Nuclear Equations Quiz
The question sheet
Reveal any answer as you study-
Changes of nuclei that result in changes in their atomic numbers, mass numbers, or energy states are called what?
- Combustion reactions
- Precipitation reactions
- Nuclear reactions
- Chemical reactions
Reveal answer
Answer: Nuclear reactions
Source evidence
PDF page 1117: Changes of nuclei that result in changes in their atomic numbers, mass numbers, or energy states are nuclear reactions. To describe a nuclear reaction, we use an equation that identifies the nuclides involved in the reaction, their mass numbers and atomic numbers, and the other particles involved in the reaction.
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Which are described as high-energy helium nuclei?
- Alpha particles
- Positrons
- Beta particles
- Gamma rays
Reveal answer
Answer: Alpha particles
Source evidence
PDF page 1117: β, also represented He, also represented by the symbol α are high-energy helium nuclei. Beta particles
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What are beta particles described as?
- Photons of high-energy radiation
- Positively charged electrons
- High-energy electrons
- High-energy helium nuclei
Reveal answer
Answer: High-energy electrons
Source evidence
PDF page 1117: by the symbol e are high-energy electrons, and gamma rays are photons of very high-energy electromagnetic
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Gamma rays are described as what?
- Anti-electrons
- Photons of very high-energy radiation
- High-energy electrons
- High-energy helium nuclei
Reveal answer
Answer: Photons of very high-energy radiation
Source evidence
PDF page 1117: by the symbol e are high-energy electrons, and gamma rays are photons of very high-energy electromagnetic
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Positrons are best described as what?
- Neutral particles
- High-energy photons
- High-energy helium nuclei
- Positively charged electrons
Reveal answer
Answer: Positively charged electrons
Source evidence
PDF page 1117: radiation. Positrons e, also represented by the symbol β are positively charged electrons (“anti-electrons”).
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An alpha particle has what mass number and charge?
- Mass 1, charge +1
- Mass 4, charge +2
- Mass 4, charge -2
- Mass 2, charge +4
Reveal answer
Answer: Mass 4, charge +2
Source evidence
PDF page 1117: The subscripts and superscripts are necessary for balancing nuclear equations, but are usually optional in other circumstances. For example, an alpha particle is a helium nucleus (He) with a charge of +2 and a mass number of 4, 4 so it is symbolized He. This works because, in general, the ion charge is not important in the balancing of nuclear 2 equations.
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According to the text, what is the most common example of antimatter?
- Positron
- Proton
- Alpha particle
- Neutron
Reveal answer
Answer: Positron
Source evidence
PDF page 1118: Note that positrons are exactly like electrons, except they have the opposite charge. They are the most common example of antimatter, particles with the same mass but the opposite state of another property (for example, charge) than ordinary matter. When antimatter encounters ordinary matter, both are annihilated and their mass is converted into energy in the form of gamma rays (γ)—and other much smaller subnuclear particles, which are beyond the
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When antimatter encounters ordinary matter, their mass is converted into energy in the form of what?
- Gamma rays
- Beta particles
- Alpha particles
- Neutrons
Reveal answer
Answer: Gamma rays
Source evidence
PDF page 1118: Note that positrons are exactly like electrons, except they have the opposite charge. They are the most common example of antimatter, particles with the same mass but the opposite state of another property (for example, charge) than ordinary matter. When antimatter encounters ordinary matter, both are annihilated and their mass is converted into energy in the form of gamma rays (γ)—and other much smaller subnuclear particles, which are beyond the
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When a positron and an electron collide, what is created?
- Two neutrons
- A proton
- An alpha particle
- Two gamma ray photons
Reveal answer
Answer: Two gamma ray photons
Source evidence
PDF page 1118: scope of this chapter—according to the mass-energy equivalence equation E = mc , seen in the preceding section. For example, when a positron and an electron collide, both are annihilated and two gamma ray photons are created: 0 0 e + e ⟶ γ + γ −1 +1 As seen in the chapter discussing light and electromagnetic radiation, gamma rays compose short wavelength, highenergy electromagnetic radiation and are (much) more energetic than better-known X-rays that can behave as particles in the wave-particle duality sense. Gamma rays are produced when a nucleus undergoes a transition from a higher to a lower energy state, similar to how a photon is produced by an electronic transition from a higher to a lower energy level. Due to the much larger energy differences between nuclear energy shells, gamma rays emanating from a nucleus have energies that are typically millions of times larger than electromagnetic radiation emanating from electronic transitions.
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Compared to radiation from electronic transitions, gamma rays from a nucleus have energies that are typically:
- Millions of times larger
- The same
- Half as large
- Slightly smaller
Reveal answer
Answer: Millions of times larger
Source evidence
PDF page 1118: scope of this chapter—according to the mass-energy equivalence equation E = mc , seen in the preceding section. For example, when a positron and an electron collide, both are annihilated and two gamma ray photons are created: 0 0 e + e ⟶ γ + γ −1 +1 As seen in the chapter discussing light and electromagnetic radiation, gamma rays compose short wavelength, highenergy electromagnetic radiation and are (much) more energetic than better-known X-rays that can behave as particles in the wave-particle duality sense. Gamma rays are produced when a nucleus undergoes a transition from a higher to a lower energy state, similar to how a photon is produced by an electronic transition from a higher to a lower energy level. Due to the much larger energy differences between nuclear energy shells, gamma rays emanating from a nucleus have energies that are typically millions of times larger than electromagnetic radiation emanating from electronic transitions.
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A balanced nuclear reaction equation indicates a rearrangement of what?
- Molecules
- Subatomic particles
- Whole atoms
- Chemical bonds
Reveal answer
Answer: Subatomic particles
Source evidence
PDF page 1118: A balanced chemical reaction equation reflects the fact that during a chemical reaction, bonds break and form, and atoms are rearranged, but the total numbers of atoms of each element are conserved and do not change. A balanced nuclear reaction equation indicates that there is a rearrangement during a nuclear reaction, but of subatomic particles rather than atoms. Nuclear reactions also follow conservation laws, and they are balanced in two ways:
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When an alpha particle reacts with magnesium-25 producing a proton, what new nuclide forms?
- Al-28
- Na-24
- Mg-29
- Si-28
Reveal answer
Answer: Al-28
Source evidence
PDF page 1119: 25 + 4 = A + 1, or A = 28
PDF page 1119: 12 + 2 = Z + 1, and Z = 13
PDF page 1119: 28 Check the periodic table: The element with nuclear charge = +13 is aluminum. Thus, the product is Al. 13
Chemistry: Atoms First
Chemistry: Atoms First by OpenStax, used under CC BY 4.0. Changes made by Stratacademy.
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