pH of Ammonium Sulfide Solution What is the pH of a 0.100M aqueous solution of (
ID: 1082002 • Letter: P
Question
pH of Ammonium Sulfide Solution
What is the pH of a 0.100M aqueous solution of (NH4)2S?
An exact analytical solution to this question can be algebraically very complex, however we can use some chemical intuition to greatly simplify it.
Here is a method to approach this question.
Combine the above equations to get:
Now, since H2S is diprotic we need to briefly consider the second dissociation step:
Combine the above equations to get:
So let us consider only the first equilibrium between H2S and HS-
Since we have already guessed that the equlibrium position for this reaction will be to the right, let us set up our initial conditions correspondingly.
That is:
[H2S]0 = 0.00 M
[HS-]0 = 0.100 M
[NH3]0 = 0.100 M
[NH4+]0 = 0.100 M
I hope you can see that this is stoichiometrically equivalent to 0.100 M (NH4)2S?
Now, we expect the actual equilibrium position to be shifted slightly to the left. Let us say that the amount of this shift is x M.
Thus:
[H2S] = x
[NH3] = 0.100 + x
[HS-] = 0.100 - x
[NH4+] = 0.100 - x
The above reduces to a simple quadratic equation and can be solved accordingly.
Alternatively, if our assumptions were correct, then we might expect x << 0.100 M.
We could then approximate the expression as:
or
and
This expression already gives a pretty good approximation of x, but you can take the value and insert it back into the unsimplified expression and solve for x again to get a better estimate. You can do this repeatedly and will find that the solution for x rapidly converges on a value which is not much different from the initial estimate.
Now you can determine approximate final concentrations for the acid/base conjugate pairs involved. You can then take either of the individual acid or base dissociation reaction equilibria to solve for either [OH-] or for [H+]
If our assumptions were good then:
[H3O+][OH-] = 1.0×10-14 should hold approximately for the values determined above.
Try it and then determine the pH and enter the value below.
H2S(aq) + NH3(aq) HS(aq) + NH4+(aq) K = 1.8×102Explanation / Answer
[OH-] = K2[NH3]/ [NH4+] , [NH3] = 0.1+0.1/180 =0.100556
[NH4+] = 0.1-1/180= 0.0944
[OH-] = 1.8*10-5*0.1000556/0.0944=1.92*10-5
poH= -log (1.92/10^5)= 4.72
pH= 14-4.72= 9.28
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