Lesson 11.1.1
11.1.1 Nuclear binding energy and the atomic mass unit Quiz: Pearson Edexcel Physics, Unit 11
20 questions
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Lesson 11.1.1, Nuclear binding energy and the atomic mass unit: 20 multiple choice questions for the Pearson Edexcel Physics (9PH0), Unit 11: Nuclear Radiation, written with Revision Ninja.
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The 20 questions
-
What is the nuclear binding energy of a nucleus?
- The kinetic energy of the nucleus as it moves through space.
- The energy released when a nucleus emits an alpha particle.
- The energy needed to separate the nucleus completely into its individual nucleons.
- The energy stored in the electrons surrounding the nucleus.
-
What is the mass defect of a nucleus?
- The extra mass a nucleus gains when it absorbs a neutron from its surroundings.
- The total mass of the electrons that orbit the nucleus in its outer shells.
- The difference between the summed nucleon masses and the nuclear mass.
- The mass lost when a nucleus emits a gamma photon only, with no change in charge.
-
What is the value of one atomic mass unit (u) in kilograms?
- 1.66 x 10^-27 kg
- 1.66 x 10^-19 kg
- 6.02 x 10^-27 kg
- 1.00 x 10^-27 kg
-
What energy is equivalent to one atomic mass unit?
- about 1.6 MeV
- about 931 MeV
- about 13.6 MeV
- about 511 MeV
-
Which nucleus has the greatest binding energy per nucleon?
- Hydrogen-2
- Iron-56
- Uranium-238
- Lead-208
-
Which equation gives the energy released from a mass defect Δ m?
- E = Δ m / c^2
- E = Δ m c
- E = Δ m c^2 / 2
- E = Δ m c^2
-
A helium-4 nucleus has mass 4.0015 u. Protons have mass 1.00728 u and neutrons 1.00866 u. What is the mass defect?
- 0.0050 u
- 0.0152 u
- 0.0319 u
- 0.0304 u
-
Using the mass defect of 0.0304 u for helium-4, what is the total binding energy? Use 1 u = 931.5 MeV.
- about 4.03 MeV
- about 0.03 MeV
- about 7.07 MeV
- about 28.3 MeV
-
The binding energy of helium-4 is about 28.3 MeV for 4 nucleons. What is the binding energy per nucleon?
- about 4.0 MeV
- about 0.76 MeV
- about 28 MeV
- about 7.1 MeV
-
A nuclear reaction changes mass by 0.020 u. What energy is released? Use 1 u = 931.5 MeV.
- about 0.02 MeV
- about 18.6 MeV
- about 9.3 MeV
- about 931 MeV
-
What is the energy equivalent of a mass defect of 1.0 g? Use c = 3.0 x 10^8 m s^-1.
- 3.0 x 10^8 J
- 9.0 x 10^13 J
- 9.0 x 10^16 J
- 9.0 x 10^10 J
-
Convert 2.0 u to kilograms, using 1 u = 1.66 x 10^-27 kg.
- 6.64 x 10^-27 kg
- 1.66 x 10^-27 kg
- 3.32 x 10^-25 kg
- 3.32 x 10^-27 kg
-
Why does the formation of a nucleus release energy?
- Electrons are removed from the nucleus during formation.
- The nucleus has less mass than its separate nucleons, and the lost mass is released as binding energy.
- The nucleus must be heated to form, which releases energy as light.
- The nucleus has more mass than its separate nucleons, so energy is absorbed.
-
A nucleus has binding energy 2.22 MeV for 2 nucleons (deuterium). Which statement is correct?
- The binding energy is equal to the energy that must be supplied to separate the two nucleons.
- The binding energy is the energy released when the nucleus is destroyed.
- Binding energy is always negative for any nucleus.
- Deuterium has a higher binding energy per nucleon than iron.
-
Why does binding energy per nucleon increase as nuclei get heavier from hydrogen up to iron?
- The strong attraction between nucleons outweighs proton repulsion up to iron.
- Heavier nuclei have fewer protons, which removes electrostatic repulsion completely from the nucleus.
- Binding energy per nucleon is constant for all nuclei, regardless of their mass number.
- Heavier nuclei lose electrons, which increases their binding energy per nucleon sharply.
-
A nucleus with mass number 56 is formed from separate nucleons. Which statement is most accurate?
- Its mass is zero because all nucleons have been converted to energy.
- Its mass is greater than the sum of the separate nucleons.
- Its mass is less than the total mass of its separated nucleons, with the difference released as energy.
- Its mass equals the sum of the separate nucleons, because mass is conserved in every reaction.
-
Why is the mass of a nucleus slightly less than the sum of its individual protons and neutrons?
- Electrons are removed from the nucleus, so their mass is lost.
- Some mass has been converted to binding energy, which is released when the nucleus forms.
- Neutrons have a mass that varies with the number of protons.
- Protons and neutrons lose mass when they are inside a nucleus.
-
Why is the atomic mass unit a convenient unit for nuclear masses?
- u is always exactly equal to the mass of an electron, which is why it is used.
- u is used only for measuring the mass of the Earth and other large planets.
- Nuclear masses are tiny in kilograms, so u gives convenient numbers.
- u is the mass of one mole of a substance, measured in grams for chemistry.
-
For a nucleus of binding energy 100 MeV made from 25 nucleons, what is the binding energy per nucleon?
- 4.0 MeV
- 25 MeV
- 100 MeV
- 0.25 MeV
-
A nucleus contains 26 protons and 30 neutrons. What is its mass number?
- 26
- 30
- 4
- 56
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