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Question

In H-atom, if 'x' is the radius of the first Bohr orbit, de Broglie wavelength of an electron in 3rd orbit is :

A
3πx
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B
6πx
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C
9x2
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D
x2
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Solution

The correct option is B 6πx
For a hydrogen atom, radius of nth orbit, rn=n2h24π2me2Z
Therefore,r1r3=1232

r3=9r1=9x

Now, according to De Broglie; angular momentum of electron in 3rd orbit is:
mvr3=3h2π or hmv=2πr33
And
λ=hmv , where λ ,is the de Broglie wavelength.
Therefore,
λ=2πr33
= 2π.9x3 = 6πx

Hence the answer is 6πx.

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