-2 1.30999744
158 //Au SSD_E MAW 2.7 1.06 1.264 0.16 0.8
159 Au SSD_E MAW 2.68 0.6 1.33 0.95 -0.25
160
161 //LennardJones
162 // sigma epsilon
163 Au CH3 LennardJones 3.54 0.2146
164 Au CH2 LennardJones 3.54 0.1749
165 //Au SH LennardJones 2.40 8.465
166 Au S LennardJones 2.40 8.465
167
168 //Shifted Morse
169 // r0 D0 beta0
170 Au O_SPCE ShiftedMorse 3.70 0.0424 0.769
171
172 //Repulsive Morse
173 // r0 D0 beta0
174 Au H_SPCE RepulsiveMorse -1.00 0.00850 0.769
175
176 //Repulsive Power
177 Au ON RepulsivePower 3.47005 0.186208 11
178 Au NO RepulsivePower 3.53955 0.168629 11
179 end MetalNonMetalInteractions
180
181
182 begin ChargeAtomTypes
183 // Name charge
184 O_TIP3P -0.834
185 O_SPCE -0.8476
186 O_SPC -0.82
187 H_TIP3P 0.417
188 H_TIP4P 0.520
189 H_TIP4P-Ew 0.52422
190 H_TIP5P 0.241
191 H_SPCE 0.4238
192 H_SPC 0.42
193 EP_TIP4P -1.040
194 EP_TIP4P-Ew -1.04844
195 EP_TIP5P -0.241
196 end ChargeAtomTypes
197
198 begin MultipoleAtomTypes
199 // OpenMD currently only supports charge-charge, charge-dipole,
200 // dipole-dipole, and charge-quadrupole interactions.
201 // Dipoles may be either traditional point-dipoles or split-dipoles.
202 // possible formats for a multipolar atom type are:
203 //
204 // Point-dipoles:
205 // name d phi theta psi dipole_moment
206 //
207 // Split-dipoles:
208 // name s phi theta psi dipole_moment splitdipole_distance
209 //
210 // Point-Quadrupoles:
211 // name q phi theta psi Qxx Qyy Qzz
212 //
213 // Atoms with both dipole and quadrupole moments:
214 // name dq phi theta psi dipole_moment Qxx Qyy Qzz
215 //
216 // Atoms with both split dipoles and quadrupole moments:
217 // name sq phi theta psi dipole_moment splitdipole_distance Qxx Qyy Qzz
218 //
219 // Euler angles are given in zxz convention in units of degrees.
220 //
221 // Charges are given in units of electrons.
222 //
223 // Dipoles are given in units of Debyes.
224 //
225 // Split dipole distances are given in units of Angstroms.
226 //
227 // Quadrupole moments are given in units of 10^-26 esu cm^2 (also known as an
228 // esu centi-barn)
229 //
230 SSD_E dq 0.0 0.0 0.0 2.42 -1.682 1.762 -0.08
231 SSD_RF dq 0.0 0.0 0.0 2.48 -1.682 1.762 -0.08
232 SSD dq 0.0 0.0 0.0 2.35 -1.682 1.762 -0.08
233 SSD1 dq 0.0 0.0 0.0 2.35 -1.682 1.762 -0.08
234 end MultipoleAtomTypes
235
236 begin StickyAtomTypes
237 //name w0 v0 (kcal/mol) v0p rl (Ang) ru rlp rup
238 SSD_E 0.07715 3.90 3.90 2.40 3.80 2.75 3.35
239 SSD_RF 0.07715 3.90 3.90 2.40 3.80 2.75 3.35
240 SSD 0.07715 3.7284 3.7284 2.75 3.35 2.75 4.0
241 SSD1 0.07715 3.6613 3.6613 2.75 3.35 2.75 4.0
242 end StickyAtomTypes
243
244
245 begin BondTypes
246
247 //Atom1 Atom2 Fixed
248 //V_Fixed = 0
249
250 //Atom1 Atom2 Harmonic b0 Kb (kcal/mol)
251 //V_Harmonic = 0.5*Kb(b- bo)^2
252 //Harmonic Examples
253 CH3 CH3 Harmonic 1.526 260
254 CH3 CH2 Harmonic 1.526 260
255 CH3 CH Harmonic 1.526 260
256 CH2 CH2 Harmonic 1.526 260
257 CH2 CH Harmonic 1.526 260
258 CH CH Harmonic 1.526 260
259 // fix the Kb for the thiol below:
260 S CH2 Harmonic 1.82 281
261 SH CH2 Harmonic 1.82 281
262
263 //Atom1 Atom2 Cubic b0 K3 K2 K1 K0
264 //V_Cubic = K3(b - b0)^3 + K2(b - b0)^2 + K1(b - b0) + K0
265
266
267 //Atom1 Atom2 Quartic b0 K4 K3 K2 K1 K0
268 //V_Quartic = K4(b - b0)^4 + K3(b - b0)^3 + K2(b - b0)^2 + K1(b - b0) + K0
269
270
271 //Atom1 Atom2 Polynomial b0 i Ki [j Kj]
272 //V_Quartic = Ki(b - b0)^i + Kj(b - b0)^j + ...
273
274
275 end BondTypes
276
277 begin BendTypes
278
279 //Harmonic
280 //Atom1 Atom2 Atom3 Harmonic Theta0 Ktheta
281 //V_Harmonic = 0.5*Ktheta(Theta - Theta0)^2
282 //Ktheta: kcal/mole/rad**2
283 //Theta0: degrees
284 //Harmonic examples
285 //
286 //CH3 CH2 CH3 Harmonic 114.0 117.68
287 //CH3 CH2 CH2 Harmonic 114.0 117.68
288 //CH3 CH2 CH Harmonic 114.0 117.68
289 //CH3 CH CH3 Harmonic 112.0 117.68
290 //CH3 CH CH2 Harmonic 112.0 117.68
291 //CH3 CH CH Harmonic 112.0 117.68
292 //CH2 CH2 CH2 Harmonic 114.0 117.68
293 //CH2 CH2 CH Harmonic 114.0 117.68
294 CH2 CH CH2 Harmonic 112.0 117.68
295 CH2 CH CH Harmonic 112.0 117.68
296 //CH CH2 CH Harmonic 114.0 117.68
297 CH CH CH Harmonic 112.0 117.68
298
299 //From Lubna et al.JPCB 109, 24100 (2005) TraPPE
300 CH3 CH2 SH Harmonic 96.0 67.220
301 CH2 CH2 SH Harmonic 96.0 67.220
302 CH2 CH2 S Harmonic 114.0 124.19
303 CH3 CH2 S Harmonic 114.0 124.19
304 CH3 CH2 CH3 Harmonic 114.0 124.19
305 CH3 CH2 CH2 Harmonic 114.0 124.19
306 CH2 CH2 CH2 Harmonic 114.0 124.19
307 CH3 CH2 CH Harmonic 114.0 124.19
308
309
310 //UreyBradley
311 //Atom1 Atom2 Atom3 UreyBradley Theta0 Ktheta S0 Kub
312 //V_UreyBradleyBend = Ktheta(Theta - Theta0)^2 + Kub(S - S0)^2
313 //Ktheta: kcal/mole/rad**2
314 //Theta0: degrees
315 //Kub: kcal/mole/A**2
316 //S0: A
317
318 //Cubic
319 //Atom1 Atom2 Atom3 Cubic Theta0 K3 K2 K1 K0
320 //V_Cubic = K3(Theta - Theta0)^3 + K2(Theta - Theta0)^2 + K1(Theta - Theta0) + K0
321
322 //Quartic
323 //Atom1 Atom2 Atom3 Quartic Theta0 K4 K3 K2 K1 K0
324 //V_Quartic = K4(Theta - Theta0)^4 + K3(Theta - Theta0)^3 + K2(Theta - Theta0)^2 + K1(Theta - Theta0) + K0
325
326 //Polynomial
327 //Atom1 Atom2 Atom3 Polynomial Theta0 i Ki [j Kj]
328 //V_Polynomial = Ki(Theta - Theta0)^i + Kj(Theta - Theta0)^j + ...
329
330 end BendTypes
331
332 begin TorsionTypes
333
334 // All thiol torsions from Kautman and Klein (J. Phys. Chem. 1989, 91, 4994-5001)
335
336 //S CH2 CH2 CH3 Polynomial 0 2.218 1 2.905 2 -3.136 3 -0.7313 4 6.272 5 -7.528
337 //S CH2 CH2 CH2 Polynomial 0 2.218 1 2.905 2 -3.136 3 -0.7313 4 6.272 5 -7.528
338 //S CH2 CH2 CH Polynomial 0 2.218 1 2.905 2 -3.136 3 -0.7313 4 6.272 5 -7.528
339 //S CH2 CH2 C Polynomial 0 2.218 1 2.905 2 -3.136 3 -0.7313 4 6.272 5 -7.528
340
341 // All type 1 possibilities from Dubbeldam et al. (J. Phys. Chem. B 2004, 108, 12301-12313)
342
343 //CH3 CH2 CH2 CH3 Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
344 //CH3 CH2 CH2 CH2 Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
345 //CH3 CH2 CH2 CH Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
346 //CH3 CH2 CH2 C Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
347 //CH2 CH2 CH2 CH2 Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
348 //CH2 CH2 CH2 CH Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
349 //CH2 CH2 CH2 C Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
350 //CH CH2 CH2 CH Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
351 //CH CH2 CH2 C Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
352 //C CH2 CH2 C Polynomial 0 2.3939 1 3.871 2 -0.7111 3 -3.864 4 1.4222 5 -3.111
353
354 // All type 2 possibilities:
355
356 //H CH CH2 CH3 Polynomial 0 2.7167 1 8.665 2 0.82669 3 -12.92 4 -1.653 5 3.2712
357 //H CH CH2 CH2 Polynomial 0 2.7161 1 8.665 2 0.82669 3 -12.92 4 -1.653 5 3.2712
358 //H CH CH2 CH Polynomial 0 2.7161 1 8.665 2 0.82669 3 -12.92 4 -1.653 5 3.2712
359 //H CH CH2 C Polynomial 0 2.7161 1 8.665 2 0.82669 3 -12.92 4 -1.653 5 3.2712
360
361 // All type 3 possibilities:
362
363 //CH3 C CH2 CH3 Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
364 //CH3 C CH2 CH2 Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
365 //CH3 C CH2 CH Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
366 //CH3 C CH2 C Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
367 //CH2 C CH2 CH2 Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
368 //CH2 C CH2 CH Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
369 //CH2 C CH2 C Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
370 //CH C CH2 CH Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
371 //CH C CH2 C Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
372 //C C CH2 C Polynomial 0 2.5701 1 7.710 2 0 3 -10.29 4 0 5 0
373
374 // All type 4 possibilities:
375
376 //CH3 C C CH3 Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
377 //CH3 C C CH2 Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
378 //CH3 C C CH Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
379 //CH3 C C C Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
380 //CH2 C C CH2 Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
381 //CH2 C C CH Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
382 //CH2 C C C Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
383 //CH C C CH Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
384 //CH C C C Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
385 //C C C C Polynomial 0 4.0652 1 12.20 2 0 3 -16.26 4 0 5 0
386
387 //All type 5 possibilities:
388
389 //CH3 C CH H Polynomial 0 3.1301 1 9.390 2 0 3 -12.52 4 0 5 0
390 //CH2 C CH H Polynomial 0 3.1301 1 9.390 2 0 3 -12.52 4 0 5 0
391 //CH C CH H Polynomial 0 3.1301 1 9.390 2 0 3 -12.52 4 0 5 0
392 //C C CH H Polynomial 0 3.1301 1 9.390 2 0 3 -12.52 4 0 5 0
393
394 //All type 6 possibilities:
395
396 //H CH CH H Polynomial 0 2.1706 1 5.609 2 -1.804 3 -5.976 4 3.6089 5 -3.6089
397
398 //Cubic
399 //Atom1 Atom2 Atom3 Atom4 Cubic k3 k2 k1 k0 ( all are kcal/mol )
400 //V_Cubic = k3(cos phi)^3 + k2(cos phi)^2 + k1(cos phi) + k0
401 //Cubic Examples
402 //CH3 CH2 CH2 CH3 Cubic 5.9602 -0.2568 -3.802 2.1586
403 CH3 CH2 CH CH3 Cubic 3.3254 -0.4215 -1.686 1.1661
404 CH3 CH CH CH3 Cubic 3.3254 -0.4215 -1.686 1.1661
405 //CH3 CH2 CH2 CH2 Cubic 5.9602 -0.2568 -3.802 2.1586
406 CH3 CH2 CH CH2 Cubic 3.3254 -0.4215 -1.686 1.1661
407 CH3 CH CH2 CH2 Cubic 3.3254 -0.4215 -1.686 1.1661
408 CH3 CH CH CH2 Cubic 3.3254 -0.4215 -1.686 1.1661
409 //CH3 CH2 CH2 CH Cubic 5.9602 -0.2568 -3.802 2.1586
410 CH3 CH2 CH CH Cubic 3.3254 -0.4215 -1.686 1.1661
411 CH3 CH CH2 CH Cubic 3.3254 -0.4215 -1.686 1.1661
412 CH3 CH CH CH Cubic 3.3254 -0.4215 -1.686 1.1661
413 //CH2 CH2 CH2 CH2 Cubic 5.9602 -0.2568 -3.802 2.1586
414 CH2 CH2 CH CH2 Cubic 3.3254 -0.4215 -1.686 1.1661
415 CH2 CH CH CH2 Cubic 3.3254 -0.4215 -1.686 1.1661
416 CH2 CH2 CH2 CH Cubic 5.9602 -0.2568 -3.802 2.1586
417 CH2 CH2 CH CH Cubic 3.3254 -0.4215 -1.686 1.1661
418 CH2 CH CH2 CH Cubic 3.3254 -0.4215 -1.686 1.1661
419 CH2 CH CH CH Cubic 3.3254 -0.4215 -1.686 1.1661
420 CH CH2 CH2 CH Cubic 5.9602 -0.2568 -3.802 2.1586
421 CH CH2 CH CH Cubic 3.3254 -0.4215 -1.686 1.1661
422 CH CH CH CH Cubic 3.3254 -0.4215 -1.686 1.1661
423 //S CH2 CH2 CH2 Cubic 5.9602 -0.2568 -3.802 2.1586
424
425 //Opls
426 //Atom1 Atom2 Atom3 Atom4 Opls v1 v2 v3
427 //V_Opls = v1 / 2 * [1 + cos(phi)] + v2 / 2 * [1 - cos(2*phi)] + v3 / 2 * [1 + cos(3*phi)]
428 //units for v_n: kcal / mol
429
430
431 //Trappe
432 //Atom1 Atom2 Atom3 Atom4 Trappe c0 c1 c2 c3
433 //V_Opls = c0 + c1 * [1 + cos(phi)] + c2 * [1 - cos(2*phi)] + c3 * [1 + cos(3*phi)]
434 //units for c_n: kcal / mol
435
436 //From Martin et al. JPCB 120, 2569 (1998)
437 CH3 CH2 CH2 CH3 Trappe 0.0 0.70544 -0.13549 1.5723
438 CH3 CH2 CH2 CH2 Trappe 0.0 0.70544 -0.13549 1.5723
439 CH3 CH2 CH2 CH Trappe 0.0 0.70544 -0.13549 1.5723
440 CH2 CH2 CH2 CH2 Trappe 0.0 0.70544 -0.13549 1.5723
441
442
443 //From Lubna et al.JPCB 109, 24100 (2005)
444 CH3 CH2 CH2 SH Trappe 0.10507 -0.10342 0.036680 0.60874
445 CH2 CH2 CH2 SH Trappe 0.10507 -0.10342 0.036680 0.60874
446 // Thiol attached to a metal surface.
447 CH3 CH2 CH2 S Trappe 0.10507 -0.10342 0.036680 0.60874
448 CH2 CH2 CH2 S Trappe 0.10507 -0.10342 0.036680 0.60874
449 CH3 CH2 S CH2 Trappe 0.0 0.73041 -0.53685 1.1557
450 CH2 CH2 S CH2 Trappe 0.0 0.73041 -0.53685 1.1557
451 CH CH2 S CH2 Trappe 0.0 0.73041 -0.53685 1.1557
452 CH2 S S CH2 Trappe 3.5049 0.79083 -4.3348 1.003932
453 CH3 S S CH3 Trappe 3.5049 0.79083 -4.3348 1.003932
454 CH3 CH2 CH S Trappe -0.49886 0.85189 -0.22225 0.87680
455 CH3 CH2 CH S Trappe -0.49886 0.85189 -0.22225 0.87680
456 CH2 CH2 CH S Trappe -0.49886 0.85189 -0.22225 0.87680
457 CH CH2 CH S Trappe -0.49886 0.85189 -0.22225 0.87680
458 CH3 CH2 C S Trappe 0.0 0.0 0.0 0.91658
459 CH2 CH2 C S Trappe 0.0 0.0 0.0 0.91658
460 CH CH2 C S Trappe 0.0 0.0 0.0 0.91658
461 CH3 CG S H Trappe 0.0 0.0 0.0 0.79480
462 //From TraPPE-UA JPCB 104, 8008
463
464 //Charmm
465 //Atom1 Atom2 Atom3 Atom4 Charmm Kchi n delta [Kchi n delta]
466 //V_Charmm = Kchi(1 + cos(n(chi) - delta))
467 //Kchi: kcal/mole
468 //n: multiplicity
469 //delta: degrees
470 //in some cases, a Charmm may have two or three terms. If n is equal to 0, it falls back to harmonic form
471
472 //Quartic
473 //Atom1 Atom2 Atom3 Atom4 Quartic k4 k3 k2 k1 k0 ( all are kcal/mol )
474 //V_Quartic = k4(cos phi)^4 + k3(cos phi)^3 + k2(cos phi)^2 + k1(cos phi) + k0
475
476 //Polynomial
477 //Atom1 Atom2 Atom3 Atom4 Polynomial i Ki [j Kj]
478 //VPolynomial = Ki (cos phi)^i + ... + Kj (cos phi)^j
479
480
481 end TorsionTypes
482
483