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Question

When radiation of wavelength λ is incident on a metallic surface the stopping potential is 4.8 volts. If the same surface is irradiated with radiation of double the wavelength, then the stopping potential becomes 1.6 volts. Then the threshold wavelength for the surface is

A
2λ
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B
4λ
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C
6λ
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D
8λ
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Solution

The correct option is B 4λ
By using V0=hce[1λ1λ0]4.8=hce[1λ1λ0] (i) and 1.6=hce[12λ1λ0] (ii)
From equation (i) and (ii) λ0=4λ.

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