The ratio of velocity of an electron in a certain Bohr's orbit (nth orbit) of H-atom to the velocity of light is 1:550 . The wavenumber of radiation emitted when the electron jumps from the (n+1) to ground state:
(Rydberg constant (RH)=109678cm−1
A
9.75×104cm−1
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B
1.03×105cm−1
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C
1.57×104cm−1
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D
2.75×105cm−1
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Solution
The correct option is A9.75×104cm−1 We know that the velocity of electron in nth orbit of hydrogen like atom: Ve=2.189×106×Znms−1
for hydrogen Z = 1
So, according to the question, VeVlight=1275=2.189×106×Zn3×108 n=2
So, n+1=3, transition from n=3 to n=1 1λ=12×109678(1n21−1n22)cm−1 1λ=12×109678(112−132)cm−1 1λ=9.75×104cm−1