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The weak acid HQ has pKa of 4.89.

1)Calculate the [H3O+] of .035 M HQ.

2)Calculate the (OH-) of 0.500 M HQ
....Am I correct?

a) pKa = 4.89

=> - log(Ka) = 4.89

=> Ka = antilog(- 4.89) = 10-4.89 = 1.29x10-5

1. Given concentration of HQ, C = 0.035 M

Dissociation of HQ is given as

HQ(aq) -- > H3O+(aq) + Q-(aq), Ka = 1.29x10-5

Initial conc:0.035 M 0 0

eqm conc: (0.035-x)M x M x M

Ka =([H3O+(aq)]x[Q-(aq)]) / [HQ(aq)] = (x M * x M) / (0.035-x)M

Since x < < 1, (0.035-x) is nearly equals to 0.035

=> 1.29x10-5 = x2 / 0.035

=> x = Underroot (0.035 x 1.29x10-5 ) = 6.72x10-4

x = [H3O+(aq)] = 6.72x10-4 (answer)

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