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What volume of the stock solution (Part A: 0.753 M) would contain the number of moles present in the diluted solution (Part B:0.120mol)? Express your answer with the appropriate units.

User Nadjib Mami
by
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1 Answer

19 votes
19 votes

Answer:

0.159 L.

Step-by-step explanation:

Remember that the formula of molarity is the following:


Molarity\text{ \lparen M\rparen=}\frac{moles\text{ of solute}}{liters\text{ of solution}}=(mol)/(L).

As we have the concentration (molarity) of the stock solution (0.753 M), and the number of moles present in the diluted solution (0.120 mol), we just have to solve for 'liters of solution' and replace the given data:


\begin{gathered} liters\text{ of solution=}\frac{moles\text{ of solute}}{molarity}, \\ liters\text{ of solution=}\frac{0.120\text{ mol}}{0.753\text{ M}}, \\ liters\text{ of solution=0.159 L.} \end{gathered}

The answer would be that the volume is 0.159 L.

User Claudehenry
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