Threshold wavelength of a metal is `lamda_(0)`. The de Broglie wavelength of photoelectron when the metal is irradiated with the radiation of wavelength `lamda` is:A. `[(h lamdalamda_(0))/(2cm)]^((1)/(2))`B. `[(h(lamda-lamda_(0)))/(2cmlamdalamda_(0))]^(1//2)`C. `[(h(lamda_(0)-lamda))/(2cmlamdalamda_(0))]^(1//2)`D. `[(hlamdalamda_(0))/(2mc(lamda_(0)-lamda))]^(1//2)`

Threshold wavelength of a metal is `lamda_(0)`. The de Broglie wavelen

1.	Threshold wavelength of a metal is `lamda_(0)`. The de Broglie wavelength of photoelectron when the metal is irradiated with the radiation of wavelength `lamda` is:A. `[(h lamdalamda_(0))/(2cm)]^((1)/(2))`B. `[(h(lamda-lamda_(0)))/(2cmlamdalamda_(0))]^(1//2)`C. `[(h(lamda_(0)-lamda))/(2cmlamdalamda_(0))]^(1//2)`D. `[(hlamdalamda_(0))/(2mc(lamda_(0)-lamda))]^(1//2)`
Answer» Correct Answer - D Absorbed energy=Threshold energy+Kinetic energy of photoelectron `h(c)/(lamda)=(hc)/(lamda_(0))+E` `E=hc[(1)/(lamda)-(1)/(lamda_(0))]` . . . .(i) de Broglie wavelength can be calculated as `lamda=(h)/(sqrt(2Em))` .. . . (ii) From eqs. (i) and (ii) `lamda=[(hlamdalamda_(0))/(2mc(lamda_(0)-lamda))]^(1//2)`

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