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10 November, 21:06

What are the concentrations of acetic acid (pka = 4.76) and acetate in a buffer solution of 0.10 m at ph 4.9?

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Answers (2)
  1. 10 November, 21:58
    0
    Solution:

    We have to use the Henderson-Hasselbalch equation: for this calculation

    Henderson-Hasselbalch equation describes the derivation of pH as a measure of acidity by using pKa, the negative log of 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 reaction.

    The equation is given by:

    Here, [HA] is the molar concentration of the un dissociated weak acid, [A⁻] is the molar concentration (molarity, M) of this acid's conjugate base and pKa is - log10 Ka where Ka is the acid dissociation constant, that is:

    pH = pKa + log ([A^-]/[HA])

    We look up the pKa for acetic acid:

    pKa = 4.76

    Let x = molarity of AcO^ - and y = molarity of AcOH: Then we have the following two equations in two unknowns:

    (1) x + y = 0.10 M

    and

    (2) 4.9 = 4.76 + log (x/y)

    Further calcite the value of x and y by algebraic method and get the answer.
  2. 11 November, 00:38
    0
    Solution:

    We have to use the Henderson-Hasselbalch equation: for this calculation

    Henderson-Hasselbalch equation describes the derivation of pH as a measure of acidity by using pKa, the negative log of 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 reaction.

    The equation is given by:

    Here, [HA] is the molar concentration of the un dissociated weak acid, [A⁻] is the molar concentration (molarity, M) of this acid's conjugate base and pKa is - log10 Ka where Ka is the acid dissociation constant, that is:

    pH = pKa + log ([A^-]/[HA])

    We look up the pKa for acetic acid:

    pKa = 4.76

    Let x = molarity of AcO^ - and y = molarity of AcOH: Then we have the following two equations in two unknowns:

    (1) x + y = 0.10 M

    and

    (2) 4.9 = 4.76 + log (x/y)

    Further calcite the value of x and y by algebraic method and get the answer.
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