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  2. Henderson–Hasselbalch equation - Wikipedia

    en.wikipedia.org/wiki/Henderson–Hasselbalch...

    The Henderson–Hasselbalch equation can be used to model these equilibria. It is important to maintain this pH of 7.4 to ensure enzymes are able to work optimally. [10] Life threatening Acidosis (a low blood pH resulting in nausea, headaches, and even coma, and convulsions) is due to a lack of functioning of enzymes at a low pH. [10]

  3. Charlot equation - Wikipedia

    en.wikipedia.org/wiki/Charlot_equation

    where [H +] is the equilibrium concentration of H +, K a is the acid dissociation constant, C a and C b are the analytical concentrations of the acid and its conjugate base, respectively, and Δ = [H +] − [OH −]. The equation can be solved for [H +] by using the autoionization constant for water, K w, to introduce [OH −] = K w /[H +].

  4. Weak base - Wikipedia

    en.wikipedia.org/wiki/Weak_base

    Given its greater H + concentration, the formula yields a lower pH value for the weak base. However, pH of bases is usually calculated in terms of the OHconcentration. This is done because the H + concentration is not a part of the reaction, whereas the OHconcentration is. The pOH is defined as:

  5. pH - Wikipedia

    en.wikipedia.org/wiki/PH

    A strong acid, such as hydrochloric acid, at concentration 1 mol dm −3 has a pH of 0, while a strong alkali like sodium hydroxide, at the same concentration, has a pH of 14. Since pH is a logarithmic scale, a difference of one in pH is equivalent to a tenfold difference in hydrogen ion concentration.

  6. Acid value - Wikipedia

    en.wikipedia.org/wiki/Acid_value

    In chemistry, acid value (AV, acid number, neutralization number or acidity) is a number used to quantify the acidity of a given chemical substance.It is the quantity of base (usually potassium hydroxide (KOH)), expressed as milligrams of KOH required to neutralize the acidic constituents in 1 gram of a sample.

  7. Fenton's reagent - Wikipedia

    en.wikipedia.org/wiki/Fenton's_reagent

    Lower pH also results in the scavenging of • OH by excess H +, [13] hence reducing its reaction rate. Whereas at high pH, the reaction slows down due to precipitation of Fe(OH) 3, lowering the concentration of the Fe 3+ species in solution. [11] Solubility of iron species is directly governed by the solution's pH.

  8. Buffer solution - Wikipedia

    en.wikipedia.org/wiki/Buffer_solution

    The relative concentration of undissociated acid is shown in blue, and of its conjugate base in red. The pH changes relatively slowly in the buffer region, pH = pK a ± 1, centered at pH = 4.7, where [HA] = [A −]. The hydrogen ion concentration decreases by less than the amount expected because most of the added hydroxide ion is consumed in ...

  9. Dissociation constant - Wikipedia

    en.wikipedia.org/wiki/Dissociation_constant

    The concentration of water, [H 2 O], is omitted by convention, which means that the value of K w differs from the value of K eq that would be computed using that concentration. The value of K w varies with temperature, as shown in the table below. This variation must be taken into account when making precise measurements of quantities such as pH.