Two metallic plate A and B , each of are...

Two metallic plate `A` and `B` , each of area `5 xx 10^(-4)m^(2)`, are placed parallel to each at a separation of `1 cm` plate `B` carries a positive charge of `33.7 xx 10^(-12) C` A monocharonatic beam of light , with photoes of energy `5 eV` each , starts falling on plate `A` at `t = 0` so that `10^(16)` photons fall on it per square meter per second. Assume that one photoelectron is emitted for every `10^(6)` incident photons fall on it per square meter per second. Also assume that all the emitted photoelectrons are collected by plate `B` and the work function of plate `A` remain constant at the value `2 eV` Determine
(a) the number of photoelectrons emitted up to `i = 10s,`
(b) the magnitude of the electron field between the plate `A` and `B` at `i = 10 s, and`
(c ) the kinetic energy of the most energotic photoelectrons emitted at `i = 10 s ` whenit reaches plate `B`
Negilect the time taken by the photoelectrons to reach plate `B` Take `epsilon_(0) = 8.85 xx 10^(-12)C^(2)N- m^(2)`

Text Solution

Verified by Experts

The correct Answer is:

(i) `5 xx 10^(2)` (ii) `2 xx 10^(3) N//C` (iii) `23 eV`

Area of plates `A=5xx10^(-4) m^(2)`
distance between the plates `d=1 cm=10^(-2) m`
(i) Number of photoelectrons emitted upto `t=10 s` are
(No. of photons falling)
`n=("in unit area in unit time")/10^(6) xx("area"xx"time")`
`=1/10^(6) [(10)^(16)xx(5xx10^(-4))xx(10)]=5.0xx10^(7)`
(ii) At time `t=10s` charge on plate A,
`q_(A)=+n e=(5.0xx10^(7))(1.6xx10^(-19))=8.0xx10^(-12) C`
and charge on plates B,
`q_(B)=(33.7xx10^(-12)-8.0xx10^(-12))=25.7xx10^(-12) C`
`:.` Electric field between the plates `E=((q_(B)-q_(A)))/(2A in_(0))`
`implies E=((25.7-8.0)xx10^(-12))/(2xx(5xx10^(-4))(8.85xx10^(-12)))=2xx10^(3) N/C`
(iii) Energy of photoelectrons at plates A
`=E-W=(5-2) eV=3eV`
Increase in energy of photoelectrons
=(eEd) joule =(Ed) eV
`=(2xx10^(3))(10^(-2))eV=20 eV`
Energy of photoelectrons at plates B
`=(20+3)eV=23 eV`

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