Question
The angular momentum (L) of an electron in a Bohr orbit is given as:(a) $\mathrm{L}=\mathrm{nh} / 2 \pi$(b) $\mathrm{L}=\sqrt{[l(l+1) \mathrm{h} / 2 \pi]}$(c) $\mathrm{L}=\mathrm{mg} / 2 \pi$(d) $\mathrm{L}=\mathrm{h} / 4 \pi$
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Step 1: According to Bohr's theory, the angular momentum of an electron in a Bohr orbit is quantized, which means it can only take on certain discrete values. Show more…
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