Balmer gave an equation for wavelength of visible region of H-spectrum as λ=Kn2n2−4. Where n = principal quantum number of energy level, K = constant in terms of R (Rydberg constant).
The value of K in term of R is:
A
R
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B
R2
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C
4R
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D
5R
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Solution
The correct option is C4R Given: λ=Kn2n2−4...(i)
Wave number −v for a Balmer transtiton n→2 −v=1λ=R[122−1n2]
where R=Rydberg constant n=Initial energy state ⇒λ=4Rn2n2−4..(ii)