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  2. Electrochemical equivalent - Wikipedia

    en.wikipedia.org/wiki/Electrochemical_equivalent

    The electrochemical equivalent of a substance is the mass of the substance deposited to one of the electrodes when a current of 1 ampere is passed for 1 second, i.e. a quantity of electricity of one coulomb is passed.

  3. Electrochemistry - Wikipedia

    en.wikipedia.org/wiki/Electrochemistry

    English chemist John Daniell (left) and physicist Michael Faraday (right), both credited as founders of electrochemistry.. Electrochemistry is the branch of physical chemistry concerned with the relationship between electrical potential difference and identifiable chemical change.

  4. Handbook of Electrochemistry - Wikipedia

    en.wikipedia.org/wiki/Handbook_of_Electrochemistry

    The Handbook of Electrochemistry, edited by Cynthia Zoski, is a sourcebook containing a wide range of electrochemical information.It provides details of experimental considerations, typical calculations, and illustrates many of the possibilities open to electrochemical experimentators.

  5. Standard hydrogen electrode - Wikipedia

    en.wikipedia.org/wiki/Standard_hydrogen_electrode

    During the early development of electrochemistry, researchers used the normal hydrogen electrode as their standard for zero potential. This was convenient because it could actually be constructed by "[immersing] a platinum electrode into a solution of 1 N strong acid and [bubbling] hydrogen gas through the solution at about 1 atm pressure".

  6. Electrochemical cell - Wikipedia

    en.wikipedia.org/wiki/Electrochemical_cell

    A galvanic cell (voltaic cell), named after Luigi Galvani (Alessandro Volta), is an electrochemical cell that generates electrical energy from spontaneous redox reactions. [3]

  7. Faraday's laws of electrolysis - Wikipedia

    en.wikipedia.org/wiki/Faraday's_laws_of_electrolysis

    Faraday discovered that when the same amount of electric current is passed through different electrolytes connected in series, the masses of the substances deposited or liberated at the electrodes are directly proportional to their respective chemical equivalent/equivalent weight (E). [3]

  8. Electron transfer - Wikipedia

    en.wikipedia.org/wiki/Electron_transfer

    Example of a reduction–oxidation reaction between sodium and chlorine, with the OIL RIG mnemonic [1]. Electron transfer (ET) occurs when an electron relocates from an atom, ion, or molecule, to another such chemical entity.

  9. Overpotential - Wikipedia

    en.wikipedia.org/wiki/Overpotential

    +0.12 v The activation overpotential is the potential difference above the equilibrium value required to produce a current that depends on the activation energy of the redox event. While ambiguous, "activation overpotential" often refers exclusively to the activation energy necessary to transfer an electron from an electrode to an anolyte .