MCQ
Molarity of $0.2\,N\,\,{H_2}S{O_4}$ is
- A$0.2$
- B$0.4$
- C$0.6$
- ✓$0.1$
i.e., $0.2=$ molarity $\times $ $ 2$
Molarity $ = 0.2/2 = 0.1$
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$S{O_2}C{l_2}(g) \rightleftharpoons S{O_2}(g) + C{l_2}(g)$
$CO(g) + C{l_2}(g) \rightleftharpoons COC{l_2}(g)$
On adding more $SO_2$ at equilibrium what will happen ?
