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The range of pH for acidic and basic buffer is where `K_(a)` and `K_(b)` are the acid base dissociation constants, respectively.A. form `pH=pK_(a)+-2 to pH=pK_(b)+-2`B. from `pH=pK_(a)+1to pH=pK_(b)+1`C. from `pH=pK_(a)+-1to pH=pK_(b)+-1`D. from `pH=pK_(a)+1to pH=pK_(b)-1` |
Answer» Correct Answer - C When the pH of the acidic buffer does not differ greatly from the `pK_(a)` of the acid, the buffering action is the most efficient. This happens when the ration `[A^(-)]//[HA]` is between `0.1` and 10. Thus, `pH=pK_(a)+-1`. |
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