InterviewSolution
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InterviewSolution
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A neutron moving with a speed `v` makes a head-on collision with a hydrogen in ground state kept at rest which inelastic collision will be take place is (assume that mass of photon is nearly equal to the mass of neutron)A. `10.2 eV`B. `20.4 eV`C. `12.1 eV`D. `16.8 eV` |
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Answer» Correct Answer - B Let `v = ` speed of neutron before collision, `v_(1) = ` speed of neutron after collision, `v_(2) = ` speed of photon or hydrogen atom after collision, and `Delta E=` energy of excitation From conservartion of linear momentum, `mv = mv_(1) + mv_(2)` (i) From conservation of energy `(1)/(2) mv^(3) = (1)/(2) mv_(1)^(2) + (1)/(2) mv_(2)^(2) + Delta E` (ii) From eq. (i), `v^(2) = v_(1)^(2) + v_(2)^(2) + 2 v_(1) v_(2)` From eq. (ii), `v^(2) = v_(1)^(2) + v_(2)^(2) + (2 Delta E)/(m)` `:. 2 v_(1) v_(2) = (2 Delta E)/(m)` `:. (v_(1) - v_(2))^(2) = (v_(1) + v_(2))^(2) - 4v_(1) v_(2)` `implies (v_(1) - v_(2))^(2) = V^(2) - 4 (Delta E)/(m)` As `v_(1) - v_(2)` must be real, therefore `v^(2) - 4 (Delta E)/(m) ge 0` or `(1)/(2) mv^(2) ge 2 Delta E` The minimum energy that can be obsorbed by hydrogen atom in the ground state go to into excited is `10.2 eV`. Therefore, `(1)/(2) mv_(min)^(2) = 2 xx 10.2 eV` `= 20.4 e V` |
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