Answer:
0.444 mol/L
Explanation:
First step is to find the number of moles of oxalic acid.
n(oxalic acid) = [tex]\frac{0.5g}{90.03 g/mol} = 5.5537*10^{-3} mol\\[/tex]
Now use the molar ratio to find how many moles of NaOH would be required to neutralize [tex]5.5537*10^{-3} mol\\[/tex] of oxalic acid.
n(oxalic acid): n(potassium hydroxide)
1 : 2 (we get this from the balanced equation)
[tex]5.5537*10^{-3} mol\\[/tex] : x
x = 0.0111 mol
Now to calculate what concentration of KOH that would be in 25 mL of water:
[tex]c = \frac{number of moles}{volume} = \frac{0.0111}{0.025} = 0.444 mol/L[/tex]
