(a) Consider that the energy of H₂ with an internuclear separation R is given by E. = EH₁, +jo/R-(j+k)/(1+S). Plot the molecular potential energy curve and find the bond dissociation energy (in eV) and the equilibrium bond length. (b) Calculate the molecular potential energy curve for the anti bonding orbital, which is given by E* = EH₁s + jo/R(jk)/(1 — S).

Applications and Investigations in Earth Science (9th Edition)
9th Edition
ISBN:9780134746241
Author:Edward J. Tarbuck, Frederick K. Lutgens, Dennis G. Tasa
Publisher:Edward J. Tarbuck, Frederick K. Lutgens, Dennis G. Tasa
Chapter1: The Study Of Minerals
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use the data provided in the image to answer parts a) and b). Show full and complete procedure in a clear way. Do not skip any steps 

(a) Consider that the energy of H₂ with an internuclear separation R is given by E = EH₁s+jo/R−(j+k)/(1+S).
Plot the molecular potential energy curve and find the bond dissociation energy (in eV) and the equilibrium
bond length.
(b) Calculate the molecular potential energy curve for the anti bonding orbital, which is given by E* = EH18 +
jo/R (jk)/(1 — S).
Transcribed Image Text:(a) Consider that the energy of H₂ with an internuclear separation R is given by E = EH₁s+jo/R−(j+k)/(1+S). Plot the molecular potential energy curve and find the bond dissociation energy (in eV) and the equilibrium bond length. (b) Calculate the molecular potential energy curve for the anti bonding orbital, which is given by E* = EH18 + jo/R (jk)/(1 — S).
2
4
R/ao 0
j/jo 1.000
1
0.729
3
0.330
0.472
0.250
1.000
0.736 0.406
0.199
0.092
k/jo
S
1.000 0.858 0.587 0.349 0.189
where jo = 27.2 eV, ao = 52.9 pm and EH₁. = -jo.
EH18
Transcribed Image Text:2 4 R/ao 0 j/jo 1.000 1 0.729 3 0.330 0.472 0.250 1.000 0.736 0.406 0.199 0.092 k/jo S 1.000 0.858 0.587 0.349 0.189 where jo = 27.2 eV, ao = 52.9 pm and EH₁. = -jo. EH18
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