sfBSE/output/H2/SF-TDDFT/bhhlyp/h2_2.05.log
2021-01-22 16:55:53 +01:00

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Running Job 1 of 1 h2_2.05.inp
qchem h2_2.05.inp_3431.0 /mnt/beegfs/tmpdir/qchem3431/ 0
/share/apps/common/q-chem/5.2.1/exe/qcprog.exe_s h2_2.05.inp_3431.0 /mnt/beegfs/tmpdir/qchem3431/
Welcome to Q-Chem
A Quantum Leap Into The Future Of Chemistry
Q-Chem 5.2, Q-Chem, Inc., Pleasanton, CA (2019)
Yihan Shao, Zhengting Gan, E. Epifanovsky, A. T. B. Gilbert, M. Wormit,
J. Kussmann, A. W. Lange, A. Behn, Jia Deng, Xintian Feng, D. Ghosh,
M. Goldey, P. R. Horn, L. D. Jacobson, I. Kaliman, T. Kus, A. Landau,
Jie Liu, E. I. Proynov, R. M. Richard, R. P. Steele, E. J. Sundstrom,
H. L. Woodcock III, P. M. Zimmerman, D. Zuev, B. Albrecht, E. Alguire,
S. A. Baeppler, D. Barton, Z. Benda, Y. A. Bernard, E. J. Berquist,
K. B. Bravaya, H. Burton, D. Casanova, Chun-Min Chang, Yunqing Chen,
A. Chien, K. D. Closser, M. P. Coons, S. Coriani, S. Dasgupta,
A. L. Dempwolff, M. Diedenhofen, Hainam Do, R. G. Edgar, Po-Tung Fang,
S. Faraji, S. Fatehi, Qingguo Feng, K. D. Fenk, J. Fosso-Tande,
J. Gayvert, Qinghui Ge, A. Ghysels, G. Gidofalvi, J. Gomes,
J. Gonthier, A. Gunina, D. Hait, M. W. D. Hanson-Heine,
P. H. P. Harbach, A. W. Hauser, M. F. Herbst, J. E. Herr,
E. G. Hohenstein, Z. C. Holden, Kerwin Hui, B. C. Huynh, T.-C. Jagau,
Hyunjun Ji, B. Kaduk, K. Khistyaev, Jaehoon Kim, P. Klunzinger, K. Koh,
D. Kosenkov, L. Koulias, T. Kowalczyk, C. M. Krauter, A. Kunitsa,
Ka Un Lao, A. Laurent, K. V. Lawler, Joonho Lee, D. Lefrancois,
S. Lehtola, D. S. Levine, Yi-Pei Li, You-Sheng Lin, Fenglai Liu,
E. Livshits, A. Luenser, P. Manohar, E. Mansoor, S. F. Manzer,
Shan-Ping Mao, Yuezhi Mao, N. Mardirossian, A. V. Marenich,
T. Markovich, L. A. Martinez-Martinez, S. A. Maurer, N. J. Mayhall,
S. C. McKenzie, J.-M. Mewes, P. Morgante, A. F. Morrison,
J. W. Mullinax, K. Nanda, T. S. Nguyen-Beck, R. Olivares-Amaya,
J. A. Parkhill, Zheng Pei, T. M. Perrine, F. Plasser, P. Pokhilko,
S. Prager, A. Prociuk, E. Ramos, D. R. Rehn, F. Rob, M. Scheurer,
M. Schneider, N. Sergueev, S. M. Sharada, S. Sharma, D. W. Small,
T. Stauch, T. Stein, Yu-Chuan Su, A. J. W. Thom, A. Tkatchenko,
T. Tsuchimochi, N. M. Tubman, L. Vogt, M. L. Vidal, O. Vydrov,
M. A. Watson, J. Wenzel, M. de Wergifosse, T. A. Wesolowski, A. White,
J. Witte, A. Yamada, Jun Yang, K. Yao, S. Yeganeh, S. R. Yost,
Zhi-Qiang You, A. Zech, Igor Ying Zhang, Xing Zhang, Yan Zhao,
Ying Zhu, B. R. Brooks, G. K. L. Chan, C. J. Cramer, M. S. Gordon,
W. J. Hehre, A. Klamt, M. W. Schmidt, C. D. Sherrill, D. G. Truhlar,
A. Aspuru-Guzik, R. Baer, A. T. Bell, N. A. Besley, Jeng-Da Chai,
A. E. DePrince, III, R. A. DiStasio Jr., A. Dreuw, B. D. Dunietz,
T. R. Furlani, Chao-Ping Hsu, Yousung Jung, Jing Kong, D. S. Lambrecht,
WanZhen Liang, C. Ochsenfeld, V. A. Rassolov, L. V. Slipchenko,
J. E. Subotnik, T. Van Voorhis, J. M. Herbert, A. I. Krylov,
P. M. W. Gill, M. Head-Gordon
Contributors to earlier versions of Q-Chem not listed above:
R. D. Adamson, B. Austin, J. Baker, G. J. O. Beran, K. Brandhorst,
S. T. Brown, E. F. C. Byrd, A. K. Chakraborty, C.-L. Cheng,
Siu Hung Chien, D. M. Chipman, D. L. Crittenden, H. Dachsel,
R. J. Doerksen, A. D. Dutoi, L. Fusti-Molnar, W. A. Goddard III,
A. Golubeva-Zadorozhnaya, S. R. Gwaltney, G. Hawkins, A. Heyden,
S. Hirata, G. Kedziora, F. J. Keil, C. Kelley, Jihan Kim, R. A. King,
R. Z. Khaliullin, P. P. Korambath, W. Kurlancheek, A. M. Lee, M. S. Lee,
S. V. Levchenko, Ching Yeh Lin, D. Liotard, R. C. Lochan, I. Lotan,
P. E. Maslen, N. Nair, D. P. O'Neill, D. Neuhauser, E. Neuscamman,
C. M. Oana, R. Olson, B. Peters, R. Peverati, P. A. Pieniazek,
Y. M. Rhee, J. Ritchie, M. A. Rohrdanz, E. Rosta, N. J. Russ,
H. F. Schaefer III, N. E. Schultz, N. Shenvi, A. C. Simmonett, A. Sodt,
D. Stuck, K. S. Thanthiriwatte, V. Vanovschi, Tao Wang, A. Warshel,
C. F. Williams, Q. Wu, X. Xu, W. Zhang
Please cite Q-Chem as follows:
Y. Shao et al., Mol. Phys. 113, 184-215 (2015)
DOI: 10.1080/00268976.2014.952696
Q-Chem 5.2.1 for Intel X86 EM64T Linux
Parts of Q-Chem use Armadillo 8.300.2 (Tropical Shenanigans).
http://arma.sourceforge.net/
Q-Chem begins on Fri Jan 22 16:33:44 2021
Host:
0
Scratch files written to /mnt/beegfs/tmpdir/qchem3431//
Jul1719 |scratch|qcdevops|jenkins|workspace|build_RNUM 6358
Processing $rem in /share/apps/common/q-chem/5.2.1/config/preferences:
MEM_TOTAL 5000
NAlpha2: 4
NElect 2
Mult 3
Checking the input file for inconsistencies... ...done.
--------------------------------------------------------------
User input:
--------------------------------------------------------------
$comment
SF-TDDFT
$end
$molecule
0 3
H 0 0 0
H 0 0 2.05
$end
$rem
JOBTYPE = sp
METHOD = BHHLYP
BASIS = CC-PVQZ
PURECART = 2222
SCF_CONVERGENCE = 9
THRESH = 12
MAX_SCF_CYCLES = 100
MAX_CIS_CYCLES = 100
SPIN_FLIP = TRUE
UNRESTRICTED = TRUE
CIS_N_ROOTS = 20
RPA = FALSE
$end
--------------------------------------------------------------
----------------------------------------------------------------
Standard Nuclear Orientation (Angstroms)
I Atom X Y Z
----------------------------------------------------------------
1 H 0.0000000000 0.0000000000 -1.0250000000
2 H 0.0000000000 0.0000000000 1.0250000000
----------------------------------------------------------------
Molecular Point Group D*h NOp =***
Largest Abelian Subgroup D2h NOp = 1
Nuclear Repulsion Energy = 0.25813522 hartrees
There are 2 alpha and 0 beta electrons
Q-Chem warning in module forms1/BasisType.C, line 1983:
You are not using the predefined 5D/6D in this basis set.
Requested basis set is cc-pVQZ
There are 20 shells and 70 basis functions
Total QAlloc Memory Limit 5000 MB
Mega-Array Size 188 MB
MEM_STATIC part 192 MB
Distance Matrix (Angstroms)
H ( 1)
H ( 2) 2.050000
A cutoff of 1.0D-12 yielded 210 shell pairs
There are 2653 function pairs
Smallest overlap matrix eigenvalue = 1.54E-03
Scale SEOQF with 1.000000e+00/1.000000e+00/1.000000e+00
Standard Electronic Orientation quadrupole field applied
Nucleus-field energy = -0.0000000023 hartrees
Guess from superposition of atomic densities
Warning: Energy on first SCF cycle will be non-variational
SAD guess density has 0.090382 electrons
-----------------------------------------------------------------------
General SCF calculation program by
Eric Jon Sundstrom, Paul Horn, Yuezhi Mao, Dmitri Zuev, Alec White,
David Stuck, Shaama M.S., Shane Yost, Joonho Lee, David Small,
Daniel Levine, Susi Lehtola, Hugh Burton, Evgeny Epifanovsky,
Bang C. Huynh
-----------------------------------------------------------------------
Exchange: 0.5000 Hartree-Fock + 0.5000 B88
Correlation: 1.0000 LYP
Using SG-1 standard quadrature grid
A unrestricted SCF calculation will be
performed using DIIS
SCF converges when DIIS error is below 1.0e-09
---------------------------------------
Cycle Energy DIIS error
---------------------------------------
1 0.1824666384 8.06e-04
2 -0.9551875921 8.29e-03
3 -0.9566484074 8.04e-03
4 -0.9791923135 3.34e-03
5 -0.9876775114 1.23e-04
6 -0.9877055017 3.59e-05
7 -0.9877072437 5.85e-07
8 -0.9877072445 2.53e-07
9 -0.9877072446 1.03e-08
10 -0.9877072446 2.02e-10 Convergence criterion met
---------------------------------------
SCF time: CPU 1.53s wall 1.00s
<S^2> = 2.000000000
SCF energy in the final basis set = -0.9877072446
Total energy in the final basis set = -0.9877072446
Spin-flip DFT calculation will be performed
CIS energy converged when residual is below 10e- 6
---------------------------------------------------
Iter Rts Conv Rts Left Ttl Dev Max Dev
---------------------------------------------------
1 0 20 0.054329 0.004184
2 0 20 0.002120 0.000350
3 7 13 0.000043 0.000005
4 20 0 0.000002 0.000001 Roots Converged
---------------------------------------------------
---------------------------------------------------
SF-DFT Excitation Energies
(The first "excited" state might be the ground state)
---------------------------------------------------
Excited state 1: excitation energy (eV) = 3.8012
Total energy for state 1: -0.84801568 au
<S**2> : 0.0427
S( 1) --> S( 2) amplitude = -0.2903 alpha
S( 2) --> S( 1) amplitude = 0.9290 alpha
S( 2) --> V( 1) amplitude = 0.1754 alpha
Excited state 2: excitation energy (eV) = 5.0239
Total energy for state 2: -0.80308278 au
<S**2> : 1.9647
S( 1) --> S( 1) amplitude = 0.7102 alpha
S( 1) --> V( 1) amplitude = 0.1656 alpha
S( 2) --> S( 2) amplitude = -0.6442 alpha
S( 2) --> V( 2) amplitude = 0.2225 alpha
Excited state 3: excitation energy (eV) = 8.8669
Total energy for state 3: -0.66185426 au
<S**2> : 0.1667
S( 1) --> S( 1) amplitude = 0.6716 alpha
S( 2) --> S( 2) amplitude = 0.7334 alpha
Excited state 4: excitation energy (eV) = 10.2383
Total energy for state 4: -0.61145847 au
<S**2> : 0.1670
S( 1) --> S( 2) amplitude = 0.9074 alpha
S( 1) --> V( 2) amplitude = -0.1839 alpha
S( 2) --> S( 1) amplitude = 0.3394 alpha
Excited state 5: excitation energy (eV) = 13.6751
Total energy for state 5: -0.48515614 au
<S**2> : 0.9514
S( 1) --> S( 2) amplitude = 0.2335 alpha
S( 1) --> V( 2) amplitude = 0.2712 alpha
S( 2) --> V( 1) amplitude = 0.9195 alpha
Excited state 6: excitation energy (eV) = 14.3159
Total energy for state 6: -0.46160582 au
<S**2> : 1.0035
S( 1) --> S( 1) amplitude = -0.1959 alpha
S( 1) --> V( 1) amplitude = 0.4862 alpha
S( 2) --> S( 2) amplitude = 0.2008 alpha
S( 2) --> V( 2) amplitude = 0.8224 alpha
Excited state 7: excitation energy (eV) = 17.2443
Total energy for state 7: -0.35399064 au
<S**2> : 0.9000
S( 1) --> V( 1) amplitude = 0.8510 alpha
S( 2) --> V( 2) amplitude = -0.5097 alpha
Excited state 8: excitation energy (eV) = 17.4448
Total energy for state 8: -0.34662366 au
<S**2> : 1.0000
S( 1) --> V( 7) amplitude = 0.2091 alpha
S( 2) --> V( 4) amplitude = 0.9773 alpha
Excited state 9: excitation energy (eV) = 17.4448
Total energy for state 9: -0.34662366 au
<S**2> : 1.0000
S( 1) --> V( 6) amplitude = 0.2091 alpha
S( 2) --> V( 3) amplitude = 0.9773 alpha
Excited state 10: excitation energy (eV) = 17.9725
Total energy for state 10: -0.32723037 au
<S**2> : 0.9047
S( 1) --> S( 2) amplitude = 0.1808 alpha
S( 1) --> V( 2) amplitude = 0.8973 alpha
S( 2) --> V( 1) amplitude = -0.3117 alpha
S( 2) --> V( 5) amplitude = -0.2457 alpha
Excited state 11: excitation energy (eV) = 19.1976
Total energy for state 11: -0.28220754 au
<S**2> : 0.9509
S( 1) --> V( 2) amplitude = 0.2437 alpha
S( 2) --> V( 5) amplitude = 0.9550 alpha
Excited state 12: excitation energy (eV) = 19.2656
Total energy for state 12: -0.27970818 au
<S**2> : 1.0000
S( 1) --> V( 4) amplitude = 0.8518 alpha
S( 2) --> V( 7) amplitude = 0.5224 alpha
Excited state 13: excitation energy (eV) = 19.2656
Total energy for state 13: -0.27970818 au
<S**2> : 1.0000
S( 1) --> V( 3) amplitude = 0.8518 alpha
S( 2) --> V( 6) amplitude = 0.5224 alpha
Excited state 14: excitation energy (eV) = 21.4788
Total energy for state 14: -0.19837631 au
<S**2> : 0.9754
S( 1) --> V( 5) amplitude = 0.9732 alpha
S( 2) --> V( 8) amplitude = -0.1910 alpha
Excited state 15: excitation energy (eV) = 22.4585
Total energy for state 15: -0.16237267 au
<S**2> : 1.0000
S( 1) --> V( 4) amplitude = -0.5231 alpha
S( 2) --> V( 7) amplitude = 0.8519 alpha
Excited state 16: excitation energy (eV) = 22.4585
Total energy for state 16: -0.16237267 au
<S**2> : 1.0000
S( 1) --> V( 3) amplitude = -0.5231 alpha
S( 2) --> V( 6) amplitude = 0.8519 alpha
Excited state 17: excitation energy (eV) = 24.4085
Total energy for state 17: -0.09070957 au
<S**2> : 1.0000
S( 1) --> V( 7) amplitude = 0.9770 alpha
S( 2) --> V( 4) amplitude = -0.2100 alpha
Excited state 18: excitation energy (eV) = 24.4085
Total energy for state 18: -0.09070957 au
<S**2> : 1.0000
S( 1) --> V( 6) amplitude = 0.9770 alpha
S( 2) --> V( 3) amplitude = -0.2100 alpha
Excited state 19: excitation energy (eV) = 28.3975
Total energy for state 19: 0.05588301 au
<S**2> : 1.0001
S( 1) --> V( 5) amplitude = 0.1880 alpha
S( 2) --> V( 8) amplitude = 0.9779 alpha
Excited state 20: excitation energy (eV) = 30.8524
Total energy for state 20: 0.14609861 au
<S**2> : 0.9999
S( 1) --> V( 8) amplitude = 0.9861 alpha
---------------------------------------------------
SETman timing summary (seconds)
CPU time 1.04s
System time 0.00s
Wall time 1.26s
--------------------------------------------------------------
Orbital Energies (a.u.)
--------------------------------------------------------------
Alpha MOs
-- Occupied --
-0.4309 -0.3373
-- Virtual --
0.1951 0.2133 0.3434 0.3434 0.3765 0.4775 0.4775 0.7196
1.0100 1.0768 1.5434 1.6800 1.6800 1.7271 1.7271 1.8015
1.8015 1.8462 1.9077 1.9077 1.9564 1.9565 1.9815 2.1600
2.1600 2.7105 2.8819 2.9274 4.1390 4.2326 4.2326 4.3218
4.3218 4.6026 5.8238 5.8238 5.8352 5.8569 5.8570 5.8646
5.8646 5.8654 5.8654 5.8714 5.8715 5.9193 5.9193 6.0740
7.7968 7.7968 7.8590 7.8699 7.8700 7.9038 7.9039 8.0473
8.0473 8.5423 9.2991 9.3670 9.4359 9.4359 9.4904 9.4911
9.4911 9.6997 21.9994 22.8195
--------------------------------------------------------------
Ground-State Mulliken Net Atomic Charges
Atom Charge (a.u.) Spin (a.u.)
--------------------------------------------------------
1 H -0.000000 1.000000
2 H 0.000000 1.000000
--------------------------------------------------------
Sum of atomic charges = -0.000000
Sum of spin charges = 2.000000
-----------------------------------------------------------------
Cartesian Multipole Moments
-----------------------------------------------------------------
Charge (ESU x 10^10)
-0.0000
Dipole Moment (Debye)
X 0.0000 Y 0.0000 Z 0.0000
Tot 0.0000
Quadrupole Moments (Debye-Ang)
XX -2.6764 XY 0.0000 YY -2.6764
XZ 0.0000 YZ -0.0000 ZZ -3.2611
Octopole Moments (Debye-Ang^2)
XXX 0.0000 XXY -0.0000 XYY 0.0000
YYY -0.0000 XXZ 0.0000 XYZ 0.0000
YYZ 0.0000 XZZ 0.0000 YZZ -0.0000
ZZZ 0.0000
Hexadecapole Moments (Debye-Ang^3)
XXXX -3.3835 XXXY 0.0000 XXYY -1.1278
XYYY 0.0000 YYYY -3.3835 XXXZ 0.0000
XXYZ -0.0000 XYYZ 0.0000 YYYZ -0.0000
XXZZ -4.2691 XYZZ 0.0000 YYZZ -4.2691
XZZZ 0.0000 YZZZ -0.0000 ZZZZ -23.0089
-----------------------------------------------------------------
Archival summary:
1\1\lcpq-curie.ups-tlse.fr\SP\ProcedureUnspecified\BasisUnspecified\2(3)\emonino\FriJan2216:33:472021FriJan2216:33:472021\0\\#,ProcedureUnspecified,BasisUnspecified,\\0,3\H\H,1,2.05\\\@
Total job time: 3.10s(wall), 2.68s(cpu)
Fri Jan 22 16:33:47 2021
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* Thank you very much for using Q-Chem. Have a nice day. *
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