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HELP! Exam tomorrow!! Calculate the pH of a solution that is 2.00 M HF, 1.00 M...

HELP! Exam tomorrow!! Calculate the pH of a solution that is 2.00 M HF, 1.00 M NaOH, and 0.500M NaF n 1.00 L of the solution. Ka for HF = 7.2 x 10-4)

HF(aq) + OH-(aq)-->F-(aq) + H2O(l)

Correct answer is 3.32 really need help with the set up!!

How many moles of solid NaF would have to be added to 1.0 L of 1.90 M HF solution to achieve a buffer of pH 3.35? Assume there is no volume change. (Kaf or HF = 7.2 x 10–4)

correct answer is 3.1 moles need help with how to do it!!

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