Question:

The average energy of a diatomic gaseous molecule at temperature T is $\frac{5}{2} k_B T$. The average energy per degree of freedom is

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Equipartition theorem always gives $\frac{1}{2} k_B T$ per degree of freedom.

Updated On: Jan 5, 2026

$\frac{1}{2} k_B T$
$\frac{2}{3} k_B T$
$k_B T$
$\frac{3}{2} k_B T$

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The Correct Option is A

Solution and Explanation

Step 1: Recall the equipartition theorem.
Each degree of freedom contributes $\frac{1}{2} k_B T$ to the average energy.
Step 2: Identify degrees of freedom.
A diatomic molecule at normal temperature has 5 degrees of freedom (3 translational + 2 rotational).
Total energy = $\frac{5}{2} k_B T$.
Step 3: Energy per degree of freedom.
Divide total energy by 5: $\frac{\frac{5}{2} k_B T}{5} = \frac{1}{2} k_B T$.
Step 4: Conclusion.
Each degree of freedom contributes $\frac{1}{2} k_B T$.

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Group I	Group II
P) NaCl	1) Coordination bond
Q) $H_2$	2) Polar covalent bond
R) $Pd-P$ bond in $Pd(PPh_3)_4	3) Covalent bond
S) $C-Cl$ bond in $CH_3Cl $	4) Ionic bond

The average energy of a diatomic gaseous molecule at temperature T is $\frac{5}{2} k_B T$. The average energy per degree of freedom is

Show Hint

The Correct Option is A

Solution and Explanation

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