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[OH-] = Vkw.G/kb
=V10^-14 . 5.10^-3 / 1,8.10^-5
=V2,78 . 10^-12
= 1,67 . 10^-6
pOH = - log 1,67 . 10^-6
= 6 - log 1,67
pH = 14 - ( 6-log 1,67)
= 8 + log 1,67 .
*M garam = 0,005 M
*Kb = 1,8 x 10^-5
Karena ini soal hidrolisis, [G] bergantung kepada si lemah, yaitu ion NH4+ dari si garam, sehingga:
(NH4)2SO4 --> 2NH4+ + SO4 2-
0,005 0,01
[H+] = √10^-14 x 10^-2/1,8 x 10^-5
= √10^-11 x 0,55
= √10^-12 x 5,5
= 10^-6 x √5,5
pH = 6 - log √5,5