CBSE Class 12 Chemistry Chapter 6: General Principles and Processes of Isolation of Elements - NCERT Solutions
This section provides comprehensive NCERT Solutions for Class 12 Chemistry, Chapter 6, focusing on the General Principles and Processes of Isolation of Elements. It covers key concepts like hydrometallurgy, froth flotation, reduction processes, zone refining, and chromatography. The solutions explain why certain metals can be extracted using specific methods while others cannot, detailing the role of reducing potentials and depressants. It also elaborates on the thermodynamic principles governing the extraction of metals from oxide and sulfide ores, and the purification techniques for obtaining high-purity elements. These solutions are designed to help students grasp the fundamental principles of metallurgy and prepare effectively for their board examinations.
Quick info
| Board | CBSE |
|---|---|
| Class | Class 12 |
| Subject | Chemiry |
| Session | 2026 |
| Language | English |
| Type | NCERT Solutions |
| Chapter | Chapter 6: General Principles and Processes of Isolation of Elements - NCERT Exercises Solutions |
Chapter summary
Chapter 6 of the NCERT Class 12 Chemistry syllabus delves into the fundamental principles and processes involved in isolating elements from their ores. This solution set covers key metallurgical techniques, including hydrometallurgy, froth flotation, and reduction methods. It explains the thermodynamic basis for metal extraction, the role of reagents like depressants, and purification methods such as zone refining and chromatography. The exercises focus on understanding the applicability and limitations of these processes for different metals.
Learning outcomes
- Understand the principles of hydrometallurgy and its limitations for metals like zinc.
- Explain the function of depressants in the froth flotation process.
- Compare the ease of extracting copper from oxide versus sulfide ores.
- Describe the process and principle of zone refining for purifying metals.
- Explain the working and application of column chromatography in element purification.
Topics covered
Paper topics
- Hydrometallurgy
- Froth flotation
- Depressants
- Reduction of metal oxides
- Reduction of metal sulfides
- Gibbs free energy in metallurgy
- Zone refining
- Column chromatography
- Metal extraction principles
- Purification of elements
Important topics
- Principles of Hydrometallurgy vs. Pyrometallurgy
- Role of Depressants in Froth Flotation
- Thermodynamic Feasibility of Metal Extraction (Ellingham Diagrams implied)
- Zone Refining Technique
- Column Chromatography for Purification
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Questions and Solutions
Question 6.1
Question 6.2
The reaction showing the complex formation is:
Question 6.3
When considering reduction by carbon (or CO), we look at the Gibbs free energy changes for the formation of the metal compound and the oxide of the reducing agent (e.g., CO). The extraction is feasible if the Gibbs free energy change for the formation of the metal compound is more negative than that for the formation of the reducing agent's oxide.
For copper sulfide (Cu₂S), the Gibbs free energy of formation is relatively low (less negative). This means that the formation of CO from C is thermodynamically more favorable than the decomposition of Cu₂S into Cu and S. Therefore, carbon or CO cannot effectively reduce Cu₂S to copper.
Conversely, for copper oxide (Cu₂O), the Gibbs free energy of formation is more negative than that for CO formation. This indicates that the reduction of Cu₂O by carbon is thermodynamically favorable:
Hence, copper can be more easily extracted from its oxide ore by reduction compared to its sulfide ore.Question 6.4 (i)
The process involves heating a metal rod of impure metal with a moving circular heater. This creates a narrow molten zone that travels along the length of the rod. As the molten zone moves, the metal in contact with it melts, and as it cools behind the heater, pure metal crystallizes out. The impurities, being more soluble in the molten phase, tend to remain in the molten zone and are thus swept along with it towards one end of the rod.
This process is repeated multiple times. With each pass of the molten zone, the concentration of impurities at the moving end increases. Finally, the end of the rod containing the concentrated impurities is cut off and discarded, leaving behind a highly purified metal rod.
Question 6.4 (ii)
The technique involves packing a column with a suitable stationary phase, typically an adsorbent like alumina (Al₂O₃) or silica gel. The mixture to be separated is then introduced at the top of the column. A mobile phase (a solvent or a mixture of solvents) is allowed to flow through the column, carrying the mixture components downwards. Different components travel at different rates depending on their relative affinity for the stationary phase and the mobile phase. Components that are more strongly adsorbed by the stationary phase move slower, while those that are more soluble in the mobile phase move faster.
As the mobile phase flows continuously, the components separate into distinct bands within the column. These separated bands can then be collected individually as they elute from the bottom of the column, yielding purified substances.
Common mistakes
- Confusing the relative reduction potentials of metals and their implications in displacement reactions.
- Misunderstanding the selective action of depressants in separating different sulphide ores.
- Not considering the Gibbs free energy changes when comparing the feasibility of reducing metal oxides versus sulfides.
- Inaccurate description of the zone refining process or its underlying principle.
Revision tips
- Focus on understanding the 'why' behind each extraction method's applicability or limitations.
- Draw diagrams to visualize processes like zone refining and froth flotation.
- Relate the concepts of reduction potential and Gibbs free energy to specific metal extraction examples.
- Practice explaining the role of specific reagents (like NaCN) in separation techniques.
Practice MCQs
Q1. Why can copper be extracted by hydrometallurgy, but zinc cannot?
Explanation: Copper ions (Cu²⁺) can be displaced by metals with lower reduction potentials, like iron (Fe). However, displacing zinc ions (Zn²⁺) requires metals with even lower reduction potentials (like Mg, Ca), which react vigorously with water, making hydrometallurgy impractical for zinc.
Q2. What is the primary function of a depressant in froth flotation?
Explanation: Depressants are used to separate minerals with similar properties. They selectively react with one mineral, preventing it from attaching to air bubbles and forming froth, thus allowing the other mineral to be floated and collected.
Q3. Why is it more difficult to extract copper from Cu₂S than from Cu₂O by reduction?
Explanation: The Gibbs free energy change (ΔG) for the formation of Cu₂S is less negative than that for CO, meaning CO cannot effectively reduce Cu₂S. Conversely, the ΔG for Cu₂O formation is more negative than for CO, allowing carbon to reduce Cu₂O to copper.
Q4. Zone refining is based on which principle?
Explanation: Zone refining works because impurities are generally more soluble in the molten state of a metal than in its solid state. As a molten zone moves along a metal rod, impurities preferentially dissolve in the melt and move with it.
Q5. In column chromatography, what is the role of the stationary phase?
Explanation: The stationary phase (e.g., Al₂O₃) is a solid material packed in a column. It selectively adsorbs different components of the mixture based on their chemical properties, leading to their separation as the mobile phase moves through the column.
Frequently asked questions
What is hydrometallurgy and why is it not suitable for zinc extraction?
Hydrometallurgy involves extracting metals using aqueous solutions. Copper can be extracted because its ions can be displaced by metals like iron. Zinc extraction is difficult because it requires highly reactive metals (like Mg, Ca) which react with water, making the process impractical.
How does a depressant work in the froth flotation process?
A depressant selectively reacts with one of the sulphide minerals in a mixture, preventing it from forming froth. This allows the other mineral to be separated by flotation. For example, NaCN can depress ZnS while allowing PbS to float.
Why is copper extraction from its oxide ore easier than from its sulfide ore?
The extraction from oxide ore (Cu₂O) is easier because carbon can effectively reduce it, as the Gibbs free energy change for Cu₂O formation is more negative than that for CO. However, carbon cannot effectively reduce copper sulfide (Cu₂S) because the Gibbs free energy change for Cu₂S formation is less negative than for CO.
Explain the principle behind zone refining.
Zone refining relies on the difference in solubility of impurities between the solid and molten states of a metal. Impurities are more soluble in the molten state. By moving a molten zone along an impure metal rod, impurities are concentrated in the molten zone and moved to one end.
What is column chromatography used for in metallurgy?
Column chromatography is a purification technique used to separate components of a mixture based on their differential adsorption onto a stationary phase (like Al₂O₃). It's particularly useful for purifying elements present in small quantities or when impurities have similar chemical properties.
Which metals can be purified using zone refining?
Zone refining is typically used for purifying metals like silicon, boron, gallium, and indium, which are often required in very high purity for semiconductor applications.
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