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  2. Acid dissociation constant - Wikipedia

    en.wikipedia.org/wiki/Acid_dissociation_constant

    Between the two buffer regions there is an end-point, or equivalence point, at about pH 3. This end-point is not sharp and is typical of a diprotic acid whose buffer regions overlap by a small amount: pK a2 − pK a1 is about three in this example. (If the difference in pK values were about two or less, the end-point would not be noticeable ...

  3. Dissociation constant - Wikipedia

    en.wikipedia.org/wiki/Dissociation_constant

    The dissociation constant is commonly used to describe the affinity between a ligand (such as a drug) and a protein; i.e., how tightly a ligand binds to a particular protein. Ligand–protein affinities are influenced by non-covalent intermolecular interactions between the two molecules such as hydrogen bonding , electrostatic interactions ...

  4. pH indicator - Wikipedia

    en.wikipedia.org/wiki/PH_indicator

    pH indicators: a graphic view. A pH indicator is a halochromic chemical compound added in small amounts to a solution so the pH (acidity or basicity) of the solution can be determined visually or spectroscopically by changes in absorption and/or emission properties. [1]

  5. pH - Wikipedia

    en.wikipedia.org/wiki/PH

    The difference between the two measured electromotive force values is proportional to pH. This method of calibration avoids the need to know the standard electrode potential . The proportionality constant, 1/ z , is ideally equal to F R T ln ⁡ 10 {\displaystyle {\frac {F}{RT\ln {10}}}\ } , the "Nernstian slope".

  6. Isoelectric point - Wikipedia

    en.wikipedia.org/wiki/Isoelectric_point

    The difference between the two, therefore, is the quantity of charged sites at the point of net zero charge. Jolivet uses the intrinsic surface equilibrium constants, p K − and p K + to define the two conditions in terms of the relative number of charged sites:

  7. Phosphoric acid - Wikipedia

    en.wikipedia.org/wiki/Phosphoric_acid

    The difference between successive pK a values is sufficiently large so that salts of either monohydrogen phosphate, HPO 2− 4 or dihydrogen phosphate, H 2 PO − 4, can be prepared from a solution of phosphoric acid by adjusting the pH to be mid-way between the respective pK a values.

  8. Protein pKa calculations - Wikipedia

    en.wikipedia.org/wiki/Protein_pKa_calculations

    In computational biology, protein pK a calculations are used to estimate the pK a values of amino acids as they exist within proteins.These calculations complement the pK a values reported for amino acids in their free state, and are used frequently within the fields of molecular modeling, structural bioinformatics, and computational biology.

  9. Carbonic acid - Wikipedia

    en.wikipedia.org/wiki/Carbonic_acid

    Bjerrum plot of speciation for a hypothetical monoprotic acid: AH concentration as a function of the difference between pK and pH. Carbonic acid is the formal Brønsted–Lowry conjugate acid of the bicarbonate anion, stable in alkaline solution. The protonation constants have been measured to great precision, but depend on overall ionic ...