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All results from a given calculation for BeOH (beryllium monohydroxide)

using model chemistry: CCSD(T)/aug-cc-pVQZ

19 10 17 12 22

States and conformations

State Conformation minimum conformation conformer description state description
1 1 yes CS 2A'
1 2 no C*V 2Σ

Conformer 1 (CS)

Jump to S1C2
Energy calculated at CCSD(T)/aug-cc-pVQZ
 hartrees
Energy at 0K-90.452315
Energy at 298.15K-90.452110
HF Energy-90.144810
Nuclear repulsion energy17.475084
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 CCSD(T)/aug-cc-pVQZ
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' 4027 3872        
2 A' 1268 1219        
3 A' 334 321        

Unscaled Zero Point Vibrational Energy (zpe) 2814.5 cm-1
Scaled (by 0.9614) Zero Point Vibrational Energy (zpe) 2705.8 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 CCSD(T)/aug-cc-pVQZ
ABC
52.08410 1.30985 1.27771

See section I.F.4 to change rotational constant units
Geometric Data calculated at CCSD(T)/aug-cc-pVQZ

Point Group is Cs

Cartesians (Å)
Atom x (Å) y (Å) z (Å)
O1 0.047 -0.376 0.000
Be2 0.047 1.028 0.000
H3 -0.568 -1.100 0.000

Atom - Atom Distances (Å)
  O1 Be2 H3
O11.40400.9496
Be21.40402.2146
H30.94962.2146

picture of beryllium monohydroxide state 1 conformation 1
More geometry information
Calculated Bond Angles
atom1 atom2 atom3 angle atom1 atom2 atom3 angle
Be2 O1 H3 139.624
Electronic energy levels
Charges, Dipole, Quadrupole and Polarizability

Conformer 2 (C*V)

Jump to S1C1
Energy calculated at CCSD(T)/aug-cc-pVQZ
 hartrees
Energy at 0K-90.451571
Energy at 298.15K 
HF Energy-90.144067
Nuclear repulsion energy17.649833
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 CCSD(T)/aug-cc-pVQZ
Mode Number Symmetry Frequency
(cm-1)
Scaled Frequency
(cm-1)
IR Intensities
(km mol-1)
Raman Act
4/u)
Dep P Dep U
1 Σ 4115 3956        
2 Σ 1319 1268        
3 Π 248i 238i        
3 Π 248i 238i        

Unscaled Zero Point Vibrational Energy (zpe) 2469.1 cm-1
Scaled (by 0.9614) Zero Point Vibrational Energy (zpe) 2373.8 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 CCSD(T)/aug-cc-pVQZ
B
1.29496

See section I.F.4 to change rotational constant units
Geometric Data calculated at CCSD(T)/aug-cc-pVQZ

Point Group is C∞v

Cartesians (Å)
Atom x (Å) y (Å) z (Å)
O1 0.000 0.000 0.353
Be2 0.000 0.000 -1.029
H3 0.000 0.000 1.296

Atom - Atom Distances (Å)
  O1 Be2 H3
O11.38170.9438
Be21.38172.3255
H30.94382.3255

picture of beryllium monohydroxide state 1 conformation 2
More geometry information
Calculated Bond Angles
atom1 atom2 atom3 angle atom1 atom2 atom3 angle
Be2 O1 H3 180.000
Electronic energy levels
Charges, Dipole, Quadrupole and Polarizability