Ans: Volume of stock H2SO4 required = 6.94 ml
Given:
Concentration of stock H2SO4 solution M1 = 18.0 M
Concentration of the final H2SO4 solution needed M2 = 2.50 M
Final volume of H2SO4 needed, V2 = 50.0 ml
To determine:
Volume of stock needed, V1
Explanation:
Use the dilution relation:
[tex]M1V1 = M2V2\\\\V1 = \frac{M2V2}{M1} \\\\V1 = \frac{2.50 M * 50.0 ml}{18.0 M} = 6.94 ml[/tex]
Hello!
In a school’s laboratory, students require 50.0 mL of 2.50 M H2SO4 for an experiment, but the only available stock solution of the acid has a concentration of 18.0 M. What volume of the stock solution would they use to make the required solution?
We have the following data:
M1 (initial molarity) = 2.50 M (or mol/L)
V1 (initial volume) = 50.0 mL → 0.05 L
M2 (final molarity) = 18.0 M (or mol/L)
V2 (final volume) = ? (in mL)
Let's use the formula of dilution and molarity, so we have:
[tex]M_{1} * V_{1} = M_{2} * V_{2}[/tex]
[tex]2.50 * 0.05 = 18.0 * V_{2}[/tex]
[tex]0.125 = 18.0\:V_2[/tex]
[tex]18.0\:V_2 = 0.125[/tex]
[tex]V_2 = \dfrac{0.125}{18.0}[/tex]
[tex]V_2 \approx 0.00694\:L \to \boxed{\boxed{V_2 \approx 6.94\:mL}}\:\:\:\:\:\:\bf\green{\checkmark}[/tex]
Answer:
The volume is approximately 6.94 mL
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