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Question

100mL of 0.1MHCl is taken in a beaker and to it, 100mL of 0.1MNaOH is added in steps of 2mL and the pH is continuously measured. Which of the following graphs correctly depicts the change in pH?


A

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B

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C

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D

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Solution

The correct option is C


Explanation for the correct option:

C)

Step 1: Given data:

Volume of HCl, V1=100mL

Volume of NaOH, V2=100mL

Molarity of HCl, M1=0.1M

Molarity of NaOH, M2=0.1M

Step 2: Plot the graph obtained initially when only HCl is present:

  1. Initially, in the beaker, only HClis present.
  2. The pH<7Acidicsolution

Step 3: Plot the graph obtained when HClis titrated against NaOH:

  1. When 2mL of NaOH is added continuously, the pH increases.
  2. As the concentration of both HCland NaOH is the same, an equivalent point can be observed.
  3. At equivalent point, both HCland NaOH are in equal volumes.
  4. The pH=7Neutralsolution
  5. The graph at this point is as follows;

Step 4: Plot the graph obtained after reaching the equivalence point:

  1. If NaOH is added even after the equivalence point, the pH value still increases and the graph obtained is as follows;

Explanation for the incorrect options:

A)

  1. When equal concentrations of strong acid and strong base are present, the graph at first remains constant, then increases and again remains constant after reaching some point.
  2. But here the graph shown is increasing from the initial point which is incorrect.

B)

When strong acid and strong base which are having equal concentrations are added, the pH=7Neutralsolution will be obtained at the equivalence point only.

D)

  1. According to the given data, initially in the beaker HClis present and then NaOH is added continuously.
  2. But in this graph, it is showing that initially the volume of NaOH is more and volume of HCl is increasing gradually, which is incorrect.

Hence, option C is the correct answer.


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