Answer:
[tex]V_{LiOH}=21.8mL[/tex]
Explanation:
Hello,
In this case, during titration at the equivalence point, we find that the moles of the base equals the moles of the acid:
[tex]n_{LiOH}=n_{HBr}[/tex]
That it terms of molarities and volumes we have:
[tex]M_{LiOH}V_{LiOH}=M_{HBr}V_{HBr}[/tex]
Next, solving for the volume of lithium hydroxide we obtain:
[tex]V_{LiOH}=\frac{M_{HBr}V_{HBr}}{M_{LiOH}} =\frac{0.0759M*25.0mL}{0.0896M} \\\\V_{LiOH}=21.8mL[/tex]
Best regards.
