Respuesta :
Answer:
2.90
Explanation:
Any buffer system can be described with the reaction:
[tex]HA~->~H^+~+~A^-[/tex]
Where [tex]HA[/tex] is the acid and [tex]A^-[/tex] is the base. Additionally, the calculation of the pH of any buffer system can be made with the Henderson-Hasselbach equation:
[tex]pH=pKa~+~Log\frac{[A^-]}{[HA]}[/tex]
With all this in mind, we can write the reaction for our buffer system:
[tex]HF~->~H^+~+~F^-[/tex]
In this case, the acid is [tex]HF[/tex] with a concentration of 0.413 M and the base is [tex]F^-[/tex] with a concentration of 0.237 M. We can calculate the pKa value if we do the "-Log Ka", so:
[tex]pKa~=~-Log(7.2X10^-^4)=~3.14[/tex]
Now, we can plug the values into the Henderson-Hasselbach
[tex]pH=~3.14~+~Log(\frac{[0.237~M]}{[0.413~M]})~=~2.90[/tex]
The pH value would be 2.90
I hope it helps!
