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I don't understand what I'm missing:

pH=-log(1.85x10-5)+log(.49/.65)

= 4.69728

=4.70 (right?)

Part B What is the pH of a solution that is 0.49 M in sodium acetate and 0.65 M in acetic acid? (for acetic acid K, is 1.85x1

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Answer #1

Using Handerson Hasselbech equation; pH = pka + log [salt] NaoAC [cid] & ACOH = -log (1.85 x16 5) + log (oua ) = 4.7326 + (-0

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I don't understand what I'm missing: pH=-log(1.85x10-5)+log(.49/.65) = 4.69728 =4.70 (right?) Part B What is the...
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