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प्रश्न
Light of two different frequencies whose photons have energies 1.3 eV and 2.8 eV respectively, successfully illuminate a metallic surface whose work function is 0.8 eV. The ratio of maximum speeds of emitted electrons will be ______.
विकल्प
1 : 3
1 : 2
1 : 5
1 : 4
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उत्तर
Light of two different frequencies whose photons have energies 1.3 eV and 2.8 eV respectively, successfully illuminate a metallic surface whose work function is 0.8 eV. The ratio of maximum speeds of emitted electrons will be 1 : 2.
Explanation:
The energy of the photon, `E_"photon" = KE + Φ`
where, KE = kinetic energy
and Φ = work function.
The energy of photon 1, `E_{"photon"_1}` = 1.3 eV
`E_{"photon"_1} = 1/2m"v"^2 + 0.8`
`1/2m"v"_1^2 = 1.3 - 0.8 ⇒ 1/2m"v"_1^2 = 0.5`
Energy of photon 2, `E_{"photon"_2} = 2.8` eV
∴ `1/2m"v"_2^2 = 2.8 - 0.8 = 2` eV
Now, ratio of maximum speed = `("v"_1^2)/("v"_2^2) = 0.5/2 = 1/4`
∴ `"v"_1/"v"_2 = 1/2`
