NEET · Physics · STD 12 - 12. atoms
Given the value of Ryderg constant is \(10^7\,\,m^{-1}\) , the wave number of the last line of the Balmer series in hydrogen spectrum will be
- A \(0.5 \times 10^7\;m^{-1}\)
- B \(0.25 \times 10^7\;m^{-1}\)
- C \(2.5 \times 10^7\;m^{-1}\)
- D \(0.025 \times 10^4\;m^{-1}\)
Answer & Solution
Correct Answer
(B) \(0.25 \times 10^7\;m^{-1}\)
Step-by-step Solution
Detailed explanation
Here, \(R=10^{7} \mathrm{m}^{-1}\) The wave number of the last line of the Balmer series in hydrogen spectrum is given by
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