Assertion (A): If accelerated electrons are passed through a narrow slit, a diffraction pattern is observed.
Reason (R): Electrons behave as both particles and waves.
Assertion (A): If accelerated electrons are passed through a narrow slit, a diffraction pattern is observed.
Reason (R): Electrons behave as both particles and waves.
Options
Correct option: (A) — Both statements are true and R is the correct explanation of A.
Why A is true: Accelerated electrons have a de Broglie wavelength comparable to atomic/slit dimensions, so they diffract — confirmed by the Davisson–Germer experiment and G.P. Thomson's electron diffraction.
Why R is the correct explanation: Diffraction is a purely wave phenomenon. Electrons can diffract only because they possess a wave nature alongside their particle nature — exactly what R states.
Marking Scheme
- 11 mark: correct option (A).
- 2Both statements true and causal link recognised.
Hint
Diffraction is a wave effect; recall Davisson–Germer confirming for electrons.
Quick Oral Answer
Both true and R explains A: electrons have a de Broglie wavelength lambda equals h over p, so they diffract at a narrow slit; diffraction is a wave phenomenon, which is exactly the wave nature R refers to.
Analysis & Explanation
Concept:
de Broglie proposed that every moving particle has an associated wavelength . For electrons this wavelength is small but not negligible.
Assertion analysis:
- Electrons accelerated through a potential V gain momentum ; their λ works out to ~ a few tenths of a nanometre.
- Passing them through a slit or crystal comparable to λ produces a diffraction pattern.
Reason analysis:
- Wave–particle duality means electrons show particle behaviour (charge, mass, discrete detection) and wave behaviour (diffraction, interference).
- Since diffraction is inherently a wave effect, the wave nature is precisely why the pattern forms — so R correctly explains A.
Exam trap:
Do not pick (B). Here the Reason is not just a true statement standing alone; it is the direct cause of the assertion.
Real-world:
Electron diffraction underpins the electron microscope and LEED (low-energy electron diffraction) used to study crystal surfaces.
Common Mistakes
- 1Selecting (B) — R is not merely correlated but is the actual cause of the diffraction, so it is the correct explanation.
- 2Thinking diffraction proves electrons are only waves; they still behave as particles too (duality).
- 3Assuming ordinary macroscopic objects would also visibly diffract — their λ is far too small.
Interesting Facts
The Davisson–Germer experiment (1927) accidentally revealed electron diffraction after a vacuum accident recrystallised their nickel target.
G.P. Thomson won the 1937 Nobel Prize for showing electrons diffract — his father J.J. Thomson had won it for showing the electron is a particle.
A 100 eV electron has a de Broglie wavelength near 0.12 nm, similar to X-rays, making electron diffraction ideal for probing crystals.
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Frequently Asked Questions
Why do electrons produce a diffraction pattern?
Accelerated electrons have a de Broglie wavelength comparable to slit or crystal spacings, so they diffract just like light waves, forming maxima and minima.
Why is R the correct explanation and not just a related fact?
Diffraction is a wave phenomenon; electrons can diffract only because of their wave nature, so the duality stated in R is the direct cause of the assertion.
Which experiment confirmed this?
The Davisson–Germer experiment (1927) and G.P. Thomson's work confirmed that electrons diffract, verifying de Broglie's matter-wave hypothesis.