Combined Science Double Award - 9204 OxfordAQA

The Properties Of Acids And Bases

Bayani Gaba-gaba

Swallow an indigestion tablet and something quietly dramatic happens in your stomach. A powder that would do nothing at all in a glass of water goes to work on a liquid strong enough to strip paint, and within a few minutes the burning stops. That rescue is the same event a farmer buys by the lorry load to repair a sour field, the same one a power station engineers into its chimneys to keep sulfur out of the sky, and the same one a technician performs a hundred times a week at a laboratory bench. One reaction, four completely different settings, and a single pair of ions behind all of them.

This lesson gets underneath it. You will find out what a base actually is and why only some bases earn the name alkali, why every acid you meet owes its behaviour to one particular ion, how a strip of paper dipped in a mixture of dyes can report the acidity of a solution in a colour you can read across a room, and why the salt that appears at the end of a neutralisation has one half of its name donated by the acid and the other half by the base. By the end you will be able to look at any acid and any base on this course and name the product before you mix them, which is exactly what your chemistry paper asks you to do.

Manufura

  1. Metal oxides and hydroxides are bases. Soluble hydroxides are called alkalis.
  2. Acids react with bases to form salts. These reactions are called neutralisation reactions.
  3. The particular salt produced in any reaction between an acid and a base or alkali depends on: the acid used (hydrochloric acid produces chlorides, nitric acid produces nitrates, sulfuric acid produces sulfates); the metal in the base or alkali.
  4. Ammonia dissolves in water to produce an alkaline solution. It is used to produce ammonium salts.
  5. A solution of calcium hydroxide in water (limewater) reacts with carbon dioxide to produce calcium carbonate.
  6. Hydrogen ions, H+ (aq), make solutions acidic and hydroxide ions, OH- (aq), make solutions alkaline. The pH scale is a measure of the acidity or alkalinity of a solution. Students should be familiar with the pH scale from 0 to 14, and know that pH 7 is a neutral solution. Students should be able to describe the use of universal indicator to measure the approximate pH of a solution.
  7. In neutralisation reactions, hydrogen ions react with hydroxide ions to produce water. This reaction can be represented by the equation: H+ (aq) + OH- (aq) → H2O (l)

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Takardar Darasi

The lining of your stomach secretes hydrochloric acid at a strength that would ruin most of the fabrics in your wardrobe. Usually a layer of mucus keeps that acid where it belongs. When the arrangement fails you feel it, and the remedy sold in every pharmacy is a small quantity of a metal compound: magnesium hydroxide, calcium carbonate, aluminium hydroxide, or some blend of them. None of these substances is medicine in any ordinary sense. They do not deaden a nerve or block a signal. They simply react with the acid and destroy it, and the relief you feel is the pH of your stomach contents climbing back towards a value your throat can tolerate.

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  1. Which of these substances is an alkali? A. copper(II) oxide B. calcium carbonate C. potassium hydroxide D. sulfuric acid Answer: C
  2. Which salt is produced when magnesium oxide reacts with nitric acid? A. magnesium chloride B. magnesium nitrate C. magnesium sulfate D. magnesium nitride Answer: B
  3. Which statement about a solution of pH 12 is correct? A. It contains no hydroxide ions. B. It contains more hydroxide ions than hydrogen ions. C. It turns universal indicator red. D. It is neutral. Answer: B
  4. Which equation represents the neutralisation of an acid by an alkali? A. H+ (aq) + OH- (aq) -> H2O (l) B. H2 (g) + O2 (g) -> H2O (l) C. Na+ (aq) + Cl- (aq) -> NaCl (s) D. CaCO3 (s) -> CaO (s) + CO2 (g) Answer: A
  5. Carbon dioxide is bubbled through limewater. What is observed? A. The colourless solution turns cloudy white. B. The solution turns blue. C. The solution stays colourless and a gas is given off. D. A yellow precipitate forms. Answer: A

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