Q.Describe the shapes of BF3 and BH4–. Assign the hybridisation of boron in these species.
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Boron forms three sigma bonds to three F atoms using hybrid orbitals; there are no lone pairs on boron, so by VSEPR the three bond pairs arrange themselves symmetrically in a plane at to minimise repulsion, giving a trigonal planar shape. The unhybridised orbital (perpendicular to the plane) remains empty.
Step 2 - BH4-
Starting from (also trigonal planar, , with an empty orbital), a hydride ion donates its electron pair into that empty orbital, forming a fourth B-H bond. Boron now rehybridises to (four bond pairs, no lone pairs), and by VSEPR these arrange tetrahedrally, giving a tetrahedral shape with bond angles of .
Step 3 - The underlying pattern …
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