What volume, in milliliters, of 0.54 M $Ca(OH)_2$ is needed to completely neutralize 241.4 mL of a .26 M $HI$ solution?

Question

What volume, in milliliters, of 0.54 M $Ca(OH)_2$ is needed to completely neutralize 241.4 mL of a .26 M $HI$ solution?

1 Answer

Impact of this question

9877 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2016-07-03T07:07:35

$Ca(OH)_2(aq) +2HI(aq)rarr CaI_2(aq) +2H_2O(l)$

Explanation:

$"Moles of HI"$ $=$ $241.4xx10^-3*Lxx0.26*mol*L^-1$ $=$ $0.063*mol*HI$

$0.0313*mol$ $Ca(OH)_2$ are required for equivalence. Now of course I could use this molar quantity to calulate the volume of calcium hydroxide required. However, there is one problem.

Calcium hydroxide is very sparingly soluble. I don't think you could make a $0.5*mol*L^-1$ solution of this beast (I might be wrong, but I am not going to go thru the calculation). This question should have been proposed with $NaOH$ solution

Science

Math

Humanities

... and beyond

What volume, in milliliters, of 0.54 M $Ca(OH)_2$ is needed to completely neutralize 241.4 mL of a .26 M $HI$ solution?

1 Answer

Explanation:

Related questions

Impact of this question

Science

Math

Humanities

... and beyond

What volume, in milliliters, of 0.54 M Ca(OH)_2Ca(OH)_2 is needed to completely neutralize 241.4 mL of a .26 M HIHI solution?

1 Answer

Explanation:

Related questions

Impact of this question

What volume, in milliliters, of 0.54 M $Ca(OH)_2$ is needed to completely neutralize 241.4 mL of a .26 M $HI$ solution?