I've been trying at this problem for awhile and I don't know if its me or the book. Most likely me, since I've tried a couple of different problems and I couldn't get the answer they had.
Anyways the total question is here:
Calculate the pH of a solution that is made up to contain the following analytical concentrations: 0.0500 M in H3PO4 and 0.0200 M in NaH2PO4. What I've done is below the line:
--------------------------------------
H
3PO
4 + H
2O [
H
2PO
4- + H
3O
+Ka1 = 7.11E(-3)
Where 7.11E(-3) = H
3O
+H
2PO
4- / H
3PO
4= 7.11E(-3) = (0.0200 + H
3O
+) H
3O
+ / (O.O500 - H
3O
+0 = [H
3O
+]
2 + (7.11E(-3) + 0.0200)H
3O
+ - (7.11E(-3)(0.0500)
-------------------------------------------
Now where I get stuck is doing the darn quadratic equation on this...What I've done on this is used the standard equation:
-b (+-) (b
2 - 4ac)
1/2 / 2a
and I set a = 1 b = (7.11E(-3) + 0.0200) c = (7.11E(-3)(0.0500)
And the answer is suppose to be H
3O
+ = 9.67E(-3)
Which every time I get something completely different. And like I said I've tried on a few different problems to use this equation but it doesn't seem to work.
I always tried using Chembuddy and the only equation I could find that would seem similar was
- Ka + (Ka
2 + 4 Ka Ca)
1/2 / 2
But plugged in that in and it didn't even give a close answer as well.
Anyone can see what I'm doing wrong or know how to do this sort of problem properly? I would be very thankful.
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Topic: Calculating pH with Quadratic: (Read 8909 times)