How would you prepare 72.5 g of an aqueous solution that is 5.00% potassium iodide, KI, by mass?

1 Answer
Stefan V.
Apr 30, 2017

Here's how you can do that.

Explanation:

For starters, you should know that a solution's percent concentration by mass. "m/m %"m/m %, is used to denote the number of grams of solute present for every "100 g"100 g of solution.

In your case, a "5.00% m/m"5.00% m/m solution will contain "5.00 g"5.00 g of potassium iodide, the solute, for every "100 mL"100 mL of solution.

Now, you know that the solution must have a total mass of "72.5 g"72.5 g. You can use the target percent concentration by mass to figure out how many grams of potassium iodide must be present in the target solution

72.5 color(red)(cancel(color(black)("g solution"))) * "5.00 g KI"/(100color(red)(cancel(color(black)("g solution")))) = "3.63 g KI"

You can thus say that the solution can be prepared by dissolving "3.63 g" of potassium iodide in

"72.5 g " - " 3.63 g" = "68.87 g"

of water, the solvent.

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