Calculations in Electrolysis (24.1.2) | CIE A-Level Chemistry Notes

Electrolysis, a critical process in electrochemistry, has wide-ranging applications from industrial metal refining to hydrogen production in water splitting. A thorough understanding of the calculations involved in electrolysis is essential for A-level Chemistry students. This section aims to provide a comprehensive guide on calculating the quantity of charge passed during electrolysis and determining the mass and volume of substances liberated.

Introduction to Electrolysis Calculations

Electrolysis is the process of causing a chemical change through the passage of an electric current through an electrolyte. The fundamental principle is that the amount of substance liberated or deposited at an electrode during electrolysis is directly related to the quantity of electricity passed through the electrolyte.

Quantity of Charge Passed (Q)

Formula and Concept: The quantity of charge (Q) passed in electrolysis is given by the formula Q = It, where Q is the charge in coulombs (C), I is the current in amperes (A), and t is the time in seconds (s).
Calculation Example: If a constant current of 2 A is passed through an electrolytic cell for 1 hour (3600 seconds), the total charge passed is calculated as Q = 2 A × 3600 s = 7200 C.

Faraday's Laws of Electrolysis

First Law: It states that the mass of a substance altered at an electrode during electrolysis is directly proportional to the amount of electricity that passes through the electrolyte. This law lays the foundation for quantitative analysis in electrolysis.

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Second Law: This law posits that when the same quantity of electricity is passed through different electrolytes, the amounts of substances altered are proportional to their chemical equivalent weights.

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Detailed Calculations in Electrolysis

Calculating the Mass of Substance Liberated

Formula and Explanation: The mass (m) of a substance liberated in electrolysis can be calculated using the formula m = (Q × M) / (n × F), where M is the molar mass of the substance (in grams per mole), n is the number of moles of electrons involved in the redox reaction at the electrode, and F is the Faraday constant (approximately 96485 C/mol).
Practical Example: Consider the electrolysis of copper(II) sulfate, where copper ions (Cu²⁺) are reduced to copper metal at the cathode. The molar mass of copper is 63.55 g/mol, and two electrons (n = 2) are involved in the reduction of each copper ion. For a charge of 7200 C, the mass of copper deposited is calculated as m = (7200 C × 63.55 g/mol) / (2 × 96485 C/mol) = 2.39 g.

Calculating the Volume of Gas Liberated

Gas Electrolysis Principles: In cases where electrolysis results in the liberation of gases, such as hydrogen or oxygen in the electrolysis of water, the volume of the gas can be determined under standard conditions.
Standard Conditions and Formula: At standard temperature and pressure (0°C and 1 atm), 1 mole of any gas occupies 22.4 liters. The volume of gas liberated can be calculated using the formula Volume = (Q × 22.4 L) / (n × F).
Example Calculation: In the electrolysis of water, 2 moles of electrons are required to liberate 1 mole of hydrogen gas (H₂). For a charge of 7200 C, the volume of hydrogen gas produced is calculated as Volume = (7200 C × 22.4 L) / (2 × 96485 C/mol) ≈ 0.84 L.

Example Calculations for Various Electrolytes

Electrolysis of Sodium Chloride Solution (Brine)

Production of Chlorine, Hydrogen, and Sodium Hydroxide: Electrolysis of concentrated sodium chloride solution (brine) is industrially important for producing chlorine gas at the anode, hydrogen gas at the cathode, and sodium hydroxide in the solution.
Quantitative Analysis: Using the electrolysis calculations, students can determine the amounts of chlorine and hydrogen gases produced and the concentration of sodium hydroxide formed for a given quantity of electricity.

Electrolysis of Copper(II) Sulfate Solution

Copper Plating Process: When a copper(II) sulfate solution undergoes electrolysis, copper is deposited at the cathode. This process is used in copper refining and electroplating.
Mass of Copper Calculation: By applying the electrolysis formulae, the mass of copper deposited can be determined based on the quantity of charge passed through the solution.

Electrolysis of copper(II) sulfate

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Electrolysis of Water

Hydrogen and Oxygen Production: The electrolysis of water is a fundamental experiment demonstrating the decomposition of water into hydrogen and oxygen gases.
Volume Calculations: The volumes of hydrogen (produced at the cathode) and oxygen (produced at the anode) can be calculated. Since the stoichiometric ratio of hydrogen to oxygen production is 2:1, these calculations help understand the practical aspects of gas collection and storage.

Electrolysis of water.

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Determination of the Avogadro Constant via Electrolysis

Conceptual Importance: The Avogadro constant (L), a fundamental physical constant, can be experimentally determined through electrolysis. This constant represents the number of constituent particles (usually atoms or molecules) in one mole of a substance.
Relationship and Calculation: The Avogadro constant is related to the Faraday constant and the elementary charge (e) by the formula L = F / e. By conducting precise electrolysis experiments and measuring the amount of substance liberated and the charge passed, the Avogadro constant can be calculated.

In conclusion, these calculations form the backbone of understanding electrolysis in A-level Chemistry. They provide the necessary tools for students to engage with the subject matter quantitatively, enhancing their problem-solving skills and theoretical understanding. This comprehensive approach to electrolysis calculations will equip students with the knowledge required for further studies in chemistry and related fields.

FAQ

Controlling the temperature during electrolysis is crucial as temperature can significantly affect the rate of the electrochemical reactions and the efficiency of the process. Higher temperatures generally increase the rate of electrolysis by providing more energy to the ions in the electrolyte, thus enhancing their mobility and the likelihood of collision at the electrodes. This can lead to a faster rate of reaction and, consequently, a quicker liberation or deposition of the substance at the electrodes.

However, elevated temperatures can also introduce complications. For instance, higher temperatures can increase the rate of unwanted side reactions, potentially affecting the purity of the product. In some cases, higher temperatures may cause the solvent (often water in aqueous electrolytes) to evaporate or decompose, altering the concentration of the electrolyte and potentially affecting the overall efficiency and safety of the process. Additionally, some electrolytes might decompose or become unstable at higher temperatures, leading to the formation of different products.

Therefore, maintaining an optimal temperature is necessary to ensure the desired reaction occurs efficiently and safely. In an industrial setting, precise temperature control is often used to optimize the rate of production while maintaining the quality of the product.

The efficiency of electrolysis can be measured by comparing the theoretical amount of substance that should be liberated according to Faraday’s laws with the actual amount obtained from the process. This is often expressed as a percentage and is referred to as the current efficiency or Faradaic efficiency. The formula for calculating efficiency is: Efficiency (%) = (Actual mass of substance liberated / Theoretical mass of substance liberated) × 100.

Several factors influence the efficiency of electrolysis:

Overpotential: The additional potential required to drive the electrolytic reaction beyond the thermodynamic threshold can affect efficiency. Higher overpotentials can lead to energy loss.
Side Reactions: Unwanted chemical reactions, such as the formation of side products or the decomposition of the electrolyte, can consume a portion of the current, reducing the efficiency.
Electrode Surface Area: A larger electrode surface area allows for more efficient interaction between the ions and the electrode, improving efficiency.
Concentration and Purity of Electrolyte: Higher ion concentration generally improves efficiency, while impurities can lead to side reactions, reducing efficiency.
Temperature: As mentioned earlier, temperature affects the rate of reaction and can influence the efficiency of the process, both positively and negatively.

By optimizing these factors, the efficiency of electrolysis can be maximized, leading to a more economical and effective process.

Electrolysis calculations typically focus on the quantitative aspects of the process, such as the amount of substance liberated based on the charge passed, and do not directly provide information on the purity of the substance produced. The purity of the substance obtained in electrolysis depends on several factors, including the purity of the electrolyte, the presence of other ions that might get reduced or oxidized at the electrodes, and the specific electrochemical conditions (such as voltage and current density). For instance, in the electrolysis of a copper(II) sulfate solution, impurities in the electrolyte or competing ions might lead to the deposition of other metals along with copper, affecting the purity of the copper produced. Analytical techniques such as spectroscopy or chromatography would be required to accurately determine the purity of the electrolytically obtained substances. Therefore, while electrolysis calculations can predict the theoretical amount of a substance that should be produced, they do not account for practical considerations like impurities or side reactions that may occur under actual experimental conditions.

Practice Questions

During the electrolysis of a copper(II) sulfate solution, a current of 3 A is passed through the electrolyte for 2 hours. Calculate the mass of copper metal deposited at the cathode. (Copper has a molar mass of 63.55 g/mol and requires two electrons for reduction.)

To calculate the mass of copper deposited, we first determine the charge passed using Q = It. Here, I = 3 A and t = 2 hours (or 7200 seconds). So, Q = 3 A × 7200 s = 21600 C. The mass of copper deposited is given by m = (Q × M) / (n × F), where M is the molar mass of copper (63.55 g/mol), n is 2 (as copper requires two electrons for reduction), and F is the Faraday constant (96485 C/mol). Substituting these values, we get m = (21600 C × 63.55 g/mol) / (2 × 96485 C/mol) ≈ 8.55 g. Therefore, approximately 8.55 g of copper is deposited.

In an electrolysis experiment to determine the Avogadro constant, 0.05 moles of electrons were passed through an electrolytic cell. If the charge of a single electron is 1.60 × 10⁻¹⁹ C, calculate the Avogadro constant.

The Avogadro constant (L) can be calculated using the relationship L = F / e, where F is the Faraday constant and e is the charge of an electron. Firstly, we calculate the total charge passed, which is Q = number of moles of electrons × charge of one electron = 0.05 moles × 1.60 × 10⁻¹⁹ C. This gives Q = 8 × 10⁻¹⁸ C. The Faraday constant (F) is the total charge carried by one mole of electrons, so F = Q / number of moles of electrons = 8 × 10⁻¹⁸ C / 0.05 moles ≈ 1.60 × 10⁻¹⁶ C/mol. Therefore, the Avogadro constant L ≈ 96485 C/mol / 1.60 × 10⁻¹⁹ C ≈ 6.02 × 10²³ mol⁻¹.

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Calculations in Electrolysis (24.1.2) | CIE A-Level Chemistry Notes | TutorChase (2024)