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This deck focuses on Fission Fusion And Nuclear Decay, giving you a quick way to review the definitions, rules, and examples that matter most for AP Physics 2.
Study Fission Fusion And Nuclear Decay in AP Physics 2 with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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What particle is emitted during alpha decay?
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An alpha particle, which consists of 2 protons and 2 neutrons. Equivalent to a helium nucleus (4He).
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This deck focuses on Fission Fusion And Nuclear Decay, giving you a quick way to review the definitions, rules, and examples that matter most for AP Physics 2.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: An alpha particle, which consists of 2 protons and 2 neutrons. Equivalent to a helium nucleus (4He).
Answer: E=mc2. Einstein's equation relating mass and energy equivalence.
Answer: Graphite or heavy water (D2O). Both effectively slow down fast neutrons to thermal energies.
Answer: A beta particle, which is an electron or positron. Occurs when neutron converts to proton or proton to neutron.
Answer: Plutonium-239 or Uranium-235. Both are fissile materials capable of sustaining chain reactions.
Answer: Nuclear fission is the splitting of a heavy nucleus into lighter nuclei. This releases energy due to the mass difference.
Answer: A material that slows down neutrons to sustain a chain reaction. Thermal neutrons have higher fission probability than fast neutrons.
Answer: Uranium-235. Fissile isotope that absorbs thermal neutrons effectively.
Answer: To absorb excess neutrons and regulate the fission reaction. Insertion/withdrawal controls reaction rate and reactor power.
Answer: To generate more fissile material than it consumes. Converts fertile material into fissile fuel through neutron capture.
Answer: The minimum amount of fissile material needed to sustain a chain reaction. Below this threshold, chain reaction cannot be sustained.
Answer: A device used to confine plasma for nuclear fusion using magnetic fields. Magnetic confinement system for controlled fusion research.
Answer: Helium and a neutron. 2H+3H→4He+n releases 17.6 MeV.
Answer: The minimum amount of fissile material needed to sustain a chain reaction. Below this threshold, chain reaction cannot be sustained.
Answer: E=mc2. Einstein's equation relating mass and energy equivalence.
Answer: Smoke detectors. Alpha particles ionize air to detect smoke particles.
Answer: The binding energy released when a nucleus splits. Mass defect converts to kinetic energy of fission fragments.
Answer: Radioisotopes are used in PET scans. Radioisotopes emit gamma rays detectable by imaging equipment.
Answer: Helium and a neutron. 2H+3H→4He+n releases 17.6 MeV.
Answer: Nuclear fusion. Hydrogen nuclei fuse to form helium in the Sun's core.
Answer: An isotope that is radioactive. Unstable nucleus that spontaneously undergoes radioactive decay.
Answer: Maintaining the necessary high temperature and pressure. Plasma confinement requires millions of degrees temperature.
Answer: Increases by 1 if it's beta-minus decay; decreases by 1 if it's beta-plus decay. Neutron converts to proton (β⁻) or proton to neutron (β⁺).
Answer: Uranium-235. Fissile isotope that absorbs thermal neutrons effectively.
Answer: A device used to confine plasma for nuclear fusion using magnetic fields. Magnetic confinement system for controlled fusion research.
Answer: Nuclear decay is the process by which an unstable atomic nucleus loses energy. This occurs through alpha, beta, or gamma emission.
Answer: Fusion produces less radioactive waste. Fusion products are generally stable or short-lived.
Answer: Hydrogen isotopes, typically deuterium and tritium. Light nuclei overcome strong nuclear force barriers when fused.
Answer: Helium. Formed when hydrogen nuclei undergo fusion reactions.
Answer: Carbon-14. Decays with 5,730-year half-life for age determination.
Answer: To prevent the release of radioactive materials. Concrete and steel barrier for radiation shielding.
Answer: Nuclear decay is the process by which an unstable atomic nucleus loses energy. This occurs through alpha, beta, or gamma emission.
Answer: Gamma rays, which are high-energy photons. No change in mass or atomic number, only energy release.
Answer: Alpha decay, beta decay, gamma decay. These differ in particles emitted and penetrating power.
Answer: A radioactive isotope of hydrogen. Contains one proton, two neutrons, and is unstable.
Answer: To remove heat from the reactor core. Prevents meltdown by transferring heat to steam generators.
Answer: An isotope that is radioactive. Unstable nucleus that spontaneously undergoes radioactive decay.
Answer: Sterilization of medical equipment. High-energy photons kill bacteria and viruses effectively.
Answer: Nuclear fusion is the process of combining light nuclei to form a heavier nucleus. This requires extremely high temperatures to overcome electrostatic repulsion.
Answer: Alpha decay, beta decay, gamma decay. These differ in particles emitted and penetrating power.
Answer: Electrostatic repulsion between nuclei. Coulomb barrier requires high kinetic energy to overcome.
Answer: Generation of long-lived radioactive waste. Waste remains dangerous for thousands of years.
Answer: Sievert (Sv). Measures biological effect of radiation on human tissue.
Answer: Hydrogen isotopes, typically deuterium and tritium. Light nuclei overcome strong nuclear force barriers when fused.
Answer: A series of nuclear fissions, each initiated by a neutron from the previous fission. Self-sustaining reaction requires critical mass to maintain.
Answer: Deuterium or tritium. Heavy hydrogen isotopes have lower Coulomb barriers.
Answer: Smoke detectors. Alpha particles ionize air to detect smoke particles.
Answer: The time required for half of the radioactive nuclei in a sample to decay. Exponential decay follows first-order kinetics.
Answer: Graphite or heavy water (D2O). Both effectively slow down fast neutrons to thermal energies.
Answer: Nuclear fission is the splitting of a heavy nucleus into lighter nuclei. This releases energy due to the mass difference.
Answer: Maintaining the necessary high temperature and pressure. Plasma confinement requires millions of degrees temperature.
Answer: Nuclear fusion is the process of combining light nuclei to form a heavier nucleus. This requires extremely high temperatures to overcome electrostatic repulsion.
Answer: Nuclear fusion. Hydrogen nuclei fuse to form helium in the Sun's core.
Answer: Radioisotopes are used in PET scans. Radioisotopes emit gamma rays detectable by imaging equipment.
Answer: To remove heat from the reactor core. Prevents meltdown by transferring heat to steam generators.
Answer: Containment of high-temperature plasma. Plasma instabilities can damage reactor components.
Answer: A beta particle, which is an electron or positron. Occurs when neutron converts to proton or proton to neutron.
Answer: To absorb excess neutrons and regulate the fission reaction. Insertion/withdrawal controls reaction rate and reactor power.