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#1
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A sample of 25.0ml of 0.10 M lactic acid (HC3H5)3 , pKa =3.850 is titrated with 0.10 NaOH aquation solution. What is the volume of the base needed to reach equivalence point?what is the Ph at the equivalance point? help please!!!!!!!!!
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#2
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Once you will sove the formic acid question this one will be a breeze
![]() Besides, these calculations are descibed in the pH cheat sheet, you just have to understand what you have to calculate. |
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#3
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Volume of acid solution => moles of acid => moles of base => volume of base is the process for the first part. The second part requires some equation; can't remember off the top of my head. Henderson-Hasselbach?
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#4
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Just use some bromthymol blue as a Ph indicator.
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#5
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Use the indicator to know when you've reached the equivalence point. The use: pH=pKa + log([H+]/[HA](undisociated acid))
I believe that is how you do it. |
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#6
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Quote:
Check titration curve calculation lecture. |
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