Answer to Question #323184 in Organic Chemistry for Sahir

Question #323184

Calculate the ph of 0.01 M aqeous solution of sodium formate at

Expert's answer

The dissociation constant Ka= C x²/(1-x), where x = degree of dissociation.
For a weak acid the [H+]= C x, where C= concentration. In very dilute conditions x <<<1.
So (1-x)~= 1. So x= √(Ka/C).
So x= (1.77 x10^-4)/0.001)^0.5 =0.4207.
Therefore [H+]= 0.001 x 0.4207 =4.207 x10^-4.
So pH=- log(4.207 x 10^-4) = 3.376

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