Heterolysis (chemistry)
chemical reaction in which both of the electrons involved in the original bond remain with only one of the fragment species

In chemistry, heterolysis or heterolytic fission (from Greek ἕτερος (heteros) 'different' and λύσις (lusis) 'loosening') is the process of cleaving/breaking a covalent bond where one previously bonded species takes both original bonding electrons from the other species. During heterolytic bond cleavage of a neutral molecule, a cation and an anion will be generated. Most commonly the more electronegative atom keeps the pair of electrons becoming anionic while the more electropositive atom becomes cationic.
Heterolytic fission almost always happens to single bonds; the process usually produces two fragment species.
The energy required to break the bond is called the heterolytic bond dissociation energy, which is similar (but not equivalent) to homolytic bond dissociation energy commonly used to represent the energy value of a bond.
One example of the differences in the energies is the energy required to break a H−H bond
History
The discovery and categorization of heterolytic bond fission was clearly dependent on the discovery and categorization of the chemical bond.
In 1916, chemist Gilbert N. Lewis developed the concept of the electron-pair bond, in which two atoms share one to six electrons, thus forming the single electron bond, a single bond, a double bond, or a triple bond. This became the model for a covalent bond.
In 1932 Linus Pauling first proposed the concept of electronegativity, which also introduced the idea that electrons in a covalent bond may not be shared evenly between the bonded atoms.
However, the ions had been studied before bonds mainly by Svante Arrhenius in his 1884 dissertation.
“Heterolysis (chemistry)” enters the record as chemical reaction in which both of the electrons involved in the original bond remain with only one of the fragment species. Crown Archives preserves that source wording while asking what Heterolysis, chemistry and chemical can confirm, complicate or overturn.
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Datasets, specimens, observations and peer-reviewed methods provide the appropriate test for the technical claims summarized here. The source revision retrieved here is dated Feb 10, 2026. The linked authority identifier is Q907567. None of the 0 selected statements returned an explicit reference. The first chronological checks are 1916, 1932 and 1884.
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