Campuran 200 ml larutaan NaOH 0,03M dan 200 ml larutan H3PO4 0,01M menghasilkan larutan dengan pH sebesar.... (Ka H3PO4=2.10 pangkat -12)
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mol H3PO4 = 200 ml x 0,01 M = 2 mmol
vol camp = 200 ml + 200 ml = 400 ml
persamaan reaksi
NaOH + H3PO4 => Na3PO4 + H2O
mula2 : 6 mmol 2mmol. - -
reaksi : 2 mmol. 2 mmol. 2 mmol. 2mmol
sisa. : 4 mmol. - 2mmol. 2mmol
H+ = ka x A/G
= 2.10pangakat -12 x ((4 mmol/400ml) / (2mmol/400ml))
H+ = 2.10 pangkat -12 x ( 2)
H+ = 4 .10 pangkat -12
pH = - log H+
pH = - log 4.10 pangkat -12
pH = 12 - log 4