Untuk mengubah 110 mL larutanCH3COOH 0,1 M yang
pHnya 3 agar menjadi 6 diperlukan larutan NaOH 0,1 sebanyak.....
Tolong jawab beserta caranya, mohon
bantuannya ya terima kasih banyak
pHnya 3 agar menjadi 6 diperlukan larutan NaOH 0,1 sebanyak.....
Tolong jawab beserta caranya, mohon
bantuannya ya terima kasih banyak
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pH = -log[H+]
[H+] = 10^-pH = 10^-3 = 0,001 M
Tetapan ionisasi asam
[H+] = vKa.M
Ka = [H+]^2 /M = (10^-3)^2 / 0,1 = 10^-5
Supaya pH menjadi 6, maka:
pH = 6 → [H+] = 10^-6 M
[H+] = vKa.M
M = [H+]^2 /Ka = (10^-6)^2 / 10^-5 = 10^-7 M
Reaksi asam-basa
CH3COOH + NaOH → CH3COONa + H2O
Mol CH3COOH bereaksi = mol CH3COOH mula – mol CH3COOH akhir
= (110/1000)x0,1 – (110/1000)x10^-7
= 0,0109 mol
Mol NaOH dibutuhkan = mol CH3COOH bereaksi = 0,0109 mol
VNaOH = mol/M = 0,0109/0,1 = 0,109 liter = 109 ml