Question

Calculate the wave number for the longest wavelength transition in the Balmer series of atomic hydrogen.

Answer 1

For the Balmer series, n_i = 2. Thus, the expression of wavenumber (`bar "v"`)is given by,

`bar "v" = [1/(2)^2 - 1/"n"_"f"^2] (1.097 xx 10^7 "m"^(-1))`

Wave number (`bar "v"`) is inversely proportional to wavelength of transition. Hence, for the longest wavelength transition, `bar "v"` has to be the smallest.

For (`bar "v"`) to be minimum, n_f should be minimum. For the Balmer series, a transition from n_i = 2 to n_f = 3 is allowed. Hence, taking n_f = 3, we get:

`bar "v" = (1.097xx10^7)[1/2^2 - 1/3^2]`

`bar "v" = (1.097 xx 10^7)[1/4 - 1/9]`

`= (1.097 xx 10^7) ((9-4)/36)`

`=(1.097 xx 10^7)(5/36)`

`bar "v"` =  1.5236 × 10⁶ m^–1