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Question: Given, 1cc of 0.1 N HCl is added to the 999 cc solution of NaCl. The pH of the resulting solution wi...

Given, 1cc of 0.1 N HCl is added to the 999 cc solution of NaCl. The pH of the resulting solution will be:
(a) 7
(b) 3
(c) 4
(d) 1

Explanation

Solution

First , of all we will have to calculate the volume of solution and after that, we will calculate the normality of HCl in that solution by applying the formula as: Normality=equivalent weight×volumeNormality=equivalent\text{ }weight\times volume and then we can easily find the pH through this and NaCl will not contribute towards it as it is a salt. Now, solve it.

Complete answer:
First of all, let’s discuss what is pH. By the term pH we mean that it gives us the measure of acid/base strength of any solution. pH scale ranges from 0-14, 7 is neutral, below 7 it represents acidic and above 7 it represents basic.
Now considering the statement;
Volume of the HCl solution= 1cc ( given)
=1 cm3 =0.001 L ( 1L=1000 cm3) \begin{aligned} & =1\text{ c}{{\text{m}}^{3}} \\\ & =0.001\text{ L ( 1L=1000 c}{{\text{m}}^{3}}) \\\ \end{aligned}
Normality of the HCl = 0.1 N
Now, as we know that;
Normality=equivalent weight×volumeNormality=equivalent\text{ }weight\times volume ------------(1)
From this we can easily calculate the equivalent weight of the HCl as;
equivalent weight=volumenormality  =0.10.001  = 0.0001 \begin{aligned} & equivalent\text{ }weight=\dfrac{volume}{normality} \\\ & \text{ =}\dfrac{0.1}{0.001} \\\ & \text{ = 0}\text{.0001} \\\ \end{aligned}
Now, we know that Volume of NaCl solution= 999c (given)
=999 cm3 =0.999 L ( 1L=1000 cm3) =1 L \begin{aligned} & =999\text{ c}{{\text{m}}^{3}} \\\ & =0.999\text{ L ( 1L=1000 c}{{\text{m}}^{3}}) \\\ & =1\text{ L} \\\ \end{aligned}
So, the total volume of the solution is ;
 Total volume= volume of NaCl + volume of HCl  = 1+ 0.001 L  = 1.001 L \begin{aligned} & \text{ Total volume}=\text{ volume of NaCl + volume of HCl} \\\ & \text{ = 1+ 0}\text{.001 L} \\\ & \text{ = 1}\text{.001 L} \\\ \end{aligned}
Now, we will calculate the normality of HCl solution in 1.001 L by using the normality formula from equation(1) , we get;
Normality=0.0001×1.001  = 0.0001 N \begin{aligned} & Normality=0.0001\times 1.001 \\\ & \text{ = 0}\text{.0001 }N \\\ \end{aligned}
Now, we will calculate the pH of the solution by using the formula as;
pH=log[H+]pH=-\log [{{H}^{+}}]
Since, NaCl is a salt and so, it will not be added while calculating the pH of the solution and only HCl will contribute towards it.
Then, pH is;
pH=log[H+]  = -log(0.0001)  =-log 104+log1  = -(-4)+0 ( log 10=1 ,log 1=0)  =4 \begin{aligned} & pH=-\log [{{H}^{+}}] \\\ & \text{ = -log(0}\text{.0001)} \\\ & \text{ =-log 1}{{\text{0}}^{-4}}+\text{log1} \\\ & \text{ = -(-4)+0 ( log 10=1 ,log 1=0)} \\\ & \text{ =4} \\\ \end{aligned}
Hence, 1cc of 0.1 N HCl when added to the 999 cc solution of NaCl ,the pH of the resulting solution is 4.

So, option (c) is correct.

Note:
The pH of acid must always be less than 7 and in case, the acid is more diluted then the concentration of hydrogen ion of the water molecules is also considered while calculating the pH.