Dual Nature of Radiation of Matter Cbse Class 12 Notes

Dual Nature of Radiation and Matter – Class 12 Physics Notes (CBSE)

Dual Nature of Radiation and Matter | Advanced Physics Academy
CBSE Class 12 • Physics • Chapter: Dual Nature of Radiation and Matter
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Full Exam Notes on Dual Nature of Radiation and Matter

Complete, colourful, and board-ready notes covering photoelectric effect, photons, Einstein’s equation, Hertz and Lenard observations, experimental graphs, and de Broglie matter waves.

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Formula Sheet Included
All Key Graphs
Labelled Diagrams

1. Chapter Overview

The chapter explains that light and matter show dual nature: radiation behaves like a wave in some experiments and like a particle in others, while moving particles also show wave nature.

  • Wave nature of light is confirmed by interference, diffraction, and polarisation.
  • Particle nature of light is confirmed by photoelectric effect and Compton effect.
  • Wave nature of particles is confirmed by electron diffraction.
  • de Broglie proposed that every moving material particle has an associated wave.

2. Photoelectric Effect

Photoelectric effect is the emission of electrons from a metal surface when light of suitable frequency falls on it.

Emitted electrons are called photoelectrons.

K.E. of emitted electrons depends on frequency, not on intensity.
  • Threshold frequency: minimum frequency needed to eject electrons.
  • Threshold wavelength: maximum wavelength that can produce emission.
  • Stopping potential: minimum reverse potential needed to stop photoelectrons.

3. Hertz and Lenard

  • Hertz observed that ultraviolet light helps spark discharge across a gap.
  • Lenard studied photoelectric emission in detail and found that electron emission is almost instantaneous.
  • He also observed that intensity affects number of emitted electrons, while frequency controls energy.
Important conclusion: Classical wave theory could not explain threshold frequency and instantaneous emission.

4. Experimental Setup

Light Cathode Metal plate Anode Collector Variable battery and ammeter measure photo current Observations • Current changes with intensity • Energy changes with frequency • No emission below threshold

This setup uses a light source, evacuated tube, photosensitive cathode, anode, variable potential difference, and ammeter to study photoelectric current.

5. Einstein’s Photoelectric Equation

Einstein explained photoelectric effect using photons. A photon of frequency f has energy proportional to frequency.

E = hf
hf = work function + Kmax
Kmax = hf – work function = h(f – f0)
eVs = Kmax

Here work function is the minimum energy needed to eject an electron, f0 is threshold frequency, and Vs is stopping potential.

6. Important Graphs

A. Photo current vs intensity

Intensity Photo current Linear relation

Photo current is directly proportional to intensity for frequency above threshold.

6. Important Graphs

B. Kmax vs frequency

f0 Slope = h Frequency Kmax

The intercept on frequency axis gives threshold frequency; slope gives Planck’s constant h.

6. Important Graphs

C. Stopping potential vs frequency

Frequency Stopping potential f0

Stopping potential increases linearly with frequency and becomes zero at threshold frequency.

6. Important Graphs

D. Photo current vs voltage

0 Voltage Photo current Saturation current

Current rises with accelerating voltage and reaches saturation when all emitted electrons are collected.

7. Photon Concept

A photon is a packet of energy of electromagnetic radiation. It has no rest mass and travels with speed of light in vacuum.

Energy of photon = hf
Momentum of photon = h/λ
For a photon: E = pc
So, p = h/λ

8. Wave Nature of Particles

de Broglie proposed that every moving particle has an associated wave. The wavelength is called de Broglie wavelength.

λ = h/p
If p = mv, then λ = h/mv

The wavelength is smaller for heavier and faster particles, so wave nature is significant for microscopic particles like electrons.

9. Matter Wave Diagram

Moving particle Associated wave

This diagram represents the wave associated with a moving particle.

10. Key Differences

Wave TheoryPhoton Theory
Energy spread continuously over wavefrontEnergy concentrated in quanta
Intensity should change energy of electronsIntensity changes number of photons
No threshold frequency expectedThreshold frequency explained naturally

11. Exam Formula Sheet

  • Photon energy: E = hf
  • Work function: φ = hf0
  • Photoelectric equation: hf = φ + Kmax
  • Maximum kinetic energy: Kmax = ½mvmax2
  • Stopping potential relation: eVs = Kmax
  • de Broglie wavelength: λ = h/p = h/mv

Use these relations directly in numericals, graph-based questions, and derivations.

12. Quick Revision

  • If intensity increases, photo current increases.
  • If frequency increases above threshold, electron energy increases.
  • Below threshold frequency, no photoelectric emission occurs.
  • Electron wave nature becomes important at microscopic scale.

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