NEET2020Physics-Modern Physics

NEET 2020 Physics de Broglie Wavelength MCQ Question

Type: MCQ-numerical-Medium-Class 12

An electron is accelerated from rest through a potential difference of V volt. If the de Broglie wavelength of the electron is 1.227 × 10⁻² nₘ, the potential difference is:

A

10³ V

B

10⁴ V

C

10 V

D

10² V

Correct Answer

Option B

Detailed Explanation

Using the de Broglie wavelength formula λ = h/√(2meV), solving for V gives V = 10⁴ V.

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