A proton and an electron are accelerated by the same potential difference, let `lambda_(e)` and `lambda_(p)` denote the de-Broglie wavelengths of the electron and the proton respectively

A proton and an alpha =particle are accelerated using the same potential difference.How are the de-Broglie wavelengths lambda_(p) and lambda_(a) related to each other?

When de-Broglie wavelength of electron in increased by 1% its momentum…

In a TV tube the electron are accelerated by a potential difference of 10 kV. Then, their deBroglie wavelength is nearly-

An electron with initial kinetic energy of 100 eV is acclerated through a potential difference of 50 V . Now the de-Brogile wavelength of electron becomes

If proton and electron have same de-Broglie wavelength then….

Find de-Broglie wavelength of electron with KE =9.6xx10^(-19)J .

An alpha - particle and a proton are accelerated from rest by a potential difference of 100 V After this their de Broglie wavelength are lambda_(alpha) and lambda_(p) respectively The ratio (lambda_(p))/ lambda_(alpha) , to the nearest integer is

If a proton and an electron are confined to the same region.then uncertainty in momentum ……..

An electron is accelerated through a potential difference of 10,000 V.Its de-Broglie wavelength is ,(nearly) (m_(e)=9xx10^(-31)kg)