PracticeQuiz content is free on an ad-supported model.

Unfortunately, we can't support ad blocker usage because of the impact on our servers. If you'd like to continue, please disable your ad blocker and reload page.

Reload page

CLEP Chemistry

Category - Multiple Choice

Start a Study Session Sign up for Question of the Day

In the following titration reaction:

I₂ + 2 S₂O₃- --> S₄O₆-2 + 2I^-

starch is used as an indicator. When starch is exposed to iodine (I₂) it is a deep blue color. When the iodine is reduced to iodide (I^-), the solution will turn clear. Assume that it takes 100mL of 0.500M S₂O₃- to neutralize 50mL of I₂(indicated by the solution turning clear). What was the original concentration of iodine?

0.10M
0.25M
0.5M
0.6M
1.0M

Explanation

Answer: C. Solution is as follows:

V_S2O3 = 100mL = 0.1 L
[S₂O₃] = 0.500M
V_I2 = 50mL = 0.05L
[I₂] = ??

moles of S₂O₃ = 0.500M * 0.1L = 0.05mol S₂O₃
from the mole ratio in the balanced chemical equation, 1mol I2 = 2mol S₂O₃

0.05mol S₂O₃ * 1mol I2/2mol S₂O₃ = 0.025mol I2

M=n/V which means the concentration of iodine is 0.025mol/0.05L = .5M

Was this helpful? Upvote!

Start a Study Session Sign up for Question of the Day

CLEP Chemistry

Top questions

Related questions

Most popular on PracticeQuiz

Ad-Blocker not supported

CLEP Chemistry

Top questions

Related questions

Most popular on PracticeQuiz