Work function of caesium is $2.14 e V$ . What is the wavelength of incident light if photocurrent is brought to zero by a stopping potential of $0.6 V$ ?

454 n m

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113 n m

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906 n m

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226 n m

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Solution

The correct option is A $454 n m$
Einstein's equation : $E = ϕ + K . E_{m a x}$
Given, work function $ϕ = 2.14 e V$
and we know $E = \frac{h c}{λ}$
$∴ \frac{h c}{λ} = 2.14 + K . E_{m a x}$

For stopping potential $V_{0}$ , $K . E_{m a x} = e V_{0} = 0.6 e V$
$\Rightarrow \frac{h c}{λ} = 2.14 e V + 0.6 e V = 2.74 e V$
$\Rightarrow \frac{12431}{λ} = 2.74 e V$
$\Rightarrow λ = \frac{12431}{2.74} = 4536.86 \circ A$
$= 453.68 n m \approx 454 n m$

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