The de-Broglie wavelength associated with an electron having kinetic energy E is given by the expression
(1)
(2)
(3) 2mhE
(4)
Dual nature of radiation is shown by:
(1) Diffraction and reflection
(2) Refraction and diffraction
(3) Photoelectric effect alone
(4) Photoelectric effect and diffraction
An electron of mass m when accelerated through a potential difference V has de-Broglie wavelength . The de-Broglie wavelength associated with a proton of mass M accelerated through the same potential difference will be
(1)
(2)
(3)
(4)
What is the de-Broglie wavelength of the -particle accelerated through a potential difference V
(1) Å
(2) Å
(3) Å
(4) Å
How much energy should be added to an electron to reduce its de-Broglie wavelength from m to m?
1. Four times the initial energy.
2. Thrice the initial energy.
3. Equal to the initial energy.
4. Twice the initial energy.
The de-Broglie wavelength of an electron having 80eV of energy is nearly
(1eV = J, Mass of electron = Kg Plank’s constant = J-sec)
(a) 140 Å (b) 0.14 Å
(c) 14 Å (d) 1.4 Å
If the following particles are moving at the same velocity, then which among them will have the maximum de-Broglie wavelength?
1. Neutron
2. Proton
3. -particle
4. -particle
If an electron and a photon propagate in the form of waves having the same wavelength, it implies that they have the same
(1) Energy
(2) Momentum
(3) Velocity
(4) Angular momentum
The de-Broglie wavelength is proportional to
(1)
(2)
(3)
(4)
Particle nature and wave nature of electromagnetic waves and electrons can be shown by
(1) Electron has small mass, deflected by the metal sheet
(2) X-ray is diffracted, reflected by thick metal sheet
(3) Light is refracted and defracted
(4) Photoelectricity and electron microscopy