$100 \, mL$ of $0.04 \, N \, HCl$ aqueous solution is mixed with $100 \, mL$ of $0.02 \, N \, NaOH$ solution. The $pH$ of the resulting solution is

  • A
    $1$
  • B
    $1.7$
  • C
    $2$
  • D
    $2.3$

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How many litres of water must be added to $1 \ L$ of an aqueous solution of $HCl$ with a $pH$ of $1$ to create an aqueous solution with $pH$ of $2$?

Select the correct option that has the same $pH$ value.
$(1) 0.005 \, M \, H_2SO_4$
$(2) 0.1 \, M \, Na_2SO_4$
$(3) 10^{-2} \, M \, NaOH$
$(4) 0.01 \, M \, HCl$

Given $pH$ of a solution $A$ is $3$ and it is mixed with another solution $B$ having $pH$ $2$. If both are mixed in equal volumes,then the resultant $pH$ of the solution will be

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The $pH$ of a $0.001\,M\,NaOH$ solution will be:

Calculate the $pH$ of $0.0035 \ M \ Ba(OH)_2$ solution.

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