Question #bf279

1 Answer
Stefan V.
Dec 6, 2016

"pH" = 5.7pH=5.7

Explanation:

!! VERY LONG ANSWER !!

Your ultimate goal here is to figure out how much weak acid, "HA"HA, and how much conjugate base, "A"^(-)A, you have in the target solution.

You already know that both buffers have

["HA"] = "0.5 M"[HA]=0.5 M

so your starting point here will be to figure out the concentration of "A"^(-)A in buffer "X"X and in buffer "Y"Y.

To do that, use the Henderson - Hasselbalch equation, which for a weak acid - conjugate base buffer takes the form

color(blue)(ul(color(black)("pH" = "p"K_a + log( (["conjugate base"])/(["weak acid"]))))

Calculate the "p"K_a of the acid by using

color(blue)(ul(color(black)("p"K_a = - log(K_a))))

In your case, you will have

"p"K_a = - log(1.0 * 10^(-5)) = 5.0

Now, calculate the concentration of "A"^(-) in the two buffers

color(white)(a)

  • ul("For buffer X")

This buffer has "pH" = 4.0, which means that you get

4.0 = 5.0 + log((["A"^(-)]_"X")/(["HA"]))

Rearrange to solve for ["A"^(-)]_"X"/(["HA"])

log(["A"^(-)]_"X"/(["HA"])) = -1.0

10^log(["A"^(-)]_"X"/(["HA"])) = 10^(-1.0)

This will get you

["A"^(-)]_"X"/(["HA"]) = 0.10

which results in

["A"^(-)]_"X" = 0.10 * ["HA"]

["A"^(-)]_"X" = 0.10 * "0.5 M" = "0.050 M" " "color(orange)((1))

color(white)(a)

  • ul("For buffer Y")

This buffer has "pH" = 6.0, which means that you get

6.0 = 5.0 + log((["A"^(-)]_"Y")/(["HA"]))

Rearrange to solve for ["A"^(-)]_"Y"/(["HA"])

log(["A"^(-)]_"Y"/(["HA"])) = 1.0

This will get you

["A"^(-)]_"Y"/(["HA"]) = 10

which results in

["A"^(-)]_"Y" = 10 * ["HA"]

["A"^(-)]_"Y" = 10 * "0.5 M" = "5.0 M" " "color(orange)((2))

Now, you are told that you must mix equal volumes of buffer "X" and of buffer "Y". Right from the start, you could say that because the volume doubles, the concentration of the weak acid remain unchanged. color(purple)(("*"))

That is the case because you're essentially doubling the number of moles of weak acid and the volume of the solution.

If you take x "L" to be the volume of the two buffers, and using color(orange)((1)) and color(orange)((2)), you can say that buffer "X" will contain

x color(red)(cancel(color(black)("L buffer"))) * "0.5 moles HA"/(1color(red)(cancel(color(black)("L buffer")))) = (0.5 * x)" moles HA"

x color(red)(cancel(color(black)("L buffer"))) * "0.050 moles A"^(-)/(1color(red)(cancel(color(black)("L buffer")))) = (0.050 * x)" moles A"^(-)

Similarly, buffer "Y" will contain

x color(red)(cancel(color(black)("L buffer"))) * "0.5 moles HA"/(1color(red)(cancel(color(black)("L buffer")))) = (0.5 * x)" moles HA"

x color(red)(cancel(color(black)("L buffer"))) * "5.0 moles A"^(-)/(1color(red)(cancel(color(black)("L buffer")))) = (5.0 * x)" moles A"^(-1)

The resulting solution, which has a volume of

xcolor(white)(.)"L" + xcolor(white)(.)"L" = 2xcolor(white)(.)"L"

will contain

{((0.5x)" moles" + (0.5x)" moles" = x" moles HA"), ((0.050x)" moles" + (5.0x)" moles" = 5.05x" moles A"^(-)) :}

The concentrations of the two species in the resulting solution will be

["HA"] = (color(red)(cancel(color(black)(x)))"moles")/(2color(red)(cancel(color(black)(x)))"L") = "0.5 M" -> the concentration remained unchanged, as predicted in color(purple)(("*"))

["A"^(-)] = (5.05color(red)(cancel(color(black)(x)))"moles")/(2color(red)(cancel(color(black)(x)))"L") = "2.525 M"

Finally, use the Henderson - Hasselbalch equation to find the "pH" of the resulting solution

"pH" = 5.0 + log( (2.525 color(red)(cancel(color(black)("M"))))/(0.5color(red)(cancel(color(black)("M"))))) = color(darkgreen)(ul(color(black)(5.7)))

The answer is rounded to one decimal place, since that is how many sig figs you have for the concentration of the weak acid.

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