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16 May, 21:25

Given a diprotic acid, H2A, with two ionization constants of Ka1=2.3*10^ - 4 and Ka2=3.8*10^-12, calculate the pH for a 0.142M solution of NaHA.

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  1. 16 May, 21:35
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    The pH for a 0.142M solution of NaHA is 1.0

    Explanation:

    Calculating the PH value based on the given data H2A

    H2A with Ka1 = 2.3 * 10-4

    The concentration of the acid is 0.180 M and the Ka1 is 2.3*10-4

    Rewrite the chemical equation as,

    H2A - -> H+1 + HA-1 with Ka1 = 2.3 * 10-4

    Bythe formula:

    Ka = (products) / (reactants):

    2.3 * 10-4 = (x2) / (0.180)

    x2 = 0.180 * 2.3 * 10-4

    x = 0.414 * 10^-4 = [H+]

    x = 4.14 * 10^-3 = [H+]

    Since pH = - log of hydrogen ion concentration,

    The pH for a 0.142M solution of NaHA is 1.0
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