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Answer to Question #297382 in Chemistry for Leyman
Question #297382
How many grams of KOH are needed in order to prepare 1 litre of a
0.25M solution?
Expert's answer
CM = n / V
n (KOH) = CM x V = 0.25 x 1 = 0.25 mol
n = m / M
m = n x M
M (KOH) = 56.1 g/mol
m (KOH) = 0.25 x 56.1 = 1.3 g
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