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A 0.020 M solution of niacin has a pH of 3.26. (a) What percentage of the acid is ionized in this solution
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A 0.020 M solution of niacin has a pH of 3.26. (a) What percentage of the acid is ionized in this solution

User Gaurav Dave
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1 Answer

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Answer: 2.75%

Step-by-step explanation:


pH=-log [H+]


3.26 = -log [H+]


[H+] = 5.495* 10^(-4) M


HA\rightleftharpoons H^++A^-

initial 0.020 0 0

eqm 0.020 -x x x


K_a=([H+][A-])/([HA])


K_a=([x][x])/([0.020-x])


x=5.495* 10^(-4)


K_a=([5.495* 10^(-4)]^2)/([0.020-5.495* 10^(-4)])


K_a =1.553* 10^(-5)

percent dissociation =
([H^+_eqm])/([Acid_(initial)])* 100

percent dissociation=
(5.495* 10^(-4))/(0.020)* 100

Thus percent dissociation= 2.75 %

User Joshwbrick
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