The graph between the stopping potential (V_(0)) and wave number (1//lamda) is as shown in the figure. phi is the work function, then:

The graph between the stopping potential (V_(0)) and wave number (1//l

1.	The graph between the stopping potential (V_(0)) and wave number (1//lamda) is as shown in the figure. phi is the work function, then:
Answer» `phi_(1):phi_(2):phi_(3)=1:2:4` `phi_(1):phi_(2):phi_(3)=4:2:1` `tanthetaprophC//E` where `THETA` is the slope ultraviolet light can be used to eject photoelectron from metal 2 and metal 3 only Solution :`phi_(1): phi_(2): phi_(3)=(hc)/(lambda0_(1)):(hc)/(lambdao_(2)):(hc)/(lambdao_(3))` `:.(hc)/(LAMBDA)=phi+eV_(s)` `:. V_(S)=(hc)/(elambda)-(phi)/(c)` `:.` slope `"tan" theta=(hc)/(e)` `(1)/(lambda0_(1))=0.001 mm^(-1) rArr lambda0_(1)=1000Å` `(1)/(lambda0_(2))=0.002 nm^(-1) rArr lambda0_(2)=5000Å` `(1)/(lambda0_(3))=0.004 nm^(-1) rArr lambda0_(3)=2500 Å` Here ultraviolet light can be used to eject photoelectrons from all 1,2 and 3 metals.

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The graph between the stopping potential (V_(0)) and wave number (1//lamda) is as shown in the figure. phi is the work function, then:

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