The kinetic energy of an electron with de-Broglie wavelength of 0.3 nanometer is

0.168 eV

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16.8 eV

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1.68 eV

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2.5 eV

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Solution

The correct option is B
16.8 eV

$λ = \frac{h}{\sqrt{2 m E}} \Rightarrow E = \frac{h^{2}}{2 m λ^{2}}$
$= \frac{(6.6 \times 10^{- 34})^{2}}{2 \times 9.1 \times 10^{- 31} \times (0.3 \times 10^{- 9})^{2}} = 2.65 \times 10^{- 18} J = 16.8 e V$

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