23. Nuclear physics
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23.1 Mass defect and nuclear binding energy
23.1.1The equivalence between energy and mass as represented by E = mc 2 and
• understand the equivalence between energy and mass as represented by E = mc 2 and recall and use this equation
23.1.2Simple nuclear reactions by nuclear equations of the form NH eO H7 14 2 4 8
• represent simple nuclear reactions by nuclear equations of the form NH eO H7 14 2 4 8 17 1 1"++
23.1.3The terms mass defect and binding energy
• define and use the terms mass defect and binding energy
23.1.4The variation of binding energy per nucleon with nucleon number
• sketch the variation of binding energy per nucleon with nucleon number
23.1.5What is meant by nuclear fusion and nuclear fission
• explain what is meant by nuclear fusion and nuclear fission
23.1.6The relevance of binding energy per nucleon to nuclear reactions
• explain the relevance of binding energy per nucleon to nuclear reactions, including nuclear fusion and nuclear fission
23.1.7The energy released in nuclear reactions using E = c 2∆m
• calculate the energy released in nuclear reactions using E = c 2∆m
23.2 Radioactive decay
23.2.1Fluctuations in count rate provide evidence for the random nature of
• understand that fluctuations in count rate provide evidence for the random nature of radioactive decay
23.2.2Radioactive decay is both spontaneous and random
• understand that radioactive decay is both spontaneous and random
23.2.3Activity and decay constant, and recall and use A = λN
• define activity and decay constant, and recall and use A = λN
23.2.4Half-life
• define half-life
23.2.5Λ = 0.693 / t 1/2
• use λ = 0.693 / t 1/2
23.2.6The exponential nature of radioactive decay, and sketch and use the
• understand the exponential nature of radioactive decay, and sketch and use the relationship x = x 0e–λt, where x could represent activity, number of undecayed nuclei or received count rate