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10 February, 18:59

What is the ph of a 0.40 m h2se solution that has the stepwise dissociation constants k a1 = 1.3 * 10-4 and k a2 = 1.0 * 10-11?

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  1. 10 February, 19:24
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    First, we can neglect the Ka2 value and use Ka1:

    according to this equation and by using the ICE table:

    H2Se ⇄ H + + HSe-

    initial 0.4 M 0 0

    change - X + X + X

    Equ (0.4-X) X X

    so,

    Ka1 = [H+][HSe-] / [H2Se]

    so by substitution:

    1.3 x 10^-4 = X*X / (0.4 - X) by solving for X

    ∴X = 0.00715

    ∴[H+] = 0.00715 m

    ∴PH = - ㏒[H+]

    = - ㏒ 0.00715

    = 2.15
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