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Question

The ratio of wave numbers for the highest energy transition of an electron in Lyman series of He+ and Balmer series of H-atom is:

A
16:1
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B
1:1
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C
1:16
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D
1:4
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Solution

The correct option is A 16:1
Lyman series of He+1λ1=¯v1=RH.Z2[1121n22]
where λ = wavelength of the transition
Z = atomic number and n2 = higher orbit number

1λ1=¯v1=RH.22[1121n22]....(1)

Balmer series of H-atom
1λ2=¯v2=RH.12[1221n22]... (2)
For the highest energy transition:
For Lyman series n2=
For Balmer series n2=
Dividing equation (1) by (2), we get
¯v1¯v2=161

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