Tentukan pH dari larutan 100 ml NH4OH 0,01 M
Jawaban:
100 mL NH4OH 0,1 M
Kb = 1,8 × 10^-5
pH … ?
[OH^-] = √( Kb × Mb )
[OH^-] = √( 1,8 × 10^-5 × 0,1 )
[OH^-] = √( 1,8 × 10^-6 )
[OH^-] = 10^-3 × √1,8
pOH = – log [OH^-]
pOH = – log 10^-3 × √1,8
pOH = 3 – log √1,8
pH = 14 – pOH
pH = 14 – (3 – log √1,8)
pH = 14 – 3 + log √1,8
pH = 11 + log √1,8
pH = 11 + log 1,34