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Radicals can be formed by adding a radical to a spin-paired molecule. This is typically observed with unsaturated species, where the addition of a radical across the π bond leads to the production of a new radical by dissolving the π bond. For example, the addition of a Br radical to an alkene yields a carbon-centered radical.

Similar to charge conservation in chemical reactions, spin conservation is implicit for radical reactions. Accordingly, the product formed must possess an unpaired electron if the reaction begins with a reactant having an unpaired electron.

The most facile category of radical formation via the addition process is reduction, where a single electron is added. The Birch reduction of organic compounds is one such example. It employs the electron generated as a metal of group 1 in the periodic table dissolves in liquid ammonia to form the corresponding stable M+1 ion.

Tags
Radical FormationAddition RadicalsSpin paired MoleculeUnsaturated SpeciesRadical AdditionBr RadicalCarbon centered RadicalSpin ConservationUnpaired ElectronReductionBirch ReductionOrganic CompoundsGroup 1 MetalsLiquid Ammonia

Aus Kapitel 20:

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20.6 : Bildung von Radikalen: Addition

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20.1 : Radikale: Elektronenstruktur und geometrie

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20.2 : Paramagnetische Elektronenresonanz (EPR) Spektroskopie: Organische Radikale

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20.3 : Bildung von Radikalen: Überblick

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20.4 : Bildung von Radikalen: Homolyse

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20.5 : Bildung von Radikalen: Abstraktion

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20.7 : Bildung von Radikalen: Eliminierung

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20.8 : Radikal-Reaktivität: Überblick

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20.9 : Radikal-Reaktivität: Sterische Effekte

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20.10 : Radikal-Reaktivität: Konzentrationseffekte

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20.11 : Radikal-Reaktivität: Elektrophile Radikale

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20.12 : Radikal-Reaktivität: Nukleophile Radikale

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20.13 : Radikal-Reaktivität: Intramolekular vs Intermolekular

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20.14 : Radikalische Autoxidation

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20.15 : Radikalische Oxidation von Allyl und Benzylalkoholen

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