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Question: Answered & Verified by Expert
25 mL of household bleach solution was mixed with 30 mL of 0.50 M KI and 10 mL of 4 N acetic acid. In the titration of the liberated iodine, 48 mL of 0.25 N Na2S2O3 was used to reach the end point. The molarity of the household bleach solution is
ChemistryRedox ReactionsJEE Main
Options:
  • A 0.24 M
  • B 0.48
  • C 0.024 M
  • D 0.96 M
Solution:
2546 Upvotes Verified Answer
The correct answer is: 0.24 M
H2O2Bleach25 ml+2I-0.5M30 ml+2H+(from CH3COOH)4 N(10 ml)I2 +2H2O ...(i)

I2+2Na2S2O30.25 N(48 ml)Na2S4O6+2NaI ...(ii)

m. mol of I2=12 (m. Moles of Na2S2O3 )

=12×(0.25×48)=6 m.mol

Using equation (i)

1 m. Mol of I21 m. Mol of H2O2

m.mol of H2O2=6 m.mol

Molarity of H2O2=625=0.24M

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