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23 July, 13:41

What is the concentration of x2? in a 0.150 m solution of the diprotic acid h2x? for h2x, ka1=4.5?10?6 and ka2=1.2?10?11?

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  1. 23 July, 13:49
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    The first dissociation for H2X:

    H2X + H2O ↔ HX + H3O

    initial 0.15 0 0

    change - X + X + X

    at equlibrium 0.15-X X X

    because Ka1 is small we can assume neglect x in H2X concentration

    Ka1 = [HX][H3O]/[H2X]

    4.5x10^-6 = (X) (X) / (0.15)

    X = √ (4.5x10^-6*0.15)

    ∴X = 8.2 x 10-4 m

    ∴[HX] & [H3O] = 8.2x10^-4

    the second dissociation of H2X

    HX + H2O↔ X^2 + H3O

    8.2x10^-4 Y 8.2x10^-4

    Ka2 for Hx = 1.2x10^-11

    Ka2 = [X2][H3O]/[HX]

    1.2x10^-11 = y (8.2x10^-4) * (8.2x10^-4)

    ∴y = 1.78x10^-5

    ∴[X^2] = 1.78x10^-5 m
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