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15 September, 04:10

0.280 gram of koh will just neutralize what volume of 0.200 m h2so4?

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  1. 15 September, 04:27
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    The neutralization reaction is expressed as:

    2KOH + H2SO4 = K2SO4 + 2H2O

    We are given the amount of the KOH that is used in the reaction. We use this and the relations from the reaction to determine the required acid.

    0.280 g (1 mol / 56.11 g) (1 mol H2SO4 / 2 mol KOH) = 0.0025 mol H2SO4

    Volume needed = 0.0025 mol / (0.200 mol / L) = 0.0125 L or 12.5 mL of the H2SO4 is needed.
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