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Jawabannya:Materi:
Larutan Penyangga
Pembahasan
Dik:
V= 200 cm³= 200 mL
Asam Sianida [HCN]= 0,1 M
Ka HCN= 1×10^-5
Kalium Sianida [KCN]= 0,05 M
pH akhir= 2 × pH awal
Dit:
V.KCN ?
Jwb:
- Cari pH awal dan akhir HCN
[H+] =√Ka×HCN
[H+]= √1×10^-5 . 0,1
[H+]= √10^-3 M
pH awal= -log(H+)
pH awal= -log(10^-3)
pH awal= 3
pH akhir= 2×pH awal
pH akhir=2×3
pH akhir= 6
- Cari jlh mol asam
n. asam= [HCN] × V
n. asam= 0,1 M × 200 mL
n. asam= 200 milimol
- Cari H+ akhir
pH akhir= -log[H+]
[H+] akhir= 10^-pH
[H+] akhir= 10^-6 M
- Cari jlh mol garam
n. garam= Ka/[H+] × n. asam
n. garam= 10^-5/10^-6 × 20 milimol
n. garam= 200 milimol
- Cari V (Volume) KCN/Sianida
M= n/V
V= n/M
V= 200 milimol / 0,05 M
V= 4000 mL
atau
V= 4000 cm³
Jadi Jawabannya opsi E. 4000 cm³
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