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All results from a given calculation for CH3CH(SH)CH2CH3 (2-Butanethiol)

using model chemistry: LSDA/6-311G*

19 10 17 12 22

States and conformations

State Conformation minimum conformation conformer description state description
1 1 yes C1 1A
Energy calculated at LSDA/6-311G*
 hartrees
Energy at 0K-554.776556
Energy at 298.15K-554.787235
Nuclear repulsion energy239.100990
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 LSDA/6-311G*
Mode Number Symmetry Frequency
(cm-1)
Scaled Frequency
(cm-1)
IR Intensities
(km mol-1)
Raman Act
4/u)
Dep P Dep U
1 A 3064 3014 11.17      
2 A 3057 3007 14.81      
3 A 3040 2991 23.41      
4 A 3026 2977 24.09      
5 A 2980 2931 19.96      
6 A 2966 2918 18.69      
7 A 2961 2913 23.67      
8 A 2955 2906 8.56      
9 A 2937 2890 19.20      
10 A 2543 2502 7.74      
11 A 1454 1430 10.66      
12 A 1439 1415 20.20      
13 A 1437 1414 6.90      
14 A 1432 1409 14.42      
15 A 1415 1392 3.04      
16 A 1357 1334 25.15      
17 A 1354 1332 9.20      
18 A 1332 1311 3.02      
19 A 1283 1262 10.11      
20 A 1255 1234 0.26      
21 A 1230 1210 2.45      
22 A 1155 1136 2.00      
23 A 1122 1104 1.83      
24 A 1090 1072 10.55      
25 A 1054 1036 1.80      
26 A 979 963 10.94      
27 A 946 930 6.58      
28 A 854 840 3.38      
29 A 850 836 8.31      
30 A 767 754 10.27      
31 A 616 606 3.43      
32 A 455 448 0.37      
33 A 374 368 1.16      
34 A 327 321 1.06      
35 A 263 259 0.31      
36 A 231 228 1.11      
37 A 222 218 0.91      
38 A 189 186 18.47      
39 A 118 116 0.08      

Unscaled Zero Point Vibrational Energy (zpe) 28064.1 cm-1
Scaled (by 0.9837) Zero Point Vibrational Energy (zpe) 27606.7 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 LSDA/6-311G*
ABC
0.15185 0.10476 0.06792

See section I.F.4 to change rotational constant units
Geometric Data calculated at LSDA/6-311G*

Point Group is C1

Cartesians (Å)
Atom x (Å) y (Å) z (Å)
S1 0.924 -1.215 -0.005
H2 1.177 -0.956 1.312
C3 1.234 1.517 -0.014
H4 1.427 1.539 1.073
H5 0.850 2.511 -0.301
C6 0.239 0.440 -0.351
H7 0.084 0.409 -1.447
C8 -1.096 0.662 0.322
H9 -1.408 1.704 0.113
H10 -0.947 0.610 1.419
C11 -2.175 -0.296 -0.107
H12 -2.371 -0.216 -1.190
H13 -1.874 -1.337 0.096
H14 -3.124 -0.105 0.416
H15 2.197 1.354 -0.520

Atom - Atom Distances (Å)
  S1 H2 C3 H4 H5 C6 H7 C8 H9 H10 C11 H12 H13 H14 H15
S11.36602.74933.00033.73851.82382.32892.77673.73772.97603.23333.64102.80244.21782.9132
H21.36602.80642.51913.83782.36533.26702.96103.89832.64153.69964.40443.30734.47493.1196
C32.74932.80641.10421.10391.50452.14552.50502.65202.76273.86224.16904.22114.66961.0997
H43.00032.51911.10421.77892.15593.07112.77472.99732.57244.21104.75644.48604.88251.7792
H53.73853.83781.10391.77892.16002.51352.75602.43363.13044.13134.31274.73124.81111.7891
C61.82382.36531.50452.15592.16001.10711.51232.12792.13762.53562.81892.79703.49222.1672
H72.32893.26702.14553.07112.51351.10712.14172.51723.05212.71922.54603.04353.74492.4935
C82.77672.96102.50502.77472.75601.51232.14171.10741.10771.50522.16372.15682.16943.4690
H93.73773.89832.65202.99732.43362.12792.51721.10741.76422.15332.51203.07622.51113.6769
H102.97602.64152.76272.57243.13042.13763.05211.10771.76422.15803.08452.53002.50053.7678
C113.23333.69963.86224.21104.13132.53562.71921.50522.15332.15801.10331.10191.10064.6910
H123.64104.40444.16904.75644.31272.81892.54602.16372.51203.08451.10331.77651.77754.8763
H132.80243.30734.22114.48604.73122.79703.04352.15683.07622.53001.10191.77651.78374.9188
H144.21784.47494.66964.88254.81113.49223.74492.16942.51112.50051.10061.77751.78375.5958
H152.91323.11961.09971.77921.78912.16722.49353.46903.67693.76784.69104.87634.91885.5958

picture of 2-Butanethiol state 1 conformation 1
More geometry information
Calculated Bond Angles
atom1 atom2 atom3 angle atom1 atom2 atom3 angle
S1 C6 C3 111.026 S1 C6 H7 102.468
S1 C6 C8 112.340 H2 S1 C6 94.635
C3 C6 H7 109.537 C3 C6 C8 112.268
H4 C3 H5 107.338 H4 C3 C6 110.528
H4 C3 H15 107.664 H5 C3 C6 110.877
H5 C3 H15 108.564 C6 C3 H15 111.708
C6 C8 H9 107.634 C6 C8 H10 108.354
C6 C8 C11 114.339 H7 C6 C8 108.707
C8 C11 H12 111.154 C8 C11 H13 110.690
C8 C11 H14 111.786 H9 C8 H10 105.585
H9 C8 C11 110.086 H10 C8 C11 110.436
H12 C11 H13 107.337 H12 C11 H14 107.522
H13 C11 H14 108.168
Electronic energy levels
Charges, Dipole, Quadrupole and Polarizability
Charges from optimized geometry at LSDA/6-311G* Charges (e)
Number Element Mulliken CHELPG AIM ESP
1 S -0.090      
2 H 0.157      
3 C -0.681      
4 H 0.238      
5 H 0.243      
6 C -0.493      
7 H 0.279      
8 C -0.451      
9 H 0.241      
10 H 0.236      
11 C -0.705      
12 H 0.237      
13 H 0.271      
14 H 0.245      
15 H 0.273      


Electric dipole moments
Electric dipole components in Debye
(What's a Debye? See section VII.A.3)
  x y z Total
  -0.572 1.688 0.530 1.859
CHELPG        
AIM        
ESP        


Electric Quadrupole moment
Quadrupole components in D Å
Primitive
 xyz
x -43.243 0.757 1.447
y 0.757 -43.673 -1.416
z 1.447 -1.416 -39.477
Traceless
 xyz
x -1.668 0.757 1.447
y 0.757 -2.313 -1.416
z 1.447 -1.416 3.981
Polar
3z2-r27.961
x2-y20.430
xy0.757
xz1.447
yz-1.416


Polarizabilities
Components of the polarizability tensor.
Units are Å3 (Angstrom cubed)
Change units.
  x y z
x 10.551 -0.425 0.184
y -0.425 10.732 -0.050
z 0.184 -0.050 8.768


<r2> (average value of r2) Å2
<r2> 0.000
(<r2>)1/2 0.000