Question

$N{a}_{2}Cr{O}_4\stackrel{A}{\to }N{a}_{2}S{O}_4+\underset{\text{Orange}}{B}\to \underset{\text{Orange Red}}{C}+NaCl$
A, B and C respectively are:

• A. $K_{2}S{O}_4,K_{2}Cr{O}_4$ and $K_{2}C{r}_2{O}_7$
• B. $K_{2}S{O}_4,N{a}_{2}Cr{O}_4$ and $N{a}_{2}C{r}_2{O}_7$
• C. $H_{2}S{O}_4,NaCr{O}_2$ and $K_{2}C{r}_2{O}_7$
• D. $H_{2}S{O}_4,N{a}_{2}C{r}_2{O}_7$ and $K_{2}C{r}_2{O}_7$

Answer 1

Answer: (D)

This reaction is the method of preparation of $K_{2}C{r}_2{O}_7$
$2N{a}_{2}Cr{O}_4+H_{2}S{O}_4\to \underset{\text{Sodium dichromate (orange)}}{N{a}_{2}C{r}_2{O}_7+N{a}_{2}S{O}_4}+H_{2}S{O}_4$
$2N{a}_{2}C{r}_2{O}_7+2KCl\to \underset{\stackrel{\text{Potassium dichromate}}{\text{(orange red)}}}{K_{2}C{r}_2{O}_7}+2NaCl$