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III Long answer questions · Q8

Q.Discuss the beta decay process with examples.

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Step 1. Beta-minus decay. An electron (e−e^-) is emitted; the atomic number increases by 1 while the mass number stays the same: ZAX→Z+1AY+e−+νˉ^{A}_{Z}X\to{}^{A}_{Z+1}Y+e^-+\bar\nu. At the nucleon level, one neutron converts to a proton, emitting an electron and an antineutrino: n→p+e−+νˉn\to p+e^-+\bar\nu. Example: carbon-14 decays to nitrogen-14, 614C→714N+e−+νˉ^{14}_{6}C\to{}^{14}_{7}N+e^-+\bar\nu.

Step 2. Beta-plus decay. A positron (e+e^+) is emitted; the atomic number decreases by 1 while the mass number stays the same: ZAX→Z−1AY+e++ν^{A}_{Z}X\to{}^{A}_{Z-1}Y+e^++\nu. Here a proton converts to a neutron, emitting a positron and a neutrino: p→n+e++νp\to n+e^++\nu. Example: sodium-22 decays to neon-22, 1122Na→1022Ne+e++ν^{22}_{11}Na\to{}^{22}_{10}Ne+e^++\nu.

Step 3. Origin of the emitted particle. In both cases, the electron/positron and the (anti)neutrino did not exist inside the nucleus beforehand - they are created at the instant of the neutron-to-proton or proton-to-neutron conversion. A single free proton outside a nucleus cannot undergo β+\beta^+ decay (energy conservation forbids it, since a free neutron is heavier than a free proton), but a single free neutron can and does undergo β−\beta^- decay, with a half-life of about 13 minutes. …

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