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Q.Define acids and bases according to Bronsted-Lowry theory. Derive relationship between pH and pOH.

Maharashtra MsbshseMaharashtra HSC (MSBSHSE) Board 2024Subjective· 3mImportance★★★★★
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Bronsted acid donates H+^+, base accepts it. From Kw=[H+][OH−]K_w=[H^+][OH^-]: pH+pOH=pKw=14pH+pOH=pK_w=14 at 25°C.

Bronsted–Lowry theory: an acid is a species that donates a proton (H+H^+) to another species; a base is a species that accepts a proton. Every acid, on losing a proton, forms its conjugate base, and every base, on gaining a proton, forms its conjugate acid.

Relationship between pH and pOH: water undergoes self-ionisation:

H2O⇌H++OH−H_2O \rightleftharpoons H^+ + OH^-, with Kw=[H+][OH−]=10−14K_w = [H^+][OH^-] = 10^{-14} at 25°C.

Taking −log⁡-\log of both sides:

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