Electron of mass m and intial velocity vecV=v_(0)hati (V_(0)gt0) enter electric field vecE=-E_(0)hati(E_(0)) constantat t=0 initial de-Broglie wavelength of electron is lambda_(0) then at time t=t its de-Broglie wavelength will be…..

Electron of mass m and intial velocity vecV=v_(0)hati (V_(0)gt0) enter

1.	Electron of mass m and intial velocity vecV=v_(0)hati (V_(0)gt0) enter electric field vecE=-E_(0)hati(E_(0)) constantat t=0 initial de-Broglie wavelength of electron is lambda_(0) then at time t=t its de-Broglie wavelength will be…..
Answer» `lambda_(0)` `(lambda_(0))/((1+(eE_(0))/(mV_(0))t))` `lambda_(0)t` `(1+(eE_(0))/(mV_(0))t)` Solution :`vecv=v_(0)HATI,vecE=-E_(0)hati` `therefore veca=(vecF)/(m)=(qvecE)/(m)` `((-e)(-E_(0))hati)/(m)=(eE_(0))/(m)hati`….(1) From equation of motion with constant acceleration, v=u+at [From equation (1)] `therefore v=v_(0)+(eE_(0))/(m)t` Now,de-Broglie wavelength, `LAMBDA=(h)/(mv)=(h)/(m[v_(0)+(eE_(0))/(m)t])` `(h)/(mv_(0)[1+(eE_(0))/(mv_(0))t])` `=(lambda_(0))/(1+(eE_(0))/(mv_(0))t) [because (h)/(mv_(0))=lambda_(0)]`

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Electron of mass m and intial velocity vecV=v_(0)hati (V_(0)gt0) enter electric field vecE=-E_(0)hati(E_(0)) constantat t=0 initial de-Broglie wavelength of electron is lambda_(0) then at time t=t its de-Broglie wavelength will be…..

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