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All results from a given calculation for HSSSH (trisulfane)

using model chemistry: B3LYP/LANL2DZ

19 10 17 12 22

States and conformations

State Conformation minimum conformation conformer description state description
1 1 yes C2 trans 1A
1 2 no CS cis 1A'

Conformer 1 (C2 trans)

Jump to S1C2
Energy calculated at B3LYP/LANL2DZ
 hartrees
Energy at 0K-31.477140
Energy at 298.15K-31.479052
HF Energy-31.477140
Nuclear repulsion energy30.356434
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/LANL2DZ
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 2471 2376 0.26      
2 A 783 753 0.02      
3 A 394 379 0.83      
4 A 273 262 45.53      
5 A 154 148 0.00      
6 B 2472 2376 38.90      
7 B 779 748 1.97      
8 B 380 365 28.73      
9 B 290 279 24.26      

Unscaled Zero Point Vibrational Energy (zpe) 3998.0 cm-1
Scaled (by 0.9612) Zero Point Vibrational Energy (zpe) 3842.9 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/LANL2DZ
ABC
0.38058 0.07418 0.06380

See section I.F.4 to change rotational constant units
Geometric Data calculated at B3LYP/LANL2DZ

Point Group is C2

Cartesians (Å)
Atom x (Å) y (Å) z (Å)
S1 0.000 0.000 0.937
S2 0.000 1.839 -0.430
S3 0.000 -1.839 -0.430
H4 -1.372 1.907 -0.610
H5 1.372 -1.907 -0.610

Atom - Atom Distances (Å)
  S1 S2 S3 H4 H5
S12.29112.29112.81262.8126
S22.29113.67701.38513.9931
S32.29113.67703.99311.3851
H42.81261.38513.99314.6986
H52.81263.99311.38514.6986

picture of trisulfane state 1 conformation 1
More geometry information
Calculated Bond Angles
atom1 atom2 atom3 angle atom1 atom2 atom3 angle
S1 S2 H4 96.726 S1 S3 H5 96.726
S2 S1 S3 106.735
Electronic energy levels
Charges, Dipole, Quadrupole and Polarizability
Charges from optimized geometry at B3LYP/LANL2DZ Charges (e)
Number Element Mulliken CHELPG AIM ESP
1 S -0.047      
2 S -0.096      
3 S -0.096      
4 H 0.120      
5 H 0.120      


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 -0.679 0.679
CHELPG        
AIM        
ESP        


Electric Quadrupole moment
Quadrupole components in D Å
Primitive
 xyz
x -36.344 -5.482 0.000
y -5.482 -39.106 0.000
z 0.000 0.000 -40.705
Traceless
 xyz
x 3.562 -5.482 0.000
y -5.482 -0.582 0.000
z 0.000 0.000 -2.980
Polar
3z2-r2-5.959
x2-y22.762
xy-5.482
xz0.000
yz0.000


Polarizabilities
Components of the polarizability tensor.
Units are Å3 (Angstrom cubed)
Change units.
  x y z
x 4.873 -0.931 0.000
y -0.931 13.165 0.000
z 0.000 0.000 5.259


<r2> (average value of r2) Å2
<r2> 84.013
(<r2>)1/2 9.166

Conformer 2 (CS cis)

Jump to S1C1
Energy calculated at B3LYP/LANL2DZ
 hartrees
Energy at 0K-31.476100
Energy at 298.15K-31.477996
HF Energy-31.476100
Nuclear repulsion energy30.334164
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/LANL2DZ
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' 2463 2367 52.41      
2 A' 783 753 3.27      
3 A' 393 378 0.72      
4 A' 290 278 32.97      
5 A' 155 149 0.17      
6 A" 2462 2366 0.07      
7 A" 781 751 0.50      
8 A" 381 366 32.72      
9 A" 259 249 10.05      

Unscaled Zero Point Vibrational Energy (zpe) 3982.9 cm-1
Scaled (by 0.9612) Zero Point Vibrational Energy (zpe) 3828.4 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/LANL2DZ
ABC
0.38379 0.07378 0.06360

See section I.F.4 to change rotational constant units
Geometric Data calculated at B3LYP/LANL2DZ

Point Group is Cs

Cartesians (Å)
Atom x (Å) y (Å) z (Å)
S1 -0.055 0.931 0.000
S2 -0.055 -0.432 1.842
S3 -0.055 -0.432 -1.842
H4 1.321 -0.531 1.975
H5 1.321 -0.531 -1.975

Atom - Atom Distances (Å)
  S1 S2 S3 H4 H5
S12.29122.29122.81622.8162
S22.29123.68401.38644.0584
S32.29123.68404.05841.3864
H42.81621.38644.05843.9491
H52.81624.05841.38643.9491

picture of trisulfane state 1 conformation 2
More geometry information
Calculated Bond Angles
atom1 atom2 atom3 angle atom1 atom2 atom3 angle
S1 S2 H4 96.863 S1 S3 H5 96.863
S2 S1 S3 107.013
Electronic energy levels
Charges, Dipole, Quadrupole and Polarizability
Charges from optimized geometry at B3LYP/LANL2DZ Charges (e)
Number Element Mulliken CHELPG AIM ESP
1 S -0.048      
2 S -0.085      
3 S -0.085      
4 H 0.109      
5 H 0.109      


Electric dipole moments
Electric dipole components in Debye
(What's a Debye? See section VII.A.3)
  x y z Total
  2.626 -0.515 0.000 2.676
CHELPG        
AIM        
ESP        


Electric Quadrupole moment
Quadrupole components in D Å
Primitive
 xyz
x -36.721 -1.623 0.000
y -1.623 -40.931 0.000
z 0.000 0.000 -38.624
Traceless
 xyz
x 3.056 -1.623 0.000
y -1.623 -3.258 0.000
z 0.000 0.000 0.202
Polar
3z2-r20.404
x2-y24.210
xy-1.623
xz0.000
yz0.000


Polarizabilities
Components of the polarizability tensor.
Units are Å3 (Angstrom cubed)
Change units.
  x y z
x 4.855 -0.409 0.000
y -0.409 5.171 0.000
z 0.000 0.000 13.288


<r2> (average value of r2) Å2
<r2> 84.268
(<r2>)1/2 9.180