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AITS & Test SerieshardNUMERICAL

Question

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Answer: 14

💡 Solution & Explanation

K.E.max = 5 eV Energy of incident photon = 7 eV xe (no. of e– emitted per sec) = 5 i s 10 e e    no. of photon incident per sec = 5 e 5 5 n 10 2 e

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