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The pH of the a solution containing `0.4 M HCO_(3)^(-)` is : `[K_(a_(1)) (H_(2)CO_(3)) = 4 xx 10^(-7), K_(a_(2)) (HCO_(3)^(-)) = 4 xx 10^(-11)]`A. `10.4`B. `10.1`C. `6.1`D. `8.4` |
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Answer» Correct Answer - D `P^(H) = (P^(ka_(1)) + P^(ka_(2)))/(2)` |
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