Quantum Chemistry/Example 17: Difference between revisions

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Template:BookCat The force constant of HCl is determined computationally to be 480 N/m. Given this information find the frequency of EM radiation required to excite the HCl molecule from its ground state to its first excited state.

Solution

Given the bond constant (k) of HCl , we use the relationship between fundamental frequency and bond constant to find the bond constant.

ν0=12π(kμ)1/2

where K is the bond constant.

μ is the reduced mass of HCl.

To find the reduced mass of HCl the masses of H and Cl are multiplied and divided by the sum of the masses.

μ=m1m2m1+m2

For HCl the reduced mass is calculated as

μ=1.007842u35.453u1.007842u+35.453u=0.979982u

convert to the SI unit of Kg

1u=1.660541027Kg

0.979983u=0.979983u1.660541027Kg

μ=1.62731027Kg

To find the fundamental frequency

ν0=12π(Kμ)1/2

=12π(480N/m1.62731027Kg)1/2
=8.64381013hz

After finding the fundamental frequency, the Energy at different quantum levels can be found by

Ev=hν0(v+12)

For the ground state i.e. v=0

E0=hν0(0+12)
E0=hν0(12)

For the first excited state i.e. v=1

E1=hν0(1+12)
E1=hν0(32)

The difference in energy between the two states is

ΔE=E1E0
ΔE=hν0(32)hν0(12)
ΔE=hν0

and Energy is defined as Planck's constant multiplied by frequency

ΔE=hv
hv=hν0
v=ν0=8.64381013hz