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प्रश्न
The threshold frequency for a certain metal for photoelectric effect is 1.7 x 1015 Hz. When a light of frequency 2.2 x 1015 Hz is incident on the metal surface, the kinetic energy of the emitted photoelectrons is 3.3 x.10-19 J. Calculate Planck's constant.
संख्यात्मक
उत्तर
Given: v0 = 1.7 x 1015 Hz, v = 2.2 x 1015 Hz K.E.max = 3.3 x l0-19 J,
`1/2mV_(max)^2 = h(v-v_0)`
`h = (1/2mV_(max)^2)/(v-v_0) = (K.E._(max))/(v-v_0)`
`=(3.3xx10^-19)/(2.2xx10^15-1.7xx10^15)`
`h = 6.6xx10-34 Js`
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The Photoelectric Effect
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