When light of wavelength 300 nm (nanometer) falls on a photoelectric emitter, photoelectrons are liberated. For another emitter, however light of 600 nm wavelength is sufficient for creating photoemission. What is the ratio of the work functions of the two emitters

1 : 2

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2 : 1

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4 : 1

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1 : 4

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Solution

The correct option is B 2 : 1
Work function $= \frac{h c}{λ_{0}}; w h e r e λ_{0}$ is threshold wavelength.
$∴ \frac{W_{0_{1}}}{W_{0_{2}}} = \frac{λ_{0_{2}}}{λ_{0_{1}}} = \frac{2}{1}$

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When light of wavelength 300 nm (nanometer) falls on a photoelectric emitter, photoelectrons are liberated. For another emitter, however light of 600 nm wavelength is sufficient for creating photoemission. What is the ratio of the work functions of the two emitters

The correct option is B 2 : 1Work function =hcλ0; where λ0 is threshold wavelength. ∴ W01W02=λ02λ01=21

The correct option is B 2 : 1
Work function $= \frac{h c}{λ_{0}}; w h e r e λ_{0}$ is threshold wavelength.
$∴ \frac{W_{0_{1}}}{W_{0_{2}}} = \frac{λ_{0_{2}}}{λ_{0_{1}}} = \frac{2}{1}$