Electromagnetic radiation of wavelength 663 nm is just sufficient to ionize the atom of metal A. The ionization energy of metal A in kJ mol $^{- 1}$ is.
(Rounded off to the nearest integer)
$[h = 6.63 \times 10^{- 34} Js, c = 3.00 \times 10^{8} {ms}^{- 1}, N_{A} = 6.02 \times 10^{23} {mol}^{- 1}]$

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Solution

Energy required to ionize an atom of metal $^{'} A^{'} = \frac{h c}{λ} = \frac{h c}{663 nm}$
For $1$ mole atoms of 'A'
Total energy required $= N_{A} \times \frac{h c}{λ}$
$= \frac{6.02 \times 10^{23} \times 6.63 \times 10^{- 34} \times 3 \times 10^{8}}{663 \times 10^{- 9}}$
$= 6.02 \times 3 \times 10^{23 - 34 + 8 + 7}$
$= 18.06 \times 10^{4} J/mol$
$= 180.4 kJ/mol$
Nearest Integer value $= 180 kJ/mol.$

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Electromagnetic radiation of wavelength 663 nm is just sufficient to ionize the atom of metal A. The ionization energy of metal A in kJ mol−1 is. (Rounded off to the nearest integer) [h=6.63×10−34 Js, c=3.00×108 ms−1, NA=6.02×1023 mol−1]

Energy required to ionize an atom of metal ′A′=hcλ=hc663 nm For 1 mole atoms of 'A' Total energy required =NA×hcλ =6.02×1023×6.63×10−34×3×108663×10−9 =6.02×3×1023−34+8+7 =18.06×104 J/mol =180.4 kJ/mol Nearest Integer value=180 kJ/mol.

Electromagnetic radiation of wavelength 663 nm is just sufficient to ionize the atom of metal A. The ionization energy of metal A in kJ mol $^{- 1}$ is.
(Rounded off to the nearest integer)
$[h = 6.63 \times 10^{- 34} Js, c = 3.00 \times 10^{8} {ms}^{- 1}, N_{A} = 6.02 \times 10^{23} {mol}^{- 1}]$