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  2. 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.

  3. Electrosynthesis - Wikipedia

    en.wikipedia.org/wiki/Electrosynthesis

    A well-known electrosynthesis is the Kolbe electrolysis, in which two carboxylic acids decarboxylate, and the remaining structures bond together:; A variation is called the non-Kolbe reaction when a heteroatom (nitrogen or oxygen) is present at the α-position.

  4. Standard electrode potential - Wikipedia

    en.wikipedia.org/wiki/Standard_electrode_potential

    Bipolar electrochemistry scheme. In electrochemistry, standard electrode potential, or , is a measure of the reducing power of any element or compound.The IUPAC "Gold Book" defines it as; "the value of the standard emf (electromotive force) of a cell in which molecular hydrogen under standard pressure is oxidized to solvated protons at the left-hand electrode".

  5. Electrochemical potential - Wikipedia

    en.wikipedia.org/wiki/Electrochemical_potential

    In electrochemistry, the electrochemical potential of electrons (or any other species) is the total potential, including both the (internal, nonelectrical) chemical potential and the electric potential, and is by definition constant across a device in equilibrium, whereas the chemical potential of electrons is equal to the electrochemical ...

  6. Electrochemical engineering - Wikipedia

    en.wikipedia.org/wiki/Electrochemical_engineering

    Electrochemical engineering is the branch of chemical engineering dealing with the technological applications of electrochemical phenomena, such as electrosynthesis of chemicals, electrowinning and refining of metals, flow batteries and fuel cells, surface modification by electrodeposition, electrochemical separations and corrosion.

  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. Wien effect - Wikipedia

    en.wikipedia.org/wiki/Wien_effect

    The effects are important at very high electrical fields (10 8 – 10 9 V/m), like those observed in electrical double layers at interfaces or at the surfaces of electrodes in electrochemistry. More generally, the electric field effect (directly, through space rather than through chemical bonds ) on chemical behaviour of systems (e.g., on ...

  9. Saturated calomel electrode - Wikipedia

    en.wikipedia.org/wiki/Saturated_calomel_electrode

    The only variable in this equation is the activity (or concentration) of the chloride anion. But since the inner solution is saturated with potassium chloride, this activity is fixed by the solubility of potassium chloride, which is: ⁠ 342 g/L / 74.5513 g/mol ⁠ = 4.587 M @ 20 °C.