Advertisements
Advertisements
Question
Calculate the longest wavelength of the Balmer series for the H atom.
Numerical
Advertisements
Solution
Formula: `1/λ = R_H(1/n^2 - 1/m^2)` Here n < m
where, λ is the wavelength,
R → Rydberg’s constant = 1.097 × 107 m−1
For the longest wavelength of the Balmer series,
n = 2, m = 3
∴ `1/λ_L = 1.097 xx 10^7(1/2^2 - 1/3^2)`
∴ `1/λ_L = 1.097 xx 10^7(1/4 - 1/9)`
∴ `1/λ_L = 1.097 xx 10^7(5/36)`
∴ `λ_L = (36 xx 10^-7)/(5 xx 1.097)`
∴ λL = 6563 × 10−10
∴ λL = 6563 Å
shaalaa.com
Is there an error in this question or solution?
