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NCERT Exemplar · Q10

Q.Acidity of BF3 can be explained on the basis of which of the following concepts?

(i) Arrhenius concept
(ii) Bronsted Lowry concept
(iii) Lewis concept
(iv) Bronsted Lowry as well as Lewis concept.
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BFX3\ce{BF3} has no protons to donate, so only the Lewis concept (electron-pair acceptance) explains its acidity. The answer is (iii).

The question asks which acid–base framework can account for the acidic behavior of boron trifluoride. To answer it, we need to understand what each concept requires of an acid and whether BFX3\ce{BF3} meets those requirements.

The three acid–base concepts

Arrhenius (1884) defined acids as substances that produce HX+\ce{H+} ions in aqueous solution. This is the most restrictive view: no hydrogen, no acid.

Brønsted–Lowry (1923) broadened the definition: an acid is a proton (HX+\ce{H+}) donor, a base is a proton acceptor. This freed the theory from water but still requires the acid to possess a transferable proton.

Lewis (1923) took a fundamentally different approach: an acid is an electron-pair acceptor, a base is an electron-pair donor. This definition is the most general and includes species with no hydrogen at all.

Why BFX3\ce{BF3} is a Lewis acid

  1. Structure of BFX3\ce{BF3}: Boron has three valence electrons and forms three covalent bonds with fluorine. The molecule is trigonal planar, and boron has only six electrons in its valence shell—two short of an octet.

  2. Electron deficiency: Because boron lacks a complete octet, it has a vacant pp orbital that can accept an electron pair. When BFX3\ce{BF3} encounters a species with a lone pair (a Lewis base), it accepts that pair to form a coordinate covalent bond:

BFX3+:NHX3→FX3B−NHX3\ce{BF3 + :NH3 -> F3B-NH3}

Here ammonia donates its lone pair into the empty orbital on boron. …

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