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Q.Write conjugate bases for the following: a) HF b) H2SO4 c) H2O d) NH3 e) HCO3^-

Jharkhand JacJAC Intermediate Board (1st Year) 2022Subjective· 5mImportance★★★★★
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The conjugate base of any Bronsted-Lowry acid is what remains after the acid donates (loses) one H+ ion.

By the Bronsted-Lowry concept, an acid is a proton (H+) donor, and its conjugate base is the species left behind after it has donated that proton (the conjugate base can, in principle, accept a proton back to re-form the acid).

a) HF (hydrofluoric acid): loses one H+ -> F- (fluoride ion) is the conjugate base.

b) H2SO4 (sulphuric acid): loses one H+ (its first, more easily ionisable proton) -> HSO4- (hydrogen sulphate / bisulphate ion) is the conjugate base.

c) H2O (water, acting as an acid here): loses one H+ -> OH- (hydroxide ion) is the conjugate base.

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