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(a)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(a)
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Explanation of Solution
Alpha particle is emitted.
The parent nuclide is
Since, there is change of
(b)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(b)
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Explanation of Solution
Beta particle is emitted.
The parent nuclide is
Since, there is no change in the mass number of the resultant nuclide; this indicates that the particle emitted is a beta particle.
(c)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(c)
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Explanation of Solution
Beta particle is emitted.
The parent nuclide is
Since, there is no change in the mass number of the resultant nuclide; this indicates that the particle emitted is a beta particle.
(d)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(d)
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Explanation of Solution
Alpha particle is emitted.
The parent nuclide is
Since, there is change of
(e)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(e)
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Explanation of Solution
Alpha particle is emitted.
The parent nuclide is
Since, there is change of
(f)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(f)
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Explanation of Solution
Alpha particle is emitted.
The parent nuclide is
Since, there is change of
(g)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(g)
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Explanation of Solution
Alpha particle is emitted.
The parent nuclide is
Since, there is change of
(h)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(h)
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Explanation of Solution
Beta particle is emitted.
The parent nuclide is
Since, there is no change in the mass number of the resultant nuclide. Thus, the particle emitted is a beta particle.
(i)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(i)
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Explanation of Solution
Beta particle is emitted.
The parent nuclide is
Since, there is no change in the mass number of the resultant nuclide. Thus, the particle emitted is a beta particle.
(j)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(j)
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Explanation of Solution
Alpha particle is emitted.
The parent nuclide is
Since, there is change of
(k)
Interpretation: Progressive decay series of Thorium-
Concept introduction: Nuclei of radioactive element decompose in various ways. There are two major categories. One involves a change in mass number of the decaying nucleus while others do not. Types of radioactive processes include
Beta particle production decay involves the production of beta particle
A helium nucleus
(k)
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Explanation of Solution
No particle is emitted.
The given species, that is
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Chapter 18 Solutions
EBK CHEMISTRY: AN ATOMS FIRST APPROACH
- Could you please solve the first problem in this way and present it similarly but color-coded or step by step so I can understand it better? Thank you!arrow_forwardCould you please solve the first problem in this way and present it similarly but color-coded or step by step so I can understand it better? Thank you!arrow_forwardCould you please solve the first problem in this way and present it similarly but (color-coded) and step by step so I can understand it better? Thank you! I want to see what they are doingarrow_forward
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- Calculate activation energy (Ea) from the following kinetic data: Temp (oC) Time (s) 23.0 180. 32.1 131 40.0 101 51.8 86.0 Group of answer choices 0.0269 kJ/mole 2610 kJ/mole 27.6 kJ/mole 0.215 kJ/mole 20.8 kJ/molearrow_forwardCalculate activation energy (Ea) from the following kinetic data: Temp (oC) Time (s) 23.0 180. 32.1 131 40.0 101 51.8 86.0 choices: 0.0269 kJ/mole 2610 kJ/mole 27.6 kJ/mole 0.215 kJ/mole 20.8 kJ/molearrow_forwardCalculate activation energy (Ea) from the following kinetic data: Temp (oC) Time (s) 23.0 180. 32.1 131 40.0 101 51.8 86.0arrow_forward
- ChemistryChemistryISBN:9781305957404Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCostePublisher:Cengage LearningChemistry: An Atoms First ApproachChemistryISBN:9781305079243Author:Steven S. Zumdahl, Susan A. ZumdahlPublisher:Cengage Learning
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