Given: A mixture of CH3COOH and HCl of volume 40mL is titrated with 0.1M NaOH conductometrically.
Find: The correct statement among the given options.
In a conductometric titration of a strong acid and a weak acid with a strong base, the strong acid HCl is neutralised first. This is because highly mobile H+ ions are replaced by less mobile Na+ ions, so conductance decreases first.
Thus, region A-B corresponds to neutralisation of HCl:
HCl+NaOH→NaCl+H2O
From the graph, complete neutralisation of HCl occurs at point B, where volume of NaOH used is 2.0mL.
Moles of NaOH used for HCl:
0.1×10002.0=0.0002mol
Therefore, moles of HCl in the original mixture are also:
0.0002mol
Concentration of HCl in 40mL=0.04L:
0.040.0002=0.005M
Now, from B-C, CH3COOH is neutralised:
CH3COOH+NaOH→CH3COONa+H2O
The NaOH used for CH3COOH is:
(5.0−2.0)mL=3.0mL
So its concentration is:
0.040.1×3.0/1000=0.0075M
Hence:
- Statement A is incorrect.
- Statement B is correct.
- Statement C is incorrect because HCl is neutralised first.
- Statement D is incorrect because point B, not C, indicates complete neutralisation of HCl.
Therefore, the correct option is B.