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The bond dissociation energy of B-F in B...

The bond dissociation energy of `B-F` in `BF_(3)` is `646 kJ mol^(-1)` whereas that of `C-F` in `CF_(4)` is `515 kJ mol^(-1)`. The correct reason for higher `B-F` bond dissociation energy as compared to that of `C-F` in `CF_(4)` is

A

Lower degreee of `p pi-p pi` interaction between `B` and `F` `BF_(3)` than that between `C` and `F` in `CF_(4)`

B

Significant `p pi-p pi` interaction between `B` and `F` in `BF_(3)` whereas there is no possibility of such interaction between `C` and `F` in `CF_(4)`

C

Smaller size of `B`-atoms as compared to that of `C`-atom and the stronger bond between `B` and `F` in `BF_(3)` as compared to that between `C` and `CF_(4)`

D

Lewis acid character pf boron trihalides is as: `B Br_(3) gt BCl_(3) gt BF_(3)`

Text Solution

Verified by Experts

The correct Answer is:
B:

Due to `p pi-p pi` back bonding , `BF_(3)` is the strongest Lewis acid as compared to `BCl_(3)` and `B Br_(3)`. `B-F` bond is shorter in length causing it to more stronger.
In `CF_(4)`, there is no such back bonding possible as there is no vacant `p`-orbital in cation.
d. Due to strong `p pi-p pi` back bonding in `BF_(3), (2p-2p` overlap) its electron deficiency is less, so it is the weakest Lewis acid. Hence, the order of Lewis acid is
`B Br_(3) gt B Cl_(3) gt BF_(3)`
`(2p-4p)(2p-3p)(2p-2p)` overlap.
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