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physical chem question!! (1 Viewer)

thejesster

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help!! i am preparing for my chem exam next week and found a question which i can't make head nor tail of.....

a 0.100mol/L NaOH solution is used to titrate 50mL of 0.100mol/L CH3COOH. Calculate the pH of the solution after 40mL of NaOH is added [Ka = 1.8 x 10^(-5)]

please, if anyone knows, tell me how to do it!...
thank you!..
 
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is the pH = 12 ??? I always seems to get the wrong answer, so let me no if it is right so i can paste the solution up
 

Trebla

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Ka is the acid dissociation constant (dissociation constants are covered in Industrial Chemistry option)

If an acid of the form HA dissociates in equilibrium as:

HA <--> H+ + A-

then Ka = [H+] [A-] / [HA]
where [...] means concentration

I'm assuming that the given Ka is of the acetic acid.
You know that in equilibrium:
CH3COOH <--> CH3COO- + H+

So Ka = [H+] [CH3COO-] / [CH3COOH]

You know that [CH3COOH] = 0.1 M and Ka = 1.8 x 10-5

This means that:
[H+] [CH3COO-] = 1.8 x 10-5 x 0.1
= 1.8 x 10-6

Since the number of moles of H+ and CH3COO- are equal (due to their stoichiometric ratio) for the same volume, then their concentrations must be equal, hence
[H+]2 = 1.8 x 10-6

Now all you do is take the square root to find [H+] and this is the concentration of H+ which reacts with the NaOH in the titration. Calculate the [H+] after the neutralisation, and then this should help calculate pH.

Not sure if this is fully correct because it has assumed the equilibrium is undisturbed throughout the reaction i.e. H+ concentration before neturalisation does not change, which of course is not true.
 
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oh if the question is related to industry chem hehe no idea then, i thought it was an acidic eninvoment question k
 
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