When the frequency of light incident on a metallic plate is doubled, the maximum kinetic energy of emitted photoelectrons will be:

doubled

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halved

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increases but more than the double of previous kinetic energy

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unchanged

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Solution

The correct option is C increases but more than the double of previous kinetic energy
We know,
$K E_{1} = h ν_{1} - h ν_{0}$ and
$\Rightarrow h ν_{1} = K E_{1} + h ν_{0}$
Again,when the frequency is doubled
$K E_{2} = 2 h ν_{1} - h ν_{0}$
$\Rightarrow K E_{2} = 2 K E_{1} + 2 h ν_{0}$ - $h ν_{0}$
$\Rightarrow K E_{2} = 2 K E_{1} + h ν_{0}$
$K E_{2}$ is more than the twice the $K E_{1}$

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