Sulfuric acid (250.0mL) is titrated with 176.5 mL 2.4 M NaOH to an equivalence point (the point where all the sulfuric acid is exactly neutralized).
2NaOH + H2SO4 -> 2H2O + Na2SO4
a) How many moles of Sulfuric acid were in the original 250.0 mL?
moles of H2SO4 =
b) What was the concentration of Sulfuric acid in the original 250.0 mL sample?
Molarity of Sulfuric acid =

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Sulfuric acid (250.0mL) is titrated with 176.5 mL 2.4 M NaOH to an equivalence point (the...
Sulfuric acid (250.0 mL) is titrated with 176.5 mL 2.4 M NaOH to an equivalence point (the point where all the sulfuric acid is exactly neutralized). 2 NaOH + H2SO4 → 2 H2O + Na2SO4 (a) How many moles of sulfuric acid were in the original 250.0 mL? (b) What was the concentration of sulfuric acid in the original 250.0 mL sample?
25.00 mL of a sulfuric acid solution was standardized by titration with 0.2500 M NaOH using phenolpthalein indicator. 30.52 ml of the NaOH was required. Find the molarity of the sulfuric acid. H2SO4 (aq) + 2NaOH (aq) ----> Na2SO4 (aq) + 2H2O (l)
In a titration between sulfuric acid and sodium hydroxide, 25.0 mL of sulfuric acid requires 19.7 mL of 0.720 M NaOH to reach the titration endpoint. H2SO4 + 2NaOH ==> Na2SO4 + 2H2O What is the molarity of the sulfuric acid solution?
50.00 mL of sulfuric acid (H2SO4) is titrated with 38.65 mL of 0.100 M NaOH according to the following reaction: H2SO4 + 2 NaOH === 2 H2O + Na2SO4. What is the concentration of H2SO4?
A 25.00 mL sample of an unknown sulfuric acid solution is titrated with 29.84 mL of a sodium hydroxide solution with a concentration of 0.150 M NaOH. What is the concentration of the sulfuric acid solution? H.SO.(aq) + 2NaOH(aq) → Na2SO4 (aq) + 2 H2O(1) Show your work Final Answer
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Suppose you are titrating a sulfuric acid solution of unknown concentration with a sodium hydroxide solution according to the equation H2SO4 + 2NaOH + 2H2O + Na2SO4 If you require 28.52 mL of 0.904 M NaOH solution to titrate 209.1 mL of H2SO4 solution, what is the concentration of the H2SO4 solution? Type answer:
A 11.4 mL sample of 0.180 M sulfuric acid (H2SO4) is titrated with 0.250 M NaOH Calculate the volume, in milliliters, of NaOH solution that will be used.
1) A flask containing 450.0 mL of 0.500 M HBr was spilled on
the floor. How many grams of K2CO3 would you need to put on the
spill to neutralize the acid according to the following
reaction?
2 HBr (aq) + K2CO3 (s) => 2KBr (aq) + H2O (l)
2) Determine the molarity of an unknown NaOH solution if 25.00
mL of sodium hydroxide was titrated with 15.00 mL of a 1.500 M
sulfiric acid solution (H2SO4). (aOH= 40.00 g/mol...