PH larutan yang terbentuk dari 10 mL. KOH 0,01 M dengan 10mL HCN 0,01 M adalah..(Kb HCN = 5 x 10^-10
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[KOH] = 0,01 M ---> n.KOH = 10 x 0,01 = 0,1 mmol
V.HCN = 10 ml
[HCN] = 0,01 M ---> n.HCN = 10 x 0,01 = 0,1 mmol
Ka = 5 x 10⁻¹⁰
Dit : pH larutan = ...?
Jwb : KOH + HCN ----> KCN + H₂O
M: 0,1 mmol 0,1 mmol
R: -0,1 mmol -0,1 mmol +0,1 mmol
S: - - 0,1 mmol
Volume campuran = 20 ml
[KCN] = 0,1/20 = 0,005 M
KCN (garam basa), Hitung secara HIDROLISIS
[OH⁻] = √(Kw/Ka).[KCN]
= √(10⁻¹⁴/5.10⁻¹⁰) 5.10⁻³
= √10⁻⁷
= √10.10⁻⁸
= 10⁻⁴ √10
pOH = -log √10 x 10⁻⁴
= 4 - log √10
pH = 10 + log√10
= 10 + 0,5
= 10,5