CORE Chemistry (Short Course) - 9222 OxfordAQA

Use Of Amount Of Substance In Relation To Masses Of Pure Substances

Overview

Two sacks stand side by side in a farm supply store. They hold the same mass, they cost the same money, and both are sold as nitrogen fertiliser. One of them will put more than twice as much nitrogen into the soil as the other, and nothing on the outside of either sack tells you which. The only way to find out is to read the chemical formula and do about ninety seconds of arithmetic. That arithmetic is what this lesson is about, and it is the single most useful piece of number work in the whole of chemistry.

You will start by learning to add up a formula, turning a string of symbols and subscripts into one number that stands for the mass of the whole unit. From there you will work out what fraction of a compound is the element you actually care about, which is how a farmer chooses between two sacks and how a mining company decides whether an ore is worth digging out of the ground. Then you will take that fraction off the page and put it to work on a real mass, turning a percentage into tonnes of metal or kilograms of nutrient. Three steps, one balance, and no instrument more exotic than a calculator.

Objectives

  1. The relative formula mass (Mr) of a compound is the sum of the relative atomic masses of the atoms in the numbers shown in the formula. Students are expected to use relative atomic masses in the calculations specified in the subject content. Students should be able to calculate the relative formula mass (Mr) of a compound from its formula.
  2. The percentage by mass of an element in a compound can be calculated from the relative atomic mass of the element in the formula and the relative formula mass of the compound.

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Lesson Note

A chemical formula looks like a label and behaves like an account book. Written out, NH4NO3 names a substance; read properly, it tells you exactly how the mass of that substance is shared out between nitrogen, hydrogen and oxygen, down to the last percent. Nothing else is needed to extract that information. No instrument, no experiment, no reference book beyond a periodic table. The formula already contains the answer and the arithmetic simply reads it out.

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Lesson Evaluation

Congratulations on completing the lesson on Use Of Amount Of Substance In Relation To Masses Of Pure Substances. Now that youve explored the key concepts and ideas, its time to put your knowledge to the test. This section offers a variety of practice questions designed to reinforce your understanding and help you gauge your grasp of the material.

You will encounter a mix of question types, including multiple-choice questions, short answer questions, and essay questions. Each question is thoughtfully crafted to assess different aspects of your knowledge and critical thinking skills.

Use this evaluation section as an opportunity to reinforce your understanding of the topic and to identify any areas where you may need additional study. Don't be discouraged by any challenges you encounter; instead, view them as opportunities for growth and improvement.

  1. What is the relative formula mass of calcium carbonate, CaCO3? Relative atomic masses: C = 12, O = 16, Ca = 40. A. 68 B. 88 C. 100 D. 116 Answer: C
  2. What is the percentage by mass of oxygen in water, H2O? Relative atomic masses: H = 1, O = 16. A. 11.1 B. 16.0 C. 50.0 D. 88.9 Answer: D
  3. What is the relative formula mass of aluminium sulfate, Al2(SO4)3? Relative atomic masses: O = 16, Al = 27, S = 32. A. 123 B. 150 C. 278 D. 342 Answer: D
  4. What is the percentage by mass of sulfur in sulfur dioxide, SO2? Relative atomic masses: O = 16, S = 32. A. 20.0 B. 33.3 C. 50.0 D. 66.7 Answer: C
  5. A farmer spreads 30 kg of urea, CO(NH2)2, on a field. What mass of nitrogen does this supply? Relative atomic masses: H = 1, C = 12, N = 14, O = 16. A. 7.0 kg B. 12.5 kg C. 14.0 kg D. 28.0 kg Answer: C

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