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  2. Electron capture - Wikipedia

    en.wikipedia.org/wiki/Electron_capture

    Electron capture happens most often in the heavier neutron-deficient elements where the mass change is smallest and positron emission is not always possible. When the loss of mass in a nuclear reaction is greater than zero but less than 2 m e c 2 the process cannot occur by positron emission, but occurs spontaneously for electron capture.

  3. Positron emission - Wikipedia

    en.wikipedia.org/wiki/Positron_emission

    Nuclei which decay by positron emission may also decay by electron capture. For low-energy decays, electron capture is energetically favored by 2m e c 2 = 1.022 MeV, since the final state has an electron removed rather than a positron added. As the energy of the decay goes up, so does the branching fraction of positron emission.

  4. Beta decay - Wikipedia

    en.wikipedia.org/wiki/Beta_decay

    decay (positron emission) of a nucleus is allowed energetically, so too is electron capture allowed. This is a process during which a nucleus captures one of its atomic electrons, resulting in the emission of a neutrino: A Z X + e − → A Z−1 X′ + ν e. An example of electron capture is one of the decay modes of krypton-81 into bromine-81 ...

  5. Atom - Wikipedia

    en.wikipedia.org/wiki/Atom

    The electron or positron emissions are called beta particles. Beta decay either increases or decreases the atomic number of the nucleus by one. Electron capture is more common than positron emission, because it requires less energy. In this type of decay, an electron is absorbed by the nucleus, rather than a positron emitted from the nucleus.

  6. Radioactive decay - Wikipedia

    en.wikipedia.org/wiki/Radioactive_decay

    An example is internal conversion, which results in an initial electron emission, and then often further characteristic X-rays and Auger electrons emissions, although the internal conversion process involves neither beta nor gamma decay. A neutrino is not emitted, and none of the electron(s) and photon(s) emitted originate in the nucleus, even ...

  7. Electron capture ionization - Wikipedia

    en.wikipedia.org/wiki/Electron_capture_ionization

    Resonance electron capture [3] is also known as nondissociative EC. The compound captures an electron to form a radical anion. [4] The energy of the electrons are about 0 eV. The electrons can be created in the Electron Ionization source with moderating gas such as H 2, CH 4, i-C 4 H 10, NH 3, N 2, and Ar. [5] After the ion captures the electron, the complex formed can stabilize during ...

  8. Electron emission - Wikipedia

    en.wikipedia.org/wiki/Electron_emission

    In physics, electron emission is the ejection of an electron from the surface of matter, [1] or, in beta decay (β− decay), where a beta particle (a fast energetic electron or positron) is emitted from an atomic nucleus transforming the original nuclide to an isobar.

  9. Internal conversion - Wikipedia

    en.wikipedia.org/wiki/Internal_conversion

    Electron capture also involves an inner shell electron, which in this case is retained in the nucleus (changing the atomic number) and leaving the atom (not nucleus) in an excited state. The atom missing an inner electron can relax by a cascade of X-ray emissions as higher energy electrons in the atom fall to fill the vacancy left in the ...