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NCERT Exemplar · Q36

Q.A reaction between ammonia and boron trifluoride is given below:
:NH3 + BF3 → H3N:BF3
Identify the acid and base in this reaction. Which theory explains it? What is the hybridisation of B and N in the reactants?

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Ammonia acts as the Lewis base (electron-pair donor) and boron trifluoride as the Lewis acid (electron-pair acceptor). The Lewis acid-base theory explains this coordinate bond formation. In the reactants, nitrogen in NHX3\ce{NH3} is sp3sp^3 hybridised while boron in BFX3\ce{BF3} is sp2sp^2 hybridised.

The key to understanding this reaction lies in recognizing that not all acid-base reactions involve proton transfer. When ammonia and boron trifluoride combine, no HX+\ce{H+} changes hands. Instead, something more fundamental happens: a lone pair of electrons finds a new home.

Why Lewis Theory?

The Brønsted-Lowry definition (acids donate protons, bases accept them) cannot explain this reaction because boron trifluoride has no protons to give. Gilbert N. Lewis broadened the concept: an acid is any species that accepts an electron pair, while a base is any species that donates an electron pair. This definition encompasses proton-transfer reactions and extends far beyond them.

In :NHX3+BFX3→HX3N:BFX3\ce{:NH3 + BF3 → H3N{:}BF3}, the nitrogen atom in ammonia carries a lone pair of electrons. Boron in BFX3\ce{BF3} has only six valence electrons around it—two short of an octet. The lone pair on nitrogen moves into the empty orbital on boron, forming a coordinate covalent bond (also called a dative bond, shown as N→B\ce{N→B}).

Identifying Acid and Base

  1. Ammonia (NHX3\ce{NH3}) is the Lewis base. Nitrogen has five valence electrons: three form bonds with hydrogen atoms, leaving one lone pair. This lone pair is available for donation. When ammonia donates this pair to boron, it acts as an electron-pair donor.

  2. Boron trifluoride (BFX3\ce{BF3}) is the Lewis acid. Boron has three valence electrons, all used in bonding with three fluorine atoms. The resulting molecule has only six electrons around boron—an electron-deficient species. Boron accepts the lone pair from nitrogen to complete its octet, acting as an electron-pair acceptor.

Note

The colon notation :NHX3\ce{:NH3} emphasizes the lone pair on nitrogen that participates in bond formation. The product HX3N:BFX3\ce{H3N{:}BF3} shows this pair now shared between N and B.

Hybridisation in the Reactants

Understanding hybridisation requires examining the geometry and bonding in each molecule.

Nitrogen in NHX3\ce{NH3}

  1. Nitrogen has the electronic configuration 1s2 2s2 2p31s^2 \, 2s^2 \, 2p^3. To form three equivalent bonds with hydrogen and accommodate one lone pair, nitrogen undergoes sp3sp^3 hybridisation.

  2. Four sp3sp^3 hybrid orbitals arrange themselves tetrahedrally. Three of these orbitals overlap with hydrogen 1s1s orbitals to form three N−H\ce{N-H} sigma bonds. The fourth sp3sp^3 orbital holds the lone pair.

  3. The molecular geometry is trigonal pyramidal (the electron geometry is tetrahedral, but we describe shape by atom positions only). The bond angle is approximately 107°107°, slightly compressed from the ideal tetrahedral 109.5°109.5° because the lone pair repels bonding pairs more strongly.

Boron in BFX3\ce{BF3}

  1. Boron has the electronic configuration 1s2 2s2 2p11s^2 \, 2s^2 \, 2p^1. In BFX3\ce{BF3}, boron forms three bonds with fluorine atoms. To create three equivalent bonding orbitals, boron undergoes sp2sp^2 hybridisation. …

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