The de Broglie wavelength of an electron moving in a circular orbit is - The minimum radius of orbit is-

The correct option is A λ2πFrom de Broglie equaiton, nbsp; λ = hmv⇒ mv = hλ For an allowed orbit, the angular momentum is mvr = nh2π ⇒hλ . r = nh2π nbsp; ...

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Standard XII

Chemistry

De Broglie's Hypothesis

The de Brogli...

Question

The de Broglie wavelength of an electron moving in a circular orbit is $λ .$ The minimum radius of orbit is:

\frac{λ}{π}

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\frac{λ}{2 π}

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\frac{λ}{4 π}

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\frac{λ}{3 π}

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Solution

The correct option is B $\frac{λ}{2 π}$
From de-Broglie equaiton,
$λ = \frac{h}{m v} \Rightarrow m v = \frac{h}{λ}$
For an allowed orbit, the angular momentum is $m v r = \frac{n h}{2 π}$
$\Rightarrow \frac{h}{λ} . r = \frac{n h}{2 π}$ $(∵ m v = \frac{h}{λ})$
$\Rightarrow r = \frac{n λ}{2 π}$
For minimum radius, n = 1
$∴ r = \frac{λ}{2 π} .$

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The de Broglie wavelength of an electron moving in a circular orbit is λ. The minimum radius of orbit is:

The correct option is B λ2πFrom de-Broglie equaiton, λ=hmv⇒mv=hλ For an allowed orbit, the angular momentum is mvr=nh2π ⇒hλ.r=nh2π (∵mv=hλ) ⇒r=nλ2π For minimum radius, n = 1 ∴r=λ2π.

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