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A solution of H2SO4 with unknownconcentration was titrated with the standard base with .0233Molarity. A volume of 5.03mL of the acid solution required 12.07mLof the standard base to reach the end point using phenolphthaleinindicatior.

How many moles of standard base were required to neutralizethe H2SO4 solution and how many molesof H2SO4 were present in thesample of acid titrated? What is the molarity of the acid solution?

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