Answer :
Answer:
[tex]V_{conc}=3.7mL[/tex]
Explanation:
Hello,
In this case, a problem is about dilution, which is a process wherein from a concentrated acid, a less concentrated solution is obtained via adding an extra volume. In such a way, since the required acid has a pH of 1.50, it means that it has a hydrogen ions concentration of:
[tex][H]^+=10^{-pH}=10^{-1.50}=0.0316M[/tex]
Thus, since nitric acid is a strong acid, the concentration of hydrogen ions, equals the concentration is the acid due to complete dissociation, hence:
[tex][H]^+=[HNO_3]=0.0316M[/tex]
Thereby, it is concentration of the diluted acid. Now, as during a dilution process the moles of the acid are kept constant we obtain:
[tex]n_{concentrated}=n_{diluted}[/tex]
That in terms of molarities and volume result:
[tex]V_{dil}M_{dil}=V_{conc}M_{conc}[/tex]
Thus, solving for the used volume of concentrated acid, we obtain:
[tex]V_{conc}=\frac{V_{conc}M_{dil}}{M_{conc}} =\frac{700mL*0.0316M}{6.0M} \\\\V_{conc}=3.7mL[/tex]
Best regards.