Default is to use a total of 4 processors: 4 via shared-memory 1 via Linda Entering Link 1 = C:\G09W\l1.exe PID= 5720. Copyright (c) 1988,1990,1992,1993,1995,1998,2003,2009,2013, Gaussian, Inc. All Rights Reserved. This is part of the Gaussian(R) 09 program. It is based on the Gaussian(R) 03 system (copyright 2003, Gaussian, Inc.), the Gaussian(R) 98 system (copyright 1998, Gaussian, Inc.), the Gaussian(R) 94 system (copyright 1995, Gaussian, Inc.), the Gaussian 92(TM) system (copyright 1992, Gaussian, Inc.), the Gaussian 90(TM) system (copyright 1990, Gaussian, Inc.), the Gaussian 88(TM) system (copyright 1988, Gaussian, Inc.), the Gaussian 86(TM) system (copyright 1986, Carnegie Mellon University), and the Gaussian 82(TM) system (copyright 1983, Carnegie Mellon University). Gaussian is a federally registered trademark of Gaussian, Inc. This software contains proprietary and confidential information, including trade secrets, belonging to Gaussian, Inc. 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By using this program, the user acknowledges that Gaussian, Inc. is engaged in the business of creating and licensing software in the field of computational chemistry and represents and warrants to the licensee that it is not a competitor of Gaussian, Inc. and that it will not use this program in any manner prohibited above. --------------------------------------------------------------- Cite this work as: Gaussian 09, Revision D.01, M. J. Frisch, G. W. Trucks, H. B. Schlegel, G. E. Scuseria, M. A. Robb, J. R. Cheeseman, G. Scalmani, V. Barone, B. Mennucci, G. A. Petersson, H. Nakatsuji, M. Caricato, X. Li, H. P. Hratchian, A. F. Izmaylov, J. Bloino, G. Zheng, J. L. Sonnenberg, M. Hada, M. Ehara, K. Toyota, R. Fukuda, J. Hasegawa, M. Ishida, T. Nakajima, Y. Honda, O. Kitao, H. Nakai, T. Vreven, J. A. Montgomery, Jr., J. E. Peralta, F. Ogliaro, M. Bearpark, J. J. Heyd, E. Brothers, K. N. Kudin, V. N. Staroverov, T. Keith, R. Kobayashi, J. Normand, K. Raghavachari, A. Rendell, J. C. Burant, S. S. Iyengar, J. Tomasi, M. Cossi, N. Rega, J. M. Millam, M. Klene, J. E. Knox, J. B. Cross, V. Bakken, C. Adamo, J. Jaramillo, R. Gomperts, R. E. Stratmann, O. Yazyev, A. J. Austin, R. Cammi, C. Pomelli, J. W. Ochterski, R. L. Martin, K. Morokuma, V. G. Zakrzewski, G. A. Voth, P. Salvador, J. J. Dannenberg, S. Dapprich, A. D. Daniels, O. Farkas, J. B. Foresman, J. V. Ortiz, J. Cioslowski, and D. J. Fox, Gaussian, Inc., Wallingford CT, 2013. ****************************************** Gaussian 09: EM64W-G09RevD.01 13-Apr-2013 09-Mar-2015 ****************************************** %chk=\\icnas3.cc.ic.ac.uk\mh4412\Desktop\inorganic comp\part 1\day 3\MH_5NH3_NBO _2.chk Default route: MaxDisk=10GB -------------------------------------------------------------------- # b3lyp/6-31g(d,p) pop=nbo geom=connectivity integral=grid=ultrafine -------------------------------------------------------------------- 1/38=1,57=2/1; 2/12=2,17=6,18=5,40=1/2; 3/5=1,6=6,7=101,11=2,16=1,25=1,30=1,74=-5,75=-5/1,2,3; 4//1; 5/5=2,38=5/2; 6/7=2,8=2,9=2,10=2,28=1,40=1/1,7; 99/5=1,9=1/99; ------- Nh3 NBO ------- Symbolic Z-matrix: Charge = 0 Multiplicity = 1 N 0. 0. 0.11923 H 0. 0.93718 -0.27821 H -0.81162 -0.46859 -0.27821 H 0.81162 -0.46859 -0.27821 Input orientation: --------------------------------------------------------------------- Center Atomic Atomic Coordinates (Angstroms) Number Number Type X Y Z --------------------------------------------------------------------- 1 7 0 0.000000 0.000000 0.119234 2 1 0 0.000000 0.937183 -0.278212 3 1 0 -0.811624 -0.468592 -0.278212 4 1 0 0.811624 -0.468592 -0.278212 --------------------------------------------------------------------- Distance matrix (angstroms): 1 2 3 4 1 N 0.000000 2 H 1.017976 0.000000 3 H 1.017976 1.623249 0.000000 4 H 1.017976 1.623249 1.623248 0.000000 Stoichiometry H3N Framework group C3[C3(N),X(H3)] Deg. of freedom 2 Full point group C3 NOp 3 Largest Abelian subgroup C1 NOp 1 Largest concise Abelian subgroup C1 NOp 1 Standard orientation: --------------------------------------------------------------------- Center Atomic Atomic Coordinates (Angstroms) Number Number Type X Y Z --------------------------------------------------------------------- 1 7 0 0.000000 0.000000 0.119234 2 1 0 0.000000 0.937183 -0.278212 3 1 0 -0.811624 -0.468592 -0.278212 4 1 0 0.811624 -0.468592 -0.278212 --------------------------------------------------------------------- Rotational constants (GHZ): 293.7282495 293.7282495 190.3101279 Standard basis: 6-31G(d,p) (6D, 7F) There are 30 symmetry adapted cartesian basis functions of A symmetry. There are 30 symmetry adapted basis functions of A symmetry. 30 basis functions, 49 primitive gaussians, 30 cartesian basis functions 5 alpha electrons 5 beta electrons nuclear repulsion energy 11.8944812985 Hartrees. NAtoms= 4 NActive= 4 NUniq= 2 SFac= 4.00D+00 NAtFMM= 60 NAOKFM=F Big=F Integral buffers will be 131072 words long. Raffenetti 2 integral format. Two-electron integral symmetry is turned on. One-electron integrals computed using PRISM. NBasis= 30 RedAO= T EigKep= 2.18D-02 NBF= 30 NBsUse= 30 1.00D-06 EigRej= -1.00D+00 NBFU= 30 ExpMin= 1.61D-01 ExpMax= 4.17D+03 ExpMxC= 6.27D+02 IAcc=3 IRadAn= 5 AccDes= 0.00D+00 Harris functional with IExCor= 402 and IRadAn= 5 diagonalized for initial guess. HarFok: IExCor= 402 AccDes= 0.00D+00 IRadAn= 5 IDoV= 1 UseB2=F ITyADJ=14 ICtDFT= 3500011 ScaDFX= 1.000000 1.000000 1.000000 1.000000 FoFCou: FMM=F IPFlag= 0 FMFlag= 100000 FMFlg1= 0 NFxFlg= 0 DoJE=T BraDBF=F KetDBF=T FulRan=T wScrn= 0.000000 ICntrl= 500 IOpCl= 0 I1Cent= 200000004 NGrid= 0 NMat0= 1 NMatS0= 1 NMatT0= 0 NMatD0= 1 NMtDS0= 0 NMtDT0= 0 Petite list used in FoFCou. Initial guess orbital symmetries: Occupied (A) (A) (E) (E) (A) Virtual (A) (E) (E) (A) (E) (E) (E) (E) (A) (A) (E) (E) (A) (A) (E) (E) (E) (E) (A) (E) (E) (A) (E) (E) (A) The electronic state of the initial guess is 1-A. Keep R1 ints in memory in canonical form, NReq=992452. Requested convergence on RMS density matrix=1.00D-08 within 128 cycles. Requested convergence on MAX density matrix=1.00D-06. Requested convergence on energy=1.00D-06. No special actions if energy rises. Integral accuracy reduced to 1.0D-05 until final iterations. Initial convergence to 1.0D-05 achieved. Increase integral accuracy. SCF Done: E(RB3LYP) = -56.5577687230 A.U. after 9 cycles NFock= 9 Conv=0.93D-08 -V/T= 2.0091 ********************************************************************** Population analysis using the SCF density. ********************************************************************** Orbital symmetries: Occupied (A) (A) (E) (E) (A) Virtual (A) (E) (E) (E) (E) (A) (E) (E) (A) (A) (E) (E) (A) (A) (E) (E) (E) (E) (A) (E) (E) (A) (E) (E) (A) The electronic state is 1-A. Alpha occ. eigenvalues -- -14.30568 -0.84466 -0.45030 -0.45030 -0.25318 Alpha virt. eigenvalues -- 0.07985 0.16923 0.16923 0.67851 0.67851 Alpha virt. eigenvalues -- 0.71437 0.87555 0.87555 0.88553 1.13372 Alpha virt. eigenvalues -- 1.41878 1.41878 1.83050 2.09377 2.24221 Alpha virt. eigenvalues -- 2.24221 2.34639 2.34639 2.79256 2.95068 Alpha virt. eigenvalues -- 2.95068 3.19852 3.42896 3.42896 3.90461 Condensed to atoms (all electrons): 1 2 3 4 1 N 6.703112 0.337973 0.337973 0.337973 2 H 0.337973 0.487754 -0.032369 -0.032369 3 H 0.337973 -0.032369 0.487754 -0.032369 4 H 0.337973 -0.032369 -0.032369 0.487754 Mulliken charges: 1 1 N -0.717030 2 H 0.239010 3 H 0.239010 4 H 0.239010 Sum of Mulliken charges = 0.00000 Mulliken charges with hydrogens summed into heavy atoms: 1 1 N 0.000000 Electronic spatial extent (au): = 26.2374 Charge= 0.0000 electrons Dipole moment (field-independent basis, Debye): X= 0.0000 Y= 0.0000 Z= -1.8465 Tot= 1.8465 Quadrupole moment (field-independent basis, Debye-Ang): XX= -6.1591 YY= -6.1591 ZZ= -8.7225 XY= 0.0000 XZ= 0.0000 YZ= 0.0000 Traceless Quadrupole moment (field-independent basis, Debye-Ang): XX= 0.8545 YY= 0.8545 ZZ= -1.7089 XY= 0.0000 XZ= 0.0000 YZ= 0.0000 Octapole moment (field-independent basis, Debye-Ang**2): XXX= 0.0000 YYY= 0.7689 ZZZ= -1.6140 XYY= 0.0000 XXY= -0.7689 XXZ= -0.8495 XZZ= 0.0000 YZZ= 0.0000 YYZ= -0.8495 XYZ= 0.0000 Hexadecapole moment (field-independent basis, Debye-Ang**3): XXXX= -9.7162 YYYY= -9.7162 ZZZZ= -9.7131 XXXY= 0.0000 XXXZ= 0.0000 YYYX= 0.0000 YYYZ= -0.3115 ZZZX= 0.0000 ZZZY= 0.0000 XXYY= -3.2387 XXZZ= -3.2736 YYZZ= -3.2736 XXYZ= 0.3115 YYXZ= 0.0000 ZZXY= 0.0000 N-N= 1.189448129848D+01 E-N=-1.556684873736D+02 KE= 5.604583062364D+01 ******************************Gaussian NBO Version 3.1****************************** N A T U R A L A T O M I C O R B I T A L A N D N A T U R A L B O N D O R B I T A L A N A L Y S I S ******************************Gaussian NBO Version 3.1****************************** /RESON / : Allow strongly delocalized NBO set Analyzing the SCF density Job title: Nh3 NBO Storage needed: 2904 in NPA, 3721 in NBO ( 268435344 available) NATURAL POPULATIONS: Natural atomic orbital occupancies NAO Atom No lang Type(AO) Occupancy Energy ---------------------------------------------------------- 1 N 1 S Cor( 1S) 1.99982 -14.16808 2 N 1 S Val( 2S) 1.53304 -0.57737 3 N 1 S Ryd( 3S) 0.00043 1.20836 4 N 1 S Ryd( 4S) 0.00000 3.73004 5 N 1 px Val( 2p) 1.37252 -0.16298 6 N 1 px Ryd( 3p) 0.00158 0.77568 7 N 1 py Val( 2p) 1.37252 -0.16298 8 N 1 py Ryd( 3p) 0.00158 0.77568 9 N 1 pz Val( 2p) 1.83297 -0.21388 10 N 1 pz Ryd( 3p) 0.00520 0.73498 11 N 1 dxy Ryd( 3d) 0.00016 2.41118 12 N 1 dxz Ryd( 3d) 0.00163 2.29433 13 N 1 dyz Ryd( 3d) 0.00163 2.29433 14 N 1 dx2y2 Ryd( 3d) 0.00016 2.41118 15 N 1 dz2 Ryd( 3d) 0.00194 2.07969 16 H 2 S Val( 1S) 0.62250 0.13595 17 H 2 S Ryd( 2S) 0.00093 0.57863 18 H 2 px Ryd( 2p) 0.00034 2.31979 19 H 2 py Ryd( 2p) 0.00053 2.93333 20 H 2 pz Ryd( 2p) 0.00066 2.40557 21 H 3 S Val( 1S) 0.62250 0.13595 22 H 3 S Ryd( 2S) 0.00093 0.57863 23 H 3 px Ryd( 2p) 0.00048 2.77994 24 H 3 py Ryd( 2p) 0.00039 2.47318 25 H 3 pz Ryd( 2p) 0.00066 2.40557 26 H 4 S Val( 1S) 0.62250 0.13595 27 H 4 S Ryd( 2S) 0.00093 0.57863 28 H 4 px Ryd( 2p) 0.00048 2.77994 29 H 4 py Ryd( 2p) 0.00039 2.47318 30 H 4 pz Ryd( 2p) 0.00066 2.40557 Summary of Natural Population Analysis: Natural Population Natural ----------------------------------------------- Atom No Charge Core Valence Rydberg Total ----------------------------------------------------------------------- N 1 -1.12514 1.99982 6.11104 0.01429 8.12514 H 2 0.37505 0.00000 0.62250 0.00246 0.62495 H 3 0.37505 0.00000 0.62250 0.00246 0.62495 H 4 0.37505 0.00000 0.62250 0.00246 0.62495 ======================================================================= * Total * 0.00000 1.99982 7.97852 0.02166 10.00000 Natural Population -------------------------------------------------------- Core 1.99982 ( 99.9908% of 2) Valence 7.97852 ( 99.7316% of 8) Natural Minimal Basis 9.97834 ( 99.7834% of 10) Natural Rydberg Basis 0.02166 ( 0.2166% of 10) -------------------------------------------------------- Atom No Natural Electron Configuration ---------------------------------------------------------------------------- N 1 [core]2S( 1.53)2p( 4.58)3p( 0.01)3d( 0.01) H 2 1S( 0.62) H 3 1S( 0.62) H 4 1S( 0.62) NATURAL BOND ORBITAL ANALYSIS: Occupancies Lewis Structure Low High Occ. ------------------- ----------------- occ occ Cycle Thresh. Lewis Non-Lewis CR BD 3C LP (L) (NL) Dev ============================================================================= 1(1) 1.90 9.99428 0.00572 1 3 0 1 0 0 0.00 ----------------------------------------------------------------------------- Structure accepted: No low occupancy Lewis orbitals -------------------------------------------------------- Core 1.99982 ( 99.991% of 2) Valence Lewis 7.99447 ( 99.931% of 8) ================== ============================ Total Lewis 9.99428 ( 99.943% of 10) ----------------------------------------------------- Valence non-Lewis 0.00000 ( 0.000% of 10) Rydberg non-Lewis 0.00572 ( 0.057% of 10) ================== ============================ Total non-Lewis 0.00572 ( 0.057% of 10) -------------------------------------------------------- (Occupancy) Bond orbital/ Coefficients/ Hybrids --------------------------------------------------------------------------------- 1. (1.99909) BD ( 1) N 1 - H 2 ( 68.83%) 0.8297* N 1 s( 24.86%)p 3.02( 75.05%)d 0.00( 0.09%) 0.0001 0.4986 0.0059 0.0000 0.0000 0.0000 0.8155 0.0277 -0.2910 0.0052 0.0000 0.0000 -0.0281 -0.0087 0.0014 ( 31.17%) 0.5583* H 2 s( 99.91%)p 0.00( 0.09%) 0.9996 0.0000 0.0000 -0.0289 0.0072 2. (1.99909) BD ( 1) N 1 - H 3 ( 68.83%) 0.8297* N 1 s( 24.86%)p 3.02( 75.05%)d 0.00( 0.09%) 0.0001 0.4986 0.0059 0.0000 -0.7062 -0.0239 -0.4077 -0.0138 -0.2910 0.0052 0.0076 0.0243 0.0140 0.0044 0.0014 ( 31.17%) 0.5583* H 3 s( 99.91%)p 0.00( 0.09%) 0.9996 0.0000 0.0250 0.0145 0.0072 3. (1.99909) BD ( 1) N 1 - H 4 ( 68.83%) 0.8297* N 1 s( 24.86%)p 3.02( 75.05%)d 0.00( 0.09%) 0.0001 0.4986 0.0059 0.0000 0.7062 0.0239 -0.4077 -0.0138 -0.2910 0.0052 -0.0076 -0.0243 0.0140 0.0044 0.0014 ( 31.17%) 0.5583* H 4 s( 99.91%)p 0.00( 0.09%) 0.9996 0.0000 -0.0250 0.0145 0.0072 4. (1.99982) CR ( 1) N 1 s(100.00%) 1.0000 -0.0002 0.0000 0.0000 0.0000 0.0000 0.0000 0.0000 0.0000 0.0000 0.0000 0.0000 0.0000 0.0000 0.0000 5. (1.99721) LP ( 1) N 1 s( 25.38%)p 2.94( 74.52%)d 0.00( 0.10%) 0.0001 0.5036 -0.0120 0.0000 0.0000 0.0000 0.0000 0.0000 0.8618 -0.0505 0.0000 0.0000 0.0000 0.0000 -0.0310 6. (0.00000) RY*( 1) N 1 s( 99.98%)p 0.00( 0.02%)d 0.00( 0.00%) 7. (0.00000) RY*( 2) N 1 s(100.00%) 8. (0.00000) RY*( 3) N 1 s( 0.00%)p 1.00(100.00%)d 0.00( 0.00%) 9. (0.00000) RY*( 4) N 1 s( 0.00%)p 1.00(100.00%)d 0.00( 0.00%) 10. (0.00000) RY*( 5) N 1 s( 0.03%)p99.99( 99.97%)d 0.01( 0.00%) 11. (0.00000) RY*( 6) N 1 s( 0.00%)p 1.00( 0.01%)d99.99( 99.99%) 12. (0.00000) RY*( 7) N 1 s( 0.00%)p 1.00( 0.12%)d99.99( 99.88%) 13. (0.00000) RY*( 8) N 1 s( 0.00%)p 1.00( 0.12%)d99.99( 99.88%) 14. (0.00000) RY*( 9) N 1 s( 0.00%)p 1.00( 0.01%)d99.99( 99.99%) 15. (0.00000) RY*(10) N 1 s( 0.02%)p 4.22( 0.08%)d99.99( 99.90%) 16. (0.00112) RY*( 1) H 2 s( 72.77%)p 0.37( 27.23%) 0.0038 0.8530 0.0000 0.0017 -0.5218 17. (0.00045) RY*( 2) H 2 s( 26.59%)p 2.76( 73.41%) -0.0017 0.5157 0.0000 0.1501 0.8435 18. (0.00034) RY*( 3) H 2 s( 0.00%)p 1.00(100.00%) 0.0000 0.0000 1.0000 0.0000 0.0000 19. (0.00000) RY*( 4) H 2 s( 0.72%)p99.99( 99.28%) 20. (0.00112) RY*( 1) H 3 s( 72.77%)p 0.37( 27.23%) 0.0038 0.8530 -0.0015 -0.0009 -0.5218 21. (0.00045) RY*( 2) H 3 s( 26.59%)p 2.76( 73.41%) -0.0017 0.5157 -0.1300 -0.0750 0.8435 22. (0.00034) RY*( 3) H 3 s( 0.00%)p 1.00(100.00%) 0.0000 0.0000 -0.5000 0.8660 0.0000 23. (0.00000) RY*( 4) H 3 s( 0.72%)p99.99( 99.28%) 24. (0.00112) RY*( 1) H 4 s( 72.77%)p 0.37( 27.23%) 0.0038 0.8530 0.0015 -0.0009 -0.5218 25. (0.00045) RY*( 2) H 4 s( 26.59%)p 2.76( 73.41%) -0.0017 0.5157 0.1300 -0.0750 0.8435 26. (0.00034) RY*( 3) H 4 s( 0.00%)p 1.00(100.00%) 0.0000 0.0000 0.5000 0.8660 0.0000 27. (0.00000) RY*( 4) H 4 s( 0.72%)p99.99( 99.28%) 28. (0.00000) BD*( 1) N 1 - H 2 ( 31.17%) 0.5583* N 1 s( 24.86%)p 3.02( 75.05%)d 0.00( 0.09%) ( 68.83%) -0.8297* H 2 s( 99.91%)p 0.00( 0.09%) 29. (0.00000) BD*( 1) N 1 - H 3 ( 31.17%) 0.5583* N 1 s( 24.86%)p 3.02( 75.05%)d 0.00( 0.09%) ( 68.83%) -0.8297* H 3 s( 99.91%)p 0.00( 0.09%) 30. (0.00000) BD*( 1) N 1 - H 4 ( 31.17%) 0.5583* N 1 s( 24.86%)p 3.02( 75.05%)d 0.00( 0.09%) ( 68.83%) -0.8297* H 4 s( 99.91%)p 0.00( 0.09%) NHO Directionality and "Bond Bending" (deviations from line of nuclear centers) [Thresholds for printing: angular deviation > 1.0 degree] hybrid p-character > 25.0% orbital occupancy > 0.10e Line of Centers Hybrid 1 Hybrid 2 --------------- ------------------- ------------------ NBO Theta Phi Theta Phi Dev Theta Phi Dev ======================================================================================== 1. BD ( 1) N 1 - H 2 113.0 90.0 108.7 90.0 4.3 -- -- -- 2. BD ( 1) N 1 - H 3 113.0 210.0 108.7 210.0 4.3 -- -- -- 3. BD ( 1) N 1 - H 4 113.0 330.0 108.7 330.0 4.3 -- -- -- 5. LP ( 1) N 1 -- -- 0.0 0.0 -- -- -- -- Second Order Perturbation Theory Analysis of Fock Matrix in NBO Basis Threshold for printing: 0.50 kcal/mol E(2) E(j)-E(i) F(i,j) Donor NBO (i) Acceptor NBO (j) kcal/mol a.u. a.u. =================================================================================================== within unit 1 5. LP ( 1) N 1 / 16. RY*( 1) H 2 1.01 1.43 0.034 5. LP ( 1) N 1 / 17. RY*( 2) H 2 0.67 2.17 0.034 5. LP ( 1) N 1 / 20. RY*( 1) H 3 1.01 1.43 0.034 5. LP ( 1) N 1 / 21. RY*( 2) H 3 0.67 2.17 0.034 5. LP ( 1) N 1 / 24. RY*( 1) H 4 1.01 1.43 0.034 5. LP ( 1) N 1 / 25. RY*( 2) H 4 0.67 2.17 0.034 Natural Bond Orbitals (Summary): Principal Delocalizations NBO Occupancy Energy (geminal,vicinal,remote) ==================================================================================== Molecular unit 1 (H3N) 1. BD ( 1) N 1 - H 2 1.99909 -0.60417 2. BD ( 1) N 1 - H 3 1.99909 -0.60417 3. BD ( 1) N 1 - H 4 1.99909 -0.60417 4. CR ( 1) N 1 1.99982 -14.16768 5. LP ( 1) N 1 1.99721 -0.31757 16(v),20(v),24(v),17(v) 21(v),25(v) 6. RY*( 1) N 1 0.00000 1.20800 7. RY*( 2) N 1 0.00000 3.73004 8. RY*( 3) N 1 0.00000 0.77341 9. RY*( 4) N 1 0.00000 0.77341 10. RY*( 5) N 1 0.00000 0.73750 11. RY*( 6) N 1 0.00000 2.40915 12. RY*( 7) N 1 0.00000 2.29066 13. RY*( 8) N 1 0.00000 2.29043 14. RY*( 9) N 1 0.00000 2.40938 15. RY*( 10) N 1 0.00000 2.08111 16. RY*( 1) H 2 0.00112 1.11325 17. RY*( 2) H 2 0.00045 1.84849 18. RY*( 3) H 2 0.00034 2.31979 19. RY*( 4) H 2 0.00000 2.94716 20. RY*( 1) H 3 0.00112 1.11325 21. RY*( 2) H 3 0.00045 1.84849 22. RY*( 3) H 3 0.00034 2.31979 23. RY*( 4) H 3 0.00000 2.94716 24. RY*( 1) H 4 0.00112 1.11325 25. RY*( 2) H 4 0.00045 1.84849 26. RY*( 3) H 4 0.00034 2.31979 27. RY*( 4) H 4 0.00000 2.94716 28. BD*( 1) N 1 - H 2 0.00000 0.48618 29. BD*( 1) N 1 - H 3 0.00000 0.48618 30. BD*( 1) N 1 - H 4 0.00000 0.48618 ------------------------------- Total Lewis 9.99428 ( 99.9428%) Valence non-Lewis 0.00000 ( 0.0000%) Rydberg non-Lewis 0.00572 ( 0.0572%) ------------------------------- Total unit 1 10.00000 (100.0000%) Charge unit 1 0.00000 1|1| IMPERIAL COLLEGE-CHWS-273|SP|RB3LYP|6-31G(d,p)|H3N1|MH4412|09-Mar -2015|0||# b3lyp/6-31g(d,p) pop=nbo geom=connectivity integral=grid=ul trafine||Nh3 NBO||0,1|N,0,0.,0.,0.119234|H,0,0.,0.937183,-0.278212|H,0 ,-0.811624,-0.468592,-0.278212|H,0,0.811624,-0.468592,-0.278212||Versi on=EM64W-G09RevD.01|State=1-A|HF=-56.5577687|RMSD=9.300e-009|Dipole=0. ,0.,-0.7264553|Quadrupole=0.6352699,0.6352699,-1.2705397,0.,0.,0.|PG=C 03 [C3(N1),X(H3)]||@ FROM AN ANONYMOUS WRITER, ON PERSPECTIVE: MAN, DESPITE HIS ARTISTIC PRETENSIONS, HIS SOPHISTICATION AND MANY ACCOMPLISHMENTS, OWES THE FACT OF HIS EXISTENCE TO A SIX-INCH LAYER OF TOPSOIL AND THE FACT THAT IT RAINS. Job cpu time: 0 days 0 hours 0 minutes 5.0 seconds. File lengths (MBytes): RWF= 5 Int= 0 D2E= 0 Chk= 1 Scr= 1 Normal termination of Gaussian 09 at Mon Mar 09 14:38:18 2015.