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प्रश्न
A photosensitive surface of work function 2.1 eV is irradiated by radiation of wavelength 150 nm. Calculate
- the threshold wavelength,
- energy (in eV) of an incident photon, and
- maximum kinetic energy of emitted photoelectron.
संख्यात्मक
उत्तर
i. Here, Φ0 = 2.1 eV
= 2.0 × 1.6 × 10−19 J
λ = 150 × 10−9 m
As, `phi_0 = (hc)/(lambda_0)`
or `lambda_0 = (hc)/(phi_0)`
= `((6.63 xx 10^-34) xx (3 xx 10^8))/(2.1 xx 1.6 xx 10^-19)`
= 6.187 × 10−7 m
= 6187.5 Å
ii. Max. kinetic energy of photoelectron is
`K_(max) = (hc)/lambda - phi_0`
= `((6.63 xx 10^-34) xx (3 xx 10^8))/((150 xx 10^-9) xx (1.6 xx 10^-19)) -2.0`
= 7.42 − 2.1
= 5.32 eV
iii. Stopping potential `V_0 = (K_(max))/e`
= `(5.32 eV)/e`
= 5.32 V
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