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Q.Define the term - Distance of closest approach. How will it be affected, for an α\alpha-particle, if kinetic energy of the particle is doubled?

CBSECBSE Class XII Board 2022Subjective· 3mImportance★★★★★
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Distance of closest approach is the minimum separation between an α-particle and a nucleus when all kinetic energy converts to electrostatic potential energy. Doubling the kinetic energy halves the distance of closest approach.

What is Distance of Closest Approach?

When an α-particle (a helium nucleus carrying charge +2e+2e) is fired directly at a heavy nucleus (charge +Ze+Ze), electrostatic repulsion slows it down. The distance of closest approach r0r_0 is the point where the α-particle momentarily stops before reversing direction — all its initial kinetic energy has been converted into electrostatic potential energy.

This concept emerged from Rutherford's scattering experiments and reveals the scale of the atomic nucleus. The idea is simple: energy conservation tells us exactly where the particle runs out of steam.

The Physics Behind It

At the distance of closest approach, we apply conservation of energy. Initially, the α-particle has kinetic energy KK and is far from the nucleus (zero potential energy). At closest approach, it has zero kinetic energy and maximum potential energy.

  1. Initial state (far away):

    • Kinetic energy = KK
    • Potential energy = 00
    • Total energy = KK
  2. At closest approach (distance r0r_0):

    • Kinetic energy = 00
    • Potential energy = U=14πϵ0⋅(2e)(Ze)r0U = \frac{1}{4\pi\epsilon_0} \cdot \frac{(2e)(Ze)}{r_0}
    • Total energy = UU
  3. Energy conservation gives us:

K=14πϵ0⋅2Ze2r0K = \frac{1}{4\pi\epsilon_0} \cdot \frac{2Ze^2}{r_0}

  1. Solving for r0r_0:

r0=14πϵ0⋅2Ze2Kr_0 = \frac{1}{4\pi\epsilon_0} \cdot \frac{2Ze^2}{K}

r0=2Ze24πϵ0K=Ze22πϵ0Kr_0 = \frac{2Ze^2}{4\pi\epsilon_0 K} = \frac{Ze^2}{2\pi\epsilon_0 K}

The key observation: r0∝1Kr_0 \propto \frac{1}{K}. The distance of closest approach is inversely proportional to the kinetic energy.

Effect of Doubling Kinetic Energy

If we double the kinetic energy from KK to 2K2K: …

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