4.9 gr NaCN dilarutkan dalam air sampau volumenya 250ml (ka HCN= 4.9 x10^-10) Ar Na 23, c=12, N=14. Tentukan ph larutan!?
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v : 250 ml
ka HCN : 4,9 x 10^-10
Mr : 49
dit pH = .....?
peny:
m = gr/Mr x 1000/250 Ml
= 4,9/49 x 1000/250
= 49/490 x 4
=196/490
=0,4
[OH-] = √kw/ka x [anion]
= √10^-14/4,9.10^-10 [4x10^-1]
= √0,2x10^-4 [4x10^-1]
=√ 0,8 x 10^-10
= 0,89 x 10^-5
pOH = - log 0,89 x 10^-5
= 5 -log 0, 89
pH = 14 - (5 - log 0,89)
= 9 + log 0,89