Answer:
The concentration of NaOH in the final solution 0.0584 mole/lit
Explanation:
- [tex]moles of NaOH =[/tex] [tex]\frac{Weight}{Molecular weight}[/tex] [tex]=\frac{8.4}{40}=0.21 mole[/tex]
- 620 ml of aqueous 0.25 M NaOH [tex]=0.25X 620 = 0.155mole[/tex]
- Total moles = 0.21 + 0.155 = 0.365 moles
- 1.65 gallons = 3.785 lit x 1.65 = 6.245929 lit (∵ 1 gallon = 3.785 lit)
- [tex]Molarity =\frac{No. of moles}{Volume(lit)}[/tex]
So Molarity of the solution after mixing [tex]=\frac{0.365}{6.245929} = 0.0584 (M)[/tex]
∴ The concentration of NaOH in the final solution 0.0584 mole/lit
