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Question

Which electronic transition in a hydrogen atom, starting from the orbit n=7, will produce infrared light of wavelength 2170 nm?
(Given: RH=1.09677×107 m1)

A
n=7n=6
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B
n=7n=5
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C
n=7n=4
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D
n=7n=3
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Solution

The correct option is C n=7n=4
For H-atom,
1λ=RH[1n211n22]
where RH=Rydberg constant
n1=Lower energy state
n2=Higher energy state
Given: λ=2170 nm=2170×109 m
RH=1.09677×107 m1

12170×109=1.09677×107[1n21172]

n1=4

Hence transition n=7n=4 results into production of infrared light of wavelength 2170 nm

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