A 100 W point source emits monochromatic light of wavelength `6000 A` Q. 1.5 mW of `4000A` light is directed at a photoelectric cell If 0.10 per cent of the incident photons produce photoelectrons, find current is the cell. [Given `h=6.6xx10^(-34)Js`,`c=3xx10^(8)ms^(-1)` and `e=1.6xx10^(-19)C`]A. `0.59muA`B. `1.16 muA`C. `0.48muA`D. `0.79muA`

A 100 W point source emits monochromatic light of wavelength `6000 A`

1.	A 100 W point source emits monochromatic light of wavelength `6000 A` Q. 1.5 mW of `4000A` light is directed at a photoelectric cell If 0.10 per cent of the incident photons produce photoelectrons, find current is the cell. [Given `h=6.6xx10^(-34)Js`,`c=3xx10^(8)ms^(-1)` and `e=1.6xx10^(-19)C`]A. `0.59muA`B. `1.16 muA`C. `0.48muA`D. `0.79muA`
Answer» Correct Answer - C Energy of photon `E=hv(hc)/(lamda)=(6.6xx10^(-34)xx3xx10^(8))/(4000xx10^(-10))` `approx5xx10^(-19)J` So, number of photons emitted per second by light source, `n_p=(P)/(E)=(1.5xx10^-3)/(5xx10^(-19))=3xx10^(15)` Now, as only 0.1% of the photons emit electrons, number of photoelectrons emitted per second, `n_e=(0.1)/(100)xx3xx10^(15)=3xx10^(12)` But current is the rate of flow of charge i.e., `(I)=(q)/(t)=(Ne)/(t)-n_exxe[as(N)/(t)=n_e]` So, `I=3xx10^(12)xx1.6xx10^(-19)=0.48muA`

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