On metal surface radiation of 2000Å and 5000 Å is incident sequentially .Change in kinetic energy of photo-electric emitted during this will be…….h=6.6xx10^(-34)Js .

On metal surface radiation of 2000Å and 5000 Å is incident sequentia

1.	On metal surface radiation of 2000Å and 5000 Å is incident sequentially .Change in kinetic energy of photo-electric emitted during this will be…….h=6.6xx10^(-34)Js .
Answer» 3.71 eV 5.94 eV 7.42 eV 2.97 eV Solution :`(1)/(2)mv_(max)^(2)=hv-phi_(0)` `K_(max)=(hc)/(lambda)-phi_(0)` `[because (1)/(2)mv_(max)^(2)=K_(max)` and `v=(c )/(lambda)]` In first case `(K_(max))_(1)=(hc)/(lambda_(1))-phi_(0)` In SECOND case `(K_(max))_(2)=(hc)/(lambda_(2))-phi_(0)` `THEREFORE DeltaK=(K_(max))_(1)-(K_(max))_(2)` `therefore DeltaK=hc[(lambda_(2)-lambda_(1))/(lambda_(1)lambda_(2))]` `=6.6xx10^(-34)xx3xx10^(8)` `[(5xx10^(-7)-2xx10^(-7))/(5xx10^(-7)xx2xx10^(-7))]` `=6.6xx3xx10^(-26)xx(3xx10^(-7))/(10xx10^(-14))` `=59.4xx10^(-20)J` `=(5.94xx10^(-19))/(1.6xx10^(-19))eV` 3.7125 eV `~~3.71` eV

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On metal surface radiation of 2000Å and 5000 Å is incident sequentially .Change in kinetic energy of photo-electric emitted during this will be…….h=6.6xx10^(-34)Js .

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