1 Answer

Rian Rizvi · Answer 1 · 2020-12-30T00:56:09+0000

Answer:

The wavelength required is 102.9 nm.

Step-by-step explanation:

The energy levels for the hydrogen atom are

$E(n) = (-13.6 \ eV)/(n^2)$

So, for a transition from the first level to the third level we got

$\Delta E = E(3) - E (1)$

$\Delta E = (-13.6 \ eV)/( 3 ^2) - (-13.6 \ eV)/(1^2)$

$\Delta E = (-13.6 \ eV)/( 9) - (-13.6 \ eV)/(1)$

$\Delta E = (8)/(9) 13.6 \ eV$

$\Delta E = 12.09 \ eV$

$\Delta E = 12.09 \ eV * (1.6 \ 10^-19 \ Joules)/(1 \ eV)$

$\Delta E = 1.93 \ 10^-18 \ Joules$

So we need a photon with this energy.

The energy of a photon its given by

$E = h \\u = h (c)/(\lambda)$

So, the wavelength will be

$\lambda = (h c)/(E)$

$\lambda = (6.62 \ 10^(-34) \ (m^2 kg)/(s) \ *  3.00 \ 10^8 \ (m)/(s))/(1.93 \ 10^-18 \ Joules)$

$\lambda = 10.29 \ 10^(-8) m$

$\lambda = 1.029 \ 10^(-7) m$

$\lambda = 102.9 \ nm$

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