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  2. Redox - Wikipedia

    en.wikipedia.org/wiki/Redox

    Redox (/ ˈrɛdɒks / RED-oks, / ˈriːdɒks / REE-doks, reduction–oxidation[2] or oxidation–reduction[3]: 150 ) is a type of chemical reaction in which the oxidation states of the reactants change. [4] Oxidation is the loss of electrons or an increase in the oxidation state, while reduction is the gain of electrons or a decrease in the ...

  3. Reduction potential - Wikipedia

    en.wikipedia.org/wiki/Reduction_potential

    Redox potential (also known as oxidation / reduction potential, ORP, pe, , or ) is a measure of the tendency of a chemical species to acquire electrons from or lose electrons to an electrode and thereby be reduced or oxidised respectively. Redox potential is expressed in volts (V). Each species has its own intrinsic redox potential; for example ...

  4. Reducing agent - Wikipedia

    en.wikipedia.org/wiki/Reducing_agent

    Reducing agent. In chemistry, a reducing agent (also known as a reductant, reducer, or electron donor) is a chemical species that "donates" an electron to an electron recipient (called the oxidizing agent, oxidant, oxidizer, or electron acceptor). Examples of substances that are common reducing agents include hydrogen, the alkali metals, formic ...

  5. Oxidation state - Wikipedia

    en.wikipedia.org/wiki/Oxidation_state

    Oxidation state. In chemistry, the oxidation state, or oxidation number, is the hypothetical charge of an atom if all of its bonds to other atoms were fully ionic. It describes the degree of oxidation (loss of electrons) of an atom in a chemical compound. Conceptually, the oxidation state may be positive, negative or zero.

  6. Redox gradient - Wikipedia

    en.wikipedia.org/wiki/Redox_gradient

    A redox gradient is a series of reduction-oxidation (redox) reactions sorted according to redox potential. [ 4 ][ 5 ] The redox ladder displays the order in which redox reactions occur based on the free energy gained from redox pairs. [ 4 ][ 5 ][ 6 ] These redox gradients form both spatially and temporally as a result of differences in ...

  7. Nernst equation - Wikipedia

    en.wikipedia.org/wiki/Nernst_equation

    Nernst equation. In electrochemistry, the Nernst equation is a chemical thermodynamical relationship that permits the calculation of the reduction potential of a reaction (half-cell or full cell reaction) from the standard electrode potential, absolute temperature, the number of electrons involved in the redox reaction, and activities (often ...

  8. Organic redox reaction - Wikipedia

    en.wikipedia.org/wiki/Organic_redox_reaction

    Organic reductions or organic oxidations or organic redox reactions are redox reactions that take place with organic compounds. In organic chemistry oxidations and reductions are different from ordinary redox reactions, because many reactions carry the name but do not actually involve electron transfer. [1] Instead the relevant criterion for ...

  9. Redox indicator - Wikipedia

    en.wikipedia.org/wiki/Redox_indicator

    Redox indicator. A redox indicator (also called an oxidation-reduction indicator) is an indicator which undergoes a definite color change at a specific electrode potential. The requirement for fast and reversible color change means that the oxidation-reduction equilibrium for an indicator redox system needs to be established very quickly.

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