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9701 · 7.2

Brønsted-Lowry theory of acids and bases — FAQ

Frequently asked questions for 9701 Brønsted-Lowry theory of acids and bases. Direct answers first, then deeper explanation — then practise with marking.

What is the difference between a strong acid and a concentrated acid?

Strength refers to the degree of dissociation: a strong acid fully dissociates in water, while a weak acid only partially dissociates. Concentration refers to the amount of acid dissolved per unit volume (e.g., in mol dm⁻³). You can have a dilute solution of a strong acid (e.g., 0.001 mol dm⁻³ HCl) or a concentrated solution of a weak acid (e.g., 10 mol dm⁻³ CH₃COOH).

Why is a proton just written as H⁺? Isn't it a hydrogen atom?

A neutral hydrogen atom (H) consists of one proton in its nucleus and one electron. When it loses its single electron to form a hydrogen ion (H⁺), all that remains is the proton. Therefore, in the context of acid-base chemistry, 'proton' and 'H⁺' are used interchangeably.

Can a negative ion act as an acid?

Yes. The definition of a Brønsted-Lowry acid is a proton donor. Any species with a proton it can donate can act as an acid. For example, the hydrogencarbonate ion, HCO3HCO_3^-, can donate its proton to form the carbonate ion, CO32CO_3^{2-}. In this case, the negative ion HCO3HCO_3^- is acting as an acid.

What is the hydronium ion, H₃O⁺?

In aqueous solutions, a bare proton (H+H^+) does not exist on its own. It is highly reactive and immediately bonds to a water molecule. The resulting species, H3O+H_3O^+, is called the hydronium ion. For simplicity in A-Level Chemistry, we often write H+(aq)H^+(aq), but it's important to understand that this is a shorthand for H3O+(aq)H_3O^+(aq).