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All results from a given calculation for C4H4S (Thiophene)

using model chemistry: B3LYP/cc-pVTZ

19 10 17 12 22

States and conformations

State Conformation minimum conformation conformer description state description
1 1 yes C2V 1A1
Energy calculated at B3LYP/cc-pVTZ
 hartrees
Energy at 0K-553.098192
Energy at 298.15K-553.102604
Nuclear repulsion energy202.645295
The energy at 298.15K was derived from the energy at 0K and an integrated heat capacity that used the calculated vibrational frequencies.
Vibrational Frequencies calculated at B3LYP/cc-pVTZ
Mode Number Symmetry Frequency
(cm-1)
Scaled Frequency
(cm-1)
IR Intensities
(km mol-1)
Raman Act
4/u)
Dep P Dep U
1 A1 3249 3141 1.45      
2 A1 3210 3102 4.60      
3 A1 1445 1396 9.26      
4 A1 1397 1351 0.61      
5 A1 1106 1069 3.32      
6 A1 1055 1020 2.69      
7 A1 838 810 22.30      
8 A1 615 594 0.19      
9 A2 930 899 0.00      
10 A2 695 671 0.00      
11 A2 582 562 0.00      
12 B1 889 860 0.04      
13 B1 728 703 122.09      
14 B1 462 446 0.67      
15 B2 3247 3138 0.27      
16 B2 3196 3089 3.94      
17 B2 1556 1504 0.01      
18 B2 1283 1241 10.03      
19 B2 1108 1071 3.89      
20 B2 879 850 1.01      
21 B2 751 726 0.33      

Unscaled Zero Point Vibrational Energy (zpe) 14609.5 cm-1
Scaled (by 0.9666) Zero Point Vibrational Energy (zpe) 14121.5 cm-1
See section III.C.1 List or set vibrational scaling factors to change the scale factors used here.
See section III.C.2 Calculate a vibrational scaling factor for a given set of molecules to determine the least squares best scaling factor.
Rotational Constants (cm-1) from geometry optimized at B3LYP/cc-pVTZ
ABC
0.26827 0.18038 0.10786

See section I.F.4 to change rotational constant units
Geometric Data calculated at B3LYP/cc-pVTZ

Point Group is C2v

Cartesians (Å)
Atom x (Å) y (Å) z (Å)
S1 0.000 0.000 1.193
C2 0.000 1.238 -0.010
C3 0.000 -1.238 -0.010
C4 0.000 0.712 -1.267
C5 0.000 -0.712 -1.267
H6 0.000 2.274 0.282
H7 0.000 -2.274 0.282
H8 0.000 1.314 -2.163
H9 0.000 -1.314 -2.163

Atom - Atom Distances (Å)
  S1 C2 C3 C4 C5 H6 H7 H8 H9
S11.72601.72602.56082.56082.45012.45013.60433.6043
C21.72602.47591.36292.31971.07663.52432.15503.3391
C31.72602.47592.31971.36293.52431.07663.33912.1550
C42.56081.36292.31971.42322.20013.36361.07992.2149
C52.56082.31971.36291.42323.36362.20012.21491.0799
H62.45011.07663.52432.20013.36364.54862.62704.3420
H72.45013.52431.07663.36362.20014.54864.34202.6270
H83.60432.15503.33911.07992.21492.62704.34202.6275
H93.60433.33912.15502.21491.07994.34202.62702.6275

picture of Thiophene state 1 conformation 1
More geometry information
Calculated Bond Angles
atom1 atom2 atom3 angle atom1 atom2 atom3 angle
S1 C2 C4 111.456 S1 C2 H6 120.115
S1 C3 C5 111.456 S1 C3 H7 120.115
C2 S1 C3 91.652 C2 C4 C5 112.718
C2 C4 H8 123.394 C3 C5 C4 112.718
C3 C5 H9 123.394 C4 C2 H6 128.429
C4 C5 H9 123.887 C5 C3 H7 128.429
C5 C4 H8 123.887
Electronic energy levels

Electronic state

Charges, Dipole, Quadrupole and Polarizability
Charges from optimized geometry at B3LYP/cc-pVTZ Charges (e)
Number Element Mulliken CHELPG AIM ESP
1 S 0.114     0.035
2 C -0.174     -0.209
3 C -0.174     -0.209
4 C -0.128     -0.126
5 C -0.128     -0.126
6 H 0.126     0.185
7 H 0.126     0.185
8 H 0.120     0.133
9 H 0.120     0.133


Electric dipole moments
Electric dipole components in Debye
(What's a Debye? See section VII.A.3)
  x y z Total
  0.000 0.000 -0.518 0.518
CHELPG        
AIM        
ESP 0.000 0.000 -0.507 0.507


Electric Quadrupole moment
Quadrupole components in D Å
Primitive
 xyz
x -40.050 0.000 0.000
y 0.000 -31.682 0.000
z 0.000 0.000 -34.891
Traceless
 xyz
x -6.764 0.000 0.000
y 0.000 5.789 0.000
z 0.000 0.000 0.975
Polar
3z2-r21.949
x2-y2-8.369
xy0.000
xz0.000
yz0.000


Polarizabilities
Components of the polarizability tensor.
Units are Å3 (Angstrom cubed)
Change units.
  x y z
x 4.896 0.000 0.000
y 0.000 9.788 0.000
z 0.000 0.000 10.768


<r2> (average value of r2) Å2
<r2> 112.015
(<r2>)1/2 10.584