u200b The nucleus \(_{10}^{23}Ne\) decays by β emission. Write down the β -decay equation and determine the maximum kinetic u200b

Question 1

The nucleus ({10}^{23}Ne) decays by β emission. Write down the
β -decay equation and determine the maximum kinetic energy of the electrons emitted. Given that: ({10}^{23}Ne= 22.994466u)

Question 2

The β decay of (_{10}^{23}Ne) may be represented as

The energy released is shared by Na nucleus and the electron-neutrino pair released. As electron-neutrino pair is much lighter the 23Na nucleus, practically Whole of the energy released is carried by electron-neutron will carry the maximum energy. Therefore, maximum kinetic energy of the emitted electron is 4.374 MeV.

kratos · Answer 1 · 2020-06-07T04:49:19+0000

The β decay of (_{10}^{23}Ne) may be represented as

The energy released is shared by Na nucleus and the electron-neutrino pair released. As electron-neutrino pair is much lighter the 23Na nucleus, practically Whole of the energy released is carried by electron-neutron will carry the maximum energy. Therefore, maximum kinetic energy of the emitted electron is 4.374 MeV.

u200b The nucleus \(_{10}^{23}Ne\) decays by β emission. Write down the β -decay equation and determine the maximum kinetic u200b

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u200b The nucleus \(_{10}^{23}Ne\) decays by β emission. Write down the β -decay equation and determine the maximum kinetic u200b

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