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A 25.00-mL sample of an H2SO4 (2 and 4 are subscripted) solution of unknown concentration is titrated with a .1328 M KOH soluti...Asked by coug
A 25.00-mL sample of an H2SO4 (2 and 4 are subscripted) solution of unknown concentration is titrated with a .1328 M KOH solution. A volume of 38.33 mL of KOH was required to reach the endpoint. What is the concentration of the unknown H2SO4 (again, the 2 and 4 are subscripted) solution?
my work:
38.33 mL KOH* (1L/1000mL)*(.1328 M KOH/L KOH)*(1 mol H2SO4/1mol KOH)=.005090 mol H2SO4
M= mol solution/L= .005090mol/.025L
=.2036M
However, the answer in the book says it should equal .1018M. I'm confused.
my work:
38.33 mL KOH* (1L/1000mL)*(.1328 M KOH/L KOH)*(1 mol H2SO4/1mol KOH)=.005090 mol H2SO4
M= mol solution/L= .005090mol/.025L
=.2036M
However, the answer in the book says it should equal .1018M. I'm confused.
Answers
Answered by
coug
I'm sorry... I accidently reposted this--it is not answered yet though.
Answered by
bobpursley
look at you last ( ). If you balance the reaction, you will find it takes 2mol KOH to neutralize one mole of H2SO4
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