Q.In decay, a (A) neutron converts into a proton emitting antineutrino. (B) neutron converts into a proton emitting neutrino. (C) proton converts into a neutron emitting antineutrino. (D) proton converts into a neutron emitting neutrino.
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Start your 14-day free trial to unlock the full solution →In decay, a neutron transforms into a proton while emitting an electron and an antineutrino to conserve lepton number; the answer is (A).
Why beta-minus decay happens
Beta decay is nature's way of correcting an imbalance in the neutron-to-proton ratio inside an unstable nucleus. When a nucleus has too many neutrons, one of them can undergo a weak-force transformation into a proton. This process must obey several conservation laws—charge, baryon number, and crucially, lepton number—which dictate exactly what particles emerge.
The fundamental process at the quark level is a down quark (inside the neutron) converting to an up quark (forming a proton), mediated by the emission of a boson that immediately decays into an electron and an antineutrino.
Step-by-step reasoning
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Identify the initial particle
In decay, the name itself tells us an electron ( particle, which is negatively charged) is emitted. Since the nucleus loses a neutron and gains a proton, the transformation must start with a neutron.
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Write the decay equation
A neutron () becomes a proton (), an electron (), and one more particle we need to identify.
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Apply charge conservation
- Neutron: charge
- Proton: charge
- Electron: charge
- The third particle must be neutral (charge ) so the total remains zero. This rules out nothing yet, but confirms we need a neutrino or antineutrino.
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Apply lepton number conservation
- Initial state (neutron): lepton number
- Electron has (it's a lepton) …
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