What is the energy difference ΔE between the l=0 and l=1 rotational states of diatomic hydrogen? Use 1.05×10−34J⋅s for ℏ. The equilibrium separation of the two hydrogen atoms in diatomic hydrogen is 0.

asked Oct 21, 2021 78.2k views

3 votes

by Tanzy

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3 votes

Answer:

2.4* 10^(-21) J

Step-by-step explanation:

We are given that

l=0 and l=1

$h=1.05* 10^(-34) J\cdot s$

r=0.074nm=0.074* 10^(-9) m

1nm=10^(-9) m

Mass of single hydrogen,m=
1.67* 10^(-27) kg

E_l=(l(l+1)h^2)/(mr^2)

Energy difference,
$\Delta E=E_(l=1)-E_(l=0)$

$\Delta E=(h^2)/(mr^2)(1(1+1))-(h^2)/(mr^2)(0(0+1))=(h^2)/(mr^2)(1(1+1))=(2h^2)/(mr^2)$

$\Delta E=(2* (1.05* 10^(-34))^2)/(1.67* 10^(-27)* (0.074* 10^(-9))^2)$

$\Delta E=2.4* 10^(-21) J$

Hassan Syed answered Oct 26, 2021

5.0k points

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