A photon and an electron have equal energy `E . lambda_("photon")//lambda_("electron")` is proportional to

The energy of a photon is equal to the kinetic energy of a proton. The energy of the photon is E. Let lambda_1 be the de-Broglie wavelength of the proton and lambda_2 be the wavelength of the photon. The ratio (lambda_1)/(lambda_2) is proportional to (a) E^0 (b) E^(1//2) (c ) E^(-1) (d) E^(-2)

A photon and an electron both have wavelength 1 Å . The ratio of energy of photon to that of electron is

For same energy , find the ratio of lambda _("photon" ) and lambda _("electron") (Here m is mass of electron)

Photon and electron are given same energy (10^(-20) J) . Wavelength associated with photon and electron are lambda_(ph) and lambda_(el) then correct statement will be

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

The wavelength lambda of a photon and the de-Broglie wavelength of an electron have the same value. Show that the energy of the photon is (2 lambda mc)/h times the kinetic energy of the electron, Where m,c and h have their usual meanings.

An electtron and a photon have same wavelength . If p is the moment of electron and E the energy of photons, the magnitude of p//E in S I unit is

The de-Broglie wavelength of an electron, an alpha -particle and a proton are lambda_(e), lambda_(alpha), lambda_(p) . Which is wrong from the following:

There are n students in a class. Ler P(E_lambda) be the probability that exactly lambda out of n pass the examination. If P(E_lambda) is directly proportional to lambda^2(0lelambdalen) . Proportional constant k is equal to

A photon and an electron have the same de Broglie wavelength. Which has greater total energy? Explain