The uranium isotope 235U can fission—break into two smaller-masscomponents and free neutrons—if it is struck by a free neutron. A typical reaction is                          1/0n + 235/92U → 141/56Ba + 92/36Kr + 3/1/0nAs you can see, the subscripts (the number of protons) and the superscripts (the number of nucleons) “balance” before and after the fission event; there is no change in the number of protons or neutrons. Significant energy is released in this reaction. If a fission event happens in a large chunk of 235U, the neutrons released may induce the fission of other 235U atoms, resulting in a chain reaction. This is how a nuclear reactor works. The number of neutrons required to create a stable nucleus increases with atomic number. When the heavy 235U nucleus fissions, the lighter reaction products are thus neutron rich and are likely unstable. Many of the short-lived radioactive nuclei used in medicine are produced in fission reactions in nuclear reactors. 235U is radioactive, with a long half-life of 704 million years. The decay products of a 235U fission reaction typically have half-lives of a few minutes. This means that the decay products of a fission reaction haveA. Much higher activity than the original uranium.B. Much lower activity than the original uranium.C. The same activity as the original uranium.

Modern Physics
3rd Edition
ISBN:9781111794378
Author:Raymond A. Serway, Clement J. Moses, Curt A. Moyer
Publisher:Raymond A. Serway, Clement J. Moses, Curt A. Moyer
Chapter14: Nuclear Physics Applications
Section: Chapter Questions
Problem 34P
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The uranium isotope 235U can fission—break into two smaller-mass
components and free neutrons—if it is struck by a free neutron. A typical reaction is
                          1/0n + 235/92U → 141/56Ba + 92/36Kr + 3/1/0n
As you can see, the subscripts (the number of protons) and the superscripts (the number of nucleons) “balance” before and after the fission event; there is no change in the number of protons or neutrons. Significant energy is released in this reaction. If a fission event happens in a large chunk of 235U, the neutrons released may induce the fission of other 235U atoms, resulting in a chain reaction. This is how a nuclear reactor works. The number of neutrons required to create a stable nucleus increases with atomic number. When the heavy 235U nucleus fissions, the lighter reaction products are thus neutron rich and are likely unstable. Many of the short-lived radioactive nuclei used in medicine are produced in fission reactions in nuclear reactors.

235U is radioactive, with a long half-life of 704 million years. The decay products of a 235U fission reaction typically have half-lives of a few minutes. This means that the decay products of a fission reaction have
A. Much higher activity than the original uranium.
B. Much lower activity than the original uranium.
C. The same activity as the original uranium.

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