An `alpha`-particle and a proton are accelerated from rest through the same potential difference V. Find the ratio of de-Broglie wavelength associated with them.

An `alpha`-particle and a proton are accelerated from rest through the

1.	An `alpha`-particle and a proton are accelerated from rest through the same potential difference V. Find the ratio of de-Broglie wavelength associated with them.
Answer» Correct Answer - `1//(2sqrt2)` The kinetic energy gained by a charged particle of charge q, mass m, moving with velocity v, when acceleration through the potential difference V is K.E. `=1/2mv^(2)=qV or mv=[2mqV]^(1//2)` De-Broglie wavelength of the particle is `lambda=h/(mv)=h/([2mqV]^(1//2))` so `lambda prop 1/(sqrt(mq))` (for the same value of V) `:. (lambda_(alpha))/(lambda_(p))=sqrt((m_(p)q_(p))/(m_(alpha)q_(alpha)))=sqrt((m_(p)xxe)/(4m_(p)xx2e)) =1/(sqrt(8)) =1/(2sqrt(2))`

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An `alpha`-particle and a proton are accelerated from rest through the same potential difference V. Find the ratio of de-Broglie wavelength associated with them.

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