An electron and proton have the same de-Broglie wavelength. Then the kinetic energy of the electron is
(1) Zero
(2) Infinity
(3) Equal to the kinetic energy of the proton
(4) Greater than the kinetic energy of the proton
For the moving ball of cricket, the correct statement about de-Broglie wavelength is:
1. It is not applicable for such big particle
2. \(\frac{h}{\sqrt{2mE}}\)
3. \(\sqrt{\frac{h}{2mE}}\)
4. \(\frac{h}{2mE}\)
The kinetic energy of an electron with de-Broglie wavelength of 0.3 nanometer is
(1) 0.168 eV
(2) 16.8 eV
(3) 1.68 eV
(4) 2.5 eV
The wavelength of de-Broglie wave is 2m, then its momentum is (h = J-s)
(a) kg-m/s (b) kg-m/s
(c) kg-m/s (d) kg-m/s
Davission and Germer experiment proved
1. Wave nature of light
2. Particle nature of light
3. Both 1 and 2
4. Neither 1 nor 2
If the kinetic energy of a free electron doubles, its de-Broglie wavelength changes by the factor
(1)
(2)
(3)
(4) 2
The energy that should be added to an electron to reduce its de Broglie wavelength from one nm to 0.5 nm is
(1) Four times the initial energy
(2) Equal to the initial energy
(3) Twice the initial energy
(4) Thrice the initial energy
The wavelength of the matter wave is independent of
(1) Mass
(2) Velocity
(3) Momentum
(4) Charge
The energy of a photon of wavelength is given by
1. h
2. ch
3. /hc
4. hc/
The rest mass of the photon is
(1) 0
(2)
(3) Between 0 and
(4) Equal to that of an electron