The tendency of $\mathrm{BF}_{3}, \mathrm{BCl}_{3}$ and $\mathrm{BBr}_{3}$ to behave as Lewis acid decreases…
- $\mathrm{BCl}_{3}>\mathrm{BF}_{3}>\mathrm{BBr}_{3}$
- $\mathrm{BBr}_{3}>\mathrm{BCl}_{3}>\mathrm{BF}_{3}$
- $\mathrm{BBr}_{3}>\mathrm{BF}_{3}>\mathrm{BCl}_{3}$
- $\mathrm{BF}_{3}>\mathrm{BCl}_{3}>\mathrm{BBr}_{3}$
Solution
When the halide is more electronegative the interelectronic repulsion increases making the molecule difficult to accept a lone pair. Size of halide also behaves in the same way. Also the degree of hydrolysis increases from fluorine to iodine,so the lewis acidic character increases in the same order,
So,the order of lewis acidity is $\mathrm{BBr}_{3}>\mathrm{BCl}_{3}>$ $\mathrm{BF}_{3}$
Asked in: JEE-TOPICTESTS-CHEMISTRY
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