enow.com Web Search

Search results

  1. Results from the WOW.Com Content Network
  2. Henderson–Hasselbalch equation - Wikipedia

    en.wikipedia.org/wiki/HendersonHasselbalch...

    The HendersonHasselbalch equation relates the pH of a solution containing a mixture of the two components to the acid dissociation constant, K a of the acid, and the concentrations of the species in solution. [6] Simulated titration of an acidified solution of a weak acid (pK a = 4.7) with alkali

  3. Ion trapping - Wikipedia

    en.wikipedia.org/wiki/Ion_trapping

    The charge of a molecule depends upon the pH of its solution. In an acidic medium, basic drugs are more charged and acidic drugs are less charged. The converse is true in a basic medium. For example, Naproxen is a non-steroidal anti-inflammatory drug that is a weak acid (its pKa value is 5.0). The gastric juice has a pH of 2.0. It is a three ...

  4. Karl Albert Hasselbalch - Wikipedia

    en.wikipedia.org/wiki/Karl_Albert_Hasselbalch

    Karl Albert Hasselbalch (Danish pronunciation: [ˈkʰɑˀl ˈælˀpɐt ˈhæsl̩ˌpælˀk]; 1 November 1874 – 19 September 1962) was a Danish physician and chemist known for his work on the HendersonHasselbalch equation.

  5. Bicarbonate buffer system - Wikipedia

    en.wikipedia.org/wiki/Bicarbonate_buffer_system

    It is equal to 6.1. [HCO − 3] is the concentration of bicarbonate in the blood [H 2 CO 3] is the concentration of carbonic acid in the blood; When describing arterial blood gas, the HendersonHasselbalch equation is usually quoted in terms of pCO 2, the partial pressure of carbon dioxide, rather than H 2 CO 3 concentration.

  6. Isohydric principle - Wikipedia

    en.wikipedia.org/wiki/Isohydric_principle

    The isohydric principle is the phenomenon whereby multiple acid/base pairs in solution will be in equilibrium with one another, tied together by their common reagent: the hydrogen ion and hence, the pH of solution. That is, when several buffers are present together in the same solution, they are all exposed to the same hydrogen ion activity.

  7. Pharmacokinetics - Wikipedia

    en.wikipedia.org/wiki/Pharmacokinetics

    Finally, using the Henderson-Hasselbalch equation, and knowing the drug's (pH at which there is an equilibrium between its ionized and non-ionized molecules), it is possible to calculate the non-ionized concentration of the drug and therefore the concentration that will be subject to absorption:

  8. Ion speciation - Wikipedia

    en.wikipedia.org/wiki/Ion_speciation

    Speciation of ions refers to the changing concentration of varying forms of an ion as the pH of the solution changes. [1]The ratio of acid, AH and conjugate base, A −, concentrations varies as the difference between the pH and the pK a varies, in accordance with the Henderson-Hasselbalch equation.

  9. Protein pKa calculations - Wikipedia

    en.wikipedia.org/wiki/Protein_pKa_calculations

    The pK a 1 ⁄ 2 is equal to the HendersonHasselbalch pK a (pK HH a ) if the titration curve follows the HendersonHasselbalch equation . [ 14 ] Most p K a calculation methods silently assume that all titration curves are HendersonHasselbalch shaped, and p K a values in p K a calculation programs are therefore often determined in this way.