Question

The molarity of $OH^{-}$ ion in the final solution, if $200ml$ of $8MHCl$ solution is mixed with $800ml$ of $2MCa\left(\right.OH\left(\left.\right)_{2}$ solution, is

• A. $0.08M$
• B. $1.6M$
• C. $3.2M$
• D. $0.16M$

Answer 1

Answer: (B)

$2HCl+Ca\left(\right.OH\left(\left.\right)_{2} \rightarrow \left(CaCl\right)_{2}+2H_{2}O$
initially $8\times \frac{200}{1000}$ $2\times \frac{800}{1000}$ $-$ $-$
moles $=1.6$ $=1.6$
Finally $1.6-\frac{1 . 6}{2}\Rightarrow 0.08$
$\left[\left(OH\right)^{-}\right]=\frac{\text{ moles of } \left(OH\right)^{-}}{\text{Volume of solution( } L \left.\right)}=\frac{2 \times 0 . 08}{1}=1.6M$ Ans.