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AQA GCSE Chemistry Notes

3.3.5 Comprehensive Stoichiometric Calculations

1. Stoichiometric Reacting Masses

Stoichiometry hinges on the relationship between the quantities of reactants and products in a chemical reaction. To calculate reacting masses:

  • Identify the Reactants and Products: Begin by writing a balanced chemical equation. This step is crucial as it provides the mole ratio between reactants and products, which guides the rest of the calculation.
  • Calculate Molar Masses: For each reactant and product, calculate the molar mass (the mass of one mole of a substance). Molar masses are found by summing the atomic masses of each element in the compound, as listed in the periodic table.
  • Use Mole Ratio: Extract the mole ratio from the balanced equation. This ratio is the heart of stoichiometry and dictates the proportion of reactants that combine to form products.
  • Calculate Reacting Masses: Apply the mole ratio to determine the mass of reactants that react and the mass of products formed.

Example: Consider the reaction 2H₂ + O₂ → 2H₂O. To find the mass of water produced from 4 grams of hydrogen, first calculate the molar mass of hydrogen (2 grams/mol) and water (18 grams/mol). Since 2 moles of hydrogen react with 1 mole of oxygen to produce 2 moles of water, 4 grams of hydrogen (2 moles) will produce 36 grams of water (2 moles).

A balanced equation represents the ratio of moles of reactants to products

Image courtesy of すじにくシチュー

2. Limiting Reactants

The limiting reactant is the substance entirely consumed in the reaction, dictating the amount of product formed.

  • Identify the Limiting Reactant: Compare the mole ratio of reactants in the balanced equation with their available quantities. The reactant that provides the lesser amount of product is the limiting reactant.
  • Calculate Using Limiting Reactant: Use the amount of the limiting reactant to determine the amount of product formed.

Example: In a reaction with 5 moles of H₂ and 2 moles of O₂ to produce water (2H₂ + O₂ → 2H₂O), O₂ is the limiting reactant. It will completely react and determine the amount of water formed, which will be 4 moles (2 moles of O₂ react to produce 2 moles of H₂O).

Identifying Limiting and Excess Reagents by comparing the mole ratios of the reactants

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3. Gas Volumes at RTP

Calculating gas volumes at Room Temperature and Pressure (RTP) is a standard practice in stoichiometry.

  • Calculate Moles of Gas: Use the molar volume (24 dm³/mol at RTP) to find the number of moles of gas involved in the reaction.
  • Use Mole Ratio for Gas Reactions: Apply the mole ratio from the balanced equation to calculate the volume of gas produced or consumed in the reaction.

Example: If 48 dm³ of hydrogen gas reacts with oxygen to form water (2H₂ + O₂ → 2H₂O), the volume of oxygen needed is 24 dm³. This is because the mole ratio of hydrogen to oxygen is 2:1, and hydrogen's volume is 48 dm³.

4. Solution Volumes and Concentrations

Understanding solution volumes and concentrations is key in stoichiometry, particularly when dealing with reactions in solutions.

  • Molarity (mol/dm³): This is the concentration of a solution, defined as the number of moles of solute per dm³ of solution.
  • Calculating Concentrations: To find the concentration, use the formula: Concentration = Moles of Solute / Volume of Solution in dm³.
  • Dilutions and Concentrations: Learn how diluting or concentrating a solution changes its molarity. When a solution is diluted, the amount of solute remains the same, but the volume increases, decreasing the concentration. Conversely, concentrating a solution increases its molarity.

Example: To determine the concentration of a solution made by dissolving 5.85 grams of NaCl in 250 cm³ of water, first calculate the moles of NaCl (molar mass = 58.5 g/mol), which is 0.1 moles. Then convert the volume from cm³ to dm³ (250 cm³ = 0.25 dm³). The concentration is then 0.1 moles / 0.25 dm³ = 0.4 mol/dm³.

Dilution of Solutions- concentrated solution vs dilute solution

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5. Conversions between cm³ and dm³

In stoichiometry, converting between cm³ (millilitres) and dm³ (litres) is frequently required.

  • Conversion Factor: Remember, 1 dm³ equals 1000 cm³. This conversion is pivotal in ensuring the units used in calculations are consistent.
  • Apply in Calculations: Always convert volumes into the correct units (cm³ to dm³ or vice versa) before using them in stoichiometric formulas.

Example: To convert 200 cm³ to dm³ for use in a concentration calculation, divide by 1000, resulting in 0.2 dm³.

Through these detailed explanations and examples, this section aims to provide a comprehensive understanding of stoichiometric calculations. Mastery of these calculations allows students to predict and understand the outcomes of various chemical processes, which is an indispensable skill in IGCSE Chemistry.

FAQ

Balancing chemical equations is crucial for accurate stoichiometric calculations. A balanced equation ensures that the law of conservation of mass is adhered to, meaning the number of atoms for each element is the same on both sides of the equation. This balance provides the correct mole ratios of reactants and products, which are essential for calculating reacting masses, volumes, and concentrations. For instance, if a chemical equation is not balanced, the mole ratios derived from it would be incorrect, leading to erroneous calculations of how much of each reactant is needed or how much of a product is formed. Therefore, balancing chemical equations is the first and most vital step in any stoichiometric calculation.

Converting between different units of volume is a common requirement in stoichiometry, particularly when dealing with solutions. The most frequent conversions are between litres (L, dm³) and millilitres (mL, cm³). Since 1 litre equals 1000 millilitres (1 L = 1000 mL or 1 dm³ = 1000 cm³), you can convert by multiplying or dividing by 1000. This conversion is crucial when calculating concentrations in molarity (mol/dm³) since volumes need to be in dm³ for these calculations. Failing to convert volumes correctly can lead to significant errors in determining the concentration of solutions, the amount of reactants needed, or the yield of products in a reaction. For example, using mL instead of L without converting could result in a molarity calculation that is off by a factor of 1000.

To calculate the amount of product formed in a reaction with multiple reactants, first identify the limiting reactant. This is the reactant that will be completely used up first, thus limiting the amount of product that can be formed. Calculate the moles of each reactant using their respective molar masses. Then, using the balanced chemical equation, compare the mole ratio of each reactant to the amount available. The reactant that provides the least amount of product (according to the stoichiometric ratios) is the limiting reactant. Use the amount of the limiting reactant in the stoichiometric calculations to determine the maximum amount of product that can be formed. This approach ensures accurate prediction of product formation in chemical reactions, adhering to the principle of conservation of mass.

Empirical and molecular formulae are two ways of representing the composition of a compound. The empirical formula shows the simplest whole-number ratio of elements in a compound, while the molecular formula gives the actual number of atoms of each element in a molecule of the compound. For example, the empirical formula of hydrogen peroxide is HO (representing a 1:1 ratio of hydrogen to oxygen), but its molecular formula is H₂O₂, indicating each molecule contains two hydrogen and two oxygen atoms. In stoichiometric calculations, these formulae are essential for determining the composition of reactants and products. The empirical formula is often used in calculations involving combustion analysis and determining the formula from experimental data. The molecular formula is crucial when calculating the molar mass of a compound and when predicting the amounts of reactants and products in a chemical reaction. Understanding the relationship between these formulae and their role in stoichiometry is key to comprehending chemical compositions and reactions.

Determining the molar mass of a compound is a fundamental step in stoichiometric calculations. The molar mass is the mass of one mole of a substance, measured in grams per mole (g/mol). To calculate it, sum the atomic masses of all the atoms in the molecule, as listed in the periodic table. For example, to find the molar mass of water (H₂O), first identify the atomic masses: hydrogen (H) has an atomic mass of approximately 1 g/mol and oxygen (O) has an atomic mass of about 16 g/mol. Water has two hydrogen atoms and one oxygen atom, so its molar mass is (2 × 1) + 16 = 18 g/mol. This calculation is essential because stoichiometry often involves converting between moles and grams using the molar mass as a conversion factor.

Practice Questions

In the reaction of nitrogen gas with hydrogen gas to produce ammonia (N₂ + 3H₂ → 2NH₃), 14 grams of nitrogen reacts with 6 grams of hydrogen. Identify the limiting reactant and calculate the mass of ammonia produced. (Nitrogen has a molar mass of 28 g/mol and hydrogen has a molar mass of 2 g/mol).

The limiting reactant is nitrogen. Nitrogen's molar mass is 28 g/mol, so 14 grams is 0.5 moles. Hydrogen's molar mass is 2 g/mol, making 6 grams equal to 3 moles. The balanced equation shows that 1 mole of nitrogen reacts with 3 moles of hydrogen to produce 2 moles of ammonia. Here, nitrogen is in lesser proportion compared to the required ratio (0.5 moles of N₂ to 3 moles of H₂), making it the limiting reactant. To calculate the mass of ammonia produced, use the mole ratio between nitrogen and ammonia, which is 1:2. Therefore, 0.5 moles of nitrogen will produce 1 mole of ammonia. Since the molar mass of ammonia (NH₃) is 17 g/mol, 1 mole of ammonia weighs 17 grams. Thus, 14 grams of nitrogen will produce 17 grams of ammonia.

Calculate the concentration in mol/dm³ of a sodium hydroxide solution prepared by dissolving 8 grams of NaOH in 500 cm³ of water. (NaOH has a molar mass of 40 g/mol).

To find the concentration of the sodium hydroxide solution, first calculate the moles of NaOH. With a molar mass of 40 g/mol, 8 grams of NaOH is 0.2 moles. The volume of the solution is given in cm³ and must be converted to dm³ for concentration calculations. Since 1 dm³ is 1000 cm³, 500 cm³ is 0.5 dm³. The concentration of the solution is calculated using the formula: concentration = moles of solute / volume of solution in dm³. Thus, the concentration of the sodium hydroxide solution is 0.2 moles / 0.5 dm³ = 0.4 mol/dm³. This calculation demonstrates an understanding of molar masses, unit conversions, and concentration calculations, essential components in stoichiometry.

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