Question:

An $\alpha -$ particle moves in a circular path of radius $0.83\, cm$ in the presence of a magnetic field of $0.25\, Wb/m^2. $ The de Broglie wavelength associated with the particle will be (Take $h = 6.63 ? 10^{-34} J\, s$, $e =1.6 ?10^{-19}C$)

Updated On: May 4, 2024
  • $1\, ?$
  • $0.1 \, ?$
  • $10\, ?$
  • $0.01\, ?$
Hide Solution
collegedunia
Verified By Collegedunia

The Correct Option is D

Solution and Explanation

Radius of the circular path of a charged particle in a magnetic field is given by
$R= \frac {mv}{Bq} \,\,mv=RBq$
Here, $R=0.83\, cm=0.83 \times 10 ^{-2}m$
$B=0.25 \, Wb \, m^2$
$q=2e=2 \times 1.6 \times 10^{-19}C$
$\therefore mv=(0.83 \times 10^{-2})(0.25)(2 \times 1.6 \times 10^{-19})$
de Broglie wavelength,
$\lambda=\frac {h}{mv}= \frac {6.6 \times 10^{-34}}{0.83 \times 10^{-2}\times 0.25 \times 2 \times 1.6 \times 10^{-19}}$
$=0.01 \,?$
Was this answer helpful?
0
0

Concepts Used:

Dual Nature of Radiation and Matter

The dual nature of matter and the dual nature of radiation were throughgoing concepts of physics. At the beginning of the 20th century, scientists untangled one of the best-kept secrets of nature – the wave-particle duplexity or the dual nature of matter and radiation.

Electronic Emission

The least energy that is needed to emit an electron from the surface of a metal can be supplied to the loose electrons.

Photoelectric Effect

The photoelectric effect is a phenomenon that involves electrons getting away from the surface of materials.

Heisenberg’s Uncertainty Principle

Heisenberg’s Uncertainty Principle states that both the momentum and position of a particle cannot be determined simultaneously.