Henderson–Hasselbalch equation

Henderson–Hasselbalch equation

In chemistry, the Henderson–Hasselbalch (often misspelled as "Henderson–Hasselbach") equation describes the derivation of pH as a measure of acidity (using pKa, the acid dissociation constant) in biological and chemical systems. The equation is also useful for estimating the pH of a buffer solution and finding the equilibrium pH in acid-base reactions (it is widely used to calculate isoelectric point of the proteins).

Two equivalent forms of the equation are

: extrm{pH} = extrm{pK}_{a}+ log frac{ [ extrm{A}^-] }{ [ extrm{HA}] }

and

: extrm{pH} = extrm{pK}_{a}+log left ( frac{ [mathrm{base}] }{ [mathrm{acid}] } ight ).

Here, extrm{pK}_{a} is -log (K_{a}) where K_{a} is the acid dissociation constant, that is:

: extrm{pK}_{a} = - log(K_{a}) = - log left ( frac{ [mbox{H}_{3}mbox{O}^+] [mbox{A}^-] }{ [mbox{HA}] } ight ) for the non-specific Brønsted acid-base reaction: mbox{HA} + mbox{H}_{2}mbox{O} ightleftharpoons mbox{A}^- + mbox{H}_{3}mbox{O}^+In these equations, mbox{A}^- denotes the ionic form of the relevant acid. Bracketed quantities such as [base] and [acid] denote the molar concentration of the quantity enclosed.

In analogy to the above equations, the following equation is valid:

: extrm{pOH} = extrm{pK}_{b}+ log ( frac{ [ extrm{BH}^+] }{ [ extrm{B}] } )

Where mbox{B}^+ denotes the salt of the corresponding base B.

History

Lawrence Joseph Henderson wrote an equation, in 1908, describing the use of carbonic acid as a buffer solution. Karl Albert Hasselbalch later re-expressed that formula in logarithmic terms, resulting in the Henderson–Hasselbalch equation [http://www.acid-base.com/history.php] . Hasselbalch was using the formula to study metabolic acidosis, which results from carbonic acid in the blood.

Limitations

There are some significant approximations implicit in the Henderson–Hasselbalch equation. The most significant is the assumption that the concentration of the acid and its conjugate base at equilibrium will remain the same as the formal concentration. This neglects the dissociation of the acid and the hydrolysis of the base. The dissociation of water itself is neglected as well. These approximations will fail when dealing with relatively strong acids or bases (pKa more than a couple units away from 7), dilute or very concentrated solutions (less than 1 mM or greater than 1M), or heavily skewed acid/base ratios (more than 100 to 1).

ee also

*Acid
*Base
*Titration
*Acidosis
*Alkalosis

External links

* [http://www.changbioscience.com/calculator/HendersonHasselbach.html Henderson–Hasselbalch Calculator]
* [http://www.chembuddy.com/?left=pH-calculation&right=pH-buffers-henderson-hasselbalch Derivation and detailed discussion of Henderson–Hasselbalch equation]
* [http://isoelectric.ovh.org True example of using Henderson–Hasselbalch equation for calculation net charge of proteins]

References

*
*
*
*
*


Wikimedia Foundation. 2010.

Игры ⚽ Нужен реферат?

Look at other dictionaries:

  • Henderson-Hasselbalch equation — Hen·der·son Has·sel·balch equation hen dər sən has əl .bälk n an equation that equates the pH of a buffered solution (as the blood) to the sum of the cologarithm (p) of the dissociation constant (K) of the acid in the buffer and the logarithm of… …   Medical dictionary

  • Ecuación de Henderson-Hasselbalch — Saltar a navegación, búsqueda La ecuación de Henderson Hasselbalch (frecuentemente mal escrito como Henderson Hasselbach) fórmula bioquímica que se utiliza para calcular el pH, de una solución buffer, o tampón, a partir del pKa (la constante de… …   Wikipedia Español

  • Équation de Henderson-Hasselbalch — En chimie, l équation de Henderson Hasselbach est une équation donnant le pH d un système tamponné. Elle est utilisée dans le domaine de la médecine pour déterminer le pH sanguin à partir des concentrations en ion bicarbonate et en acide… …   Wikipédia en Français

  • Équation de Henderson-Hasselbach — Équation de Henderson Hasselbalch En chimie, l équation de Henderson Hasselbalch (également appelée équation de Henderson Hasselbach) est une équation donnant le pH d un système tamponné. Elle est utilisée dans le domaine de la médecine pour… …   Wikipédia en Français

  • equation — A statement expressing the equality of two things, usually with the use of mathematical or chemical symbols. [L. aequare, to make equal] alveolar gas e. the e. defining the steady state relation of the alveolar oxygen pressure to the barometric… …   Medical dictionary

  • Hasselbalch — Karl, Danish biochemist and physician, 1874–1962. See Henderson H. equation …   Medical dictionary

  • Henderson — Lawrence J., U.S. biochemist, 1878–1942. See H. Hasselbalch equation …   Medical dictionary

  • Charlot equation — The Charlot equation, named after Gaston Charlot, is used in analytical chemistry to relate the hydrogen ion concentration, and therefore the pH, with the formal analytical concentration of an acid and its conjugate base. It can be used for… …   Wikipedia

  • Karl Albert Hasselbalch — (1 November 1874, Aastrup, Denmark 19 September 1962) was a physician and chemist. He was a pioneer in the use of pH measurement in medicine (with Christian Bohr, father of Nils Bohr), and he described how the affinity of blood for oxygen was… …   Wikipedia

  • Lawrence Joseph Henderson — Infobox Scientist name = Lawrence Joseph Henderson box width = image width =150px caption = Lawrence Joseph Henderson birth date = June 3, 1878 birth place = Lynn, Massachusetts death date = February 10, 1942 death place = Cambridge,… …   Wikipedia

Share the article and excerpts

Direct link
Do a right-click on the link above
and select “Copy Link”