On an average, a neutron loses half of its energy per collision with a quasi-free proton. To reduce a 2 MeV neutron to a thermal neutron having energy 0.04 eV, the number of collisions required is nearly:

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Solution

The correct option is C 26
Initial energy $= E_{o} = 2 M e V = 2 \times 10^{6} e V$

After first collision, $E_{1} = \frac{E_{o}}{2}$

After second collision, $E_{2} = \frac{E_{1}}{2} = \frac{E_{o}}{2^{2}}$

After third collision, $E_{3} = \frac{E_{2}}{2} = \frac{E_{o}}{2^{3}}$

And so ....

After n collisions- $E_{n} = \frac{E_{o}}{2^{n}}$

And final energy $= 0.04 e V$

Hence, $E_{n} = 0.04$

$⟹ \frac{2 \times 10^{6}}{2^{n}} = 0.04$

$⟹ 2^{n} = \frac{2 \times 10^{6}}{0.04} = 5 \times 10^{7}$

$⟹ n = l o g_{2} (5 \times 10^{7}) = \frac{l o g_{10} (5 \times 10^{7})}{{log}_{10} 2}$

$⟹ n = \frac{7 + 0.699}{0.301}$

$⟹ n = 26$

Answer-(C)

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