WBJEE · Chemistry · Structure of Atom
The difference between orbital angular momentum of an electron in a 4 f orbital and another electron in a 4 s orbital is
- A \(2 \sqrt{3}\) \(\times \frac{h}{(2 \times 3.14)}\)
- B \(3 \sqrt{2}\) \(\times \frac{h}{(2 \times 3.14)}\)
- C \(\sqrt{3}\) \(\times \frac{h}{(2 \times 3.14)}\)
- D 2 \(\times \frac{h}{(2 \times 3.14)}\)
Answer & Solution
Correct Answer
(A) \(2 \sqrt{3}\) \(\times \frac{h}{(2 \times 3.14)}\)
Step-by-step Solution
Detailed explanation
Hint: Orbital angular momentum \(=\sqrt{\ell(\ell+1)} \frac{\mathrm{h}}{2 \pi}\) For 4 f orbital; \(\ell=3 \therefore\) Orbital angular momentum \(=\sqrt{3(3+1)} \frac{\mathrm{h}}{2 \pi}=2 \sqrt{3} \frac{\mathrm{h}}{2 \pi}\) For 4 s orbital; \(\ell=0 \therefore\) Orbital angular…
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