|
|
在gaussian频率分析的时候意外停止,不知道是什么原因,还望各位老师帮忙解决,以下是log输出文件的最后一部分
**** Warning!!: The largest alpha MO coefficient is 0.87166728D+02
Semi-Direct transformation.
ModeAB= 4 MOrb= 20 LenV= 1578415135
LASXX= 94671445 LTotXX= 94671445 LenRXX= 190638925
LTotAB= 95967480 MaxLAS= 124208640 LenRXY= 0
NonZer= 285310370 LenScr= 429644800 LnRSAI= 124208640
LnScr1= 187062272 LExtra= 0 Total= 931554637
MaxDsk= -1 SrtSym= T ITran= 4
JobTyp=0 Pass 1: I= 1 to 20.
(rs|ai) integrals will be sorted in core.
SymMOI: orbitals are not symmetric.
Spin components of T(2) and E(2):
alpha-alpha T2 = 0.5697191625D-01 E2= -0.1406423048D+00
alpha-beta T2 = 0.3010022824D+00 E2= -0.7969753183D+00
beta-beta T2 = 0.5697191625D-01 E2= -0.1406423048D+00
ANorm= 0.1189515076D+01
E2 = -0.1078259928D+01 EUMP2 = -0.30869612100846D+03
Keep R2 and R3 ints in memory in canonical form, NReq=642076266.
CIDS: In Core Option IDoMem= 1.
Iterations= 50 Convergence= 0.100D-06
Produce multiple copies of IABC intergrals
Iteration Nr. 1
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
MP4(R+Q)= 0.32377206D-01
E3= -0.45258058D-01 EUMP3= -0.30874137907D+03
E4(DQ)= 0.34944377D-02 UMP4(DQ)= -0.30873788463D+03
E4(SDQ)= -0.40085684D-02 UMP4(SDQ)= -0.30874538763D+03
DE(Corr)= -1.0911017 E(Corr)= -308.70896278
NORM(A)= 0.11927555D+01
Iteration Nr. 2
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1230011 E(CORR)= -308.74086218 Delta=-3.19D-02
NORM(A)= 0.12094299D+01
Iteration Nr. 3
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1256519 E(CORR)= -308.74351300 Delta=-2.65D-03
NORM(A)= 0.12123093D+01
Iteration Nr. 4
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1284213 E(CORR)= -308.74628242 Delta=-2.77D-03
NORM(A)= 0.12135283D+01
Iteration Nr. 5
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1287546 E(CORR)= -308.74661565 Delta=-3.33D-04
NORM(A)= 0.12138415D+01
Iteration Nr. 6
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1288002 E(CORR)= -308.74666128 Delta=-4.56D-05
NORM(A)= 0.12138681D+01
Iteration Nr. 7
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1288052 E(CORR)= -308.74666624 Delta=-4.96D-06
NORM(A)= 0.12138702D+01
Iteration Nr. 8
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1288029 E(CORR)= -308.74666401 Delta= 2.22D-06
NORM(A)= 0.12138753D+01
Iteration Nr. 9
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1288031 E(CORR)= -308.74666422 Delta=-2.03D-07
NORM(A)= 0.12138756D+01
Iteration Nr. 10
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1288038 E(CORR)= -308.74666488 Delta=-6.61D-07
NORM(A)= 0.12138767D+01
Iteration Nr. 11
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1288042 E(CORR)= -308.74666524 Delta=-3.59D-07
NORM(A)= 0.12138772D+01
Iteration Nr. 12
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1288044 E(CORR)= -308.74666548 Delta=-2.44D-07
NORM(A)= 0.12138775D+01
Iteration Nr. 13
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1288045 E(CORR)= -308.74666559 Delta=-1.09D-07
NORM(A)= 0.12138777D+01
Iteration Nr. 14
**********************
DD1Dir will call FoFMem 1 times, MxPair= 420
NAB= 210 NAA= 0 NBB= 0.
DE(Corr)= -1.1288046 E(CORR)= -308.74666564 Delta=-4.66D-08
NORM(A)= 0.12138778D+01
Wavefunction amplitudes converged. E(Corr)= -308.74666564
Largest amplitude= 5.07D-02
|
|
发表于 Post on 2023-12-24 14:42:54
收藏 Add to favorites
楼主 Author