CBSE Class 12 Chemistry Chapter 11: General Principles and Processes of Isolation of Elements - NCERT Solutions

NCERT Solutions PDF Class 12 PDF

This chapter delves into the fundamental principles and processes involved in the isolation of elements from their ores. It covers various metallurgical techniques, including concentration of ores, extraction of crude metal, and its purification. Key concepts such as the Ellingham diagram, which predicts the feasibility of reduction, are explained. The solutions provide step-by-step explanations for intext questions, covering topics like magnetic separation, leaching in aluminium extraction, thermodynamic feasibility of reactions, and the conditions under which certain metals can reduce oxides of other elements. These solutions are designed to help students understand the complex processes of metal extraction and prepare effectively for their board examinations.

Quick info

BoardCBSE
ClassClass 12
SubjectChemistry
Session2026
LanguageEnglish
TypeNCERT Solutions
ChapterChapter 11

Chapter summary

Chapter 11 of the CBSE Class 12 Chemistry syllabus focuses on the general principles and processes used for isolating elements. This section provides NCERT Solutions for intext questions, explaining concepts like magnetic separation of ores, the significance of leaching in extracting aluminium from bauxite, and the thermodynamic feasibility of reactions at different temperatures. It also explores the conditions required for redox reactions between metals and their oxides, such as Mg reducing SiO2 and Si reducing MgO. These solutions clarify the practical application of chemical principles in metallurgy.

Learning outcomes

  • Understand the principle of magnetic separation for ore concentration.
  • Explain the significance and process of leaching in aluminium extraction.
  • Analyze the thermodynamic feasibility of metallurgical reactions using Gibbs energy.
  • Determine the conditions under which redox reactions between metals and metal oxides occur.
  • Identify different methods for concentrating ores based on their properties.

Topics covered

Paper topics

  • General Principles and Processes of Isolation of Elements
  • Concentration of Ores
  • Magnetic Separation
  • Leaching
  • Extraction of Aluminium
  • Thermodynamic Feasibility
  • Gibbs Energy
  • Reduction of Metal Oxides
  • Redox Reactions in Metallurgy
  • Metallurgy
  • Extraction of Metals
  • Purification of Ores

Important topics

  • Principles of Ore Concentration
  • Leaching Process (especially for Aluminium)
  • Thermodynamic Feasibility (ΔG)
  • Conditions for Redox Reactions in Metal Extraction
  • Role of Temperature in Metallurgical Reactions

PDF preview

Read page by page below. PDF is streamed from the official NCERT website — no download button on this page.

Loading document …
Page of
Loading page …

Questions and Solutions

Question 6.1

Which of the ores mentioned in Table 6.1 can be concentrated by magnetic separation method?
Solution: The magnetic separation method is employed when either the ore or the undesired rocky material (gangue) possesses magnetic properties. This allows for their separation using a magnetic field. Based on the typical composition of ores mentioned in metallurgical contexts (like Table 6.1 often includes), iron ores such as haematite (Fe_2O_3), magnetite (Fe_3O_4), and siderite (FeCO_3) can be concentrated using magnetic separation because they are attracted to a magnet. Iron pyrites (FeS_2) may also exhibit some magnetic properties or be separated if the gangue is non-magnetic.

Question 6.2

What is the significance of leaching in the extraction of aluminium?
Solution: In the extraction of aluminium, leaching plays a crucial role in purifying the bauxite ore. Bauxite ore often contains impurities like silica (SiO_2), iron oxides, and titanium dioxide. The significance of leaching lies in its ability to selectively dissolve the valuable component, alumina (Al_2O_3), while leaving behind many impurities. This is typically achieved by digesting the powdered ore with a concentrated solution of sodium hydroxide (NaOH) at elevated temperatures (473-523 K) and pressure (35-36 bar). During this process, alumina dissolves to form soluble sodium meta-aluminate, whereas silica reacts to form soluble sodium silicate, and iron oxides remain undissolved.

The relevant reactions are:

Al_2O_{3(s)} + 2 NaOH_{(aq)} + 3 H_2O_{(l)} \xrightarrow{473-523 \text{ K}} 2 Na[Al(OH)_4]_{(aq)}

Alumina reacts with NaOH and water to form sodium tetrahydroxoaluminate.

SiO_{2(l)} + 2 NaOH_{(aq)} \xrightarrow{473-523 \text{ K}} Na_2SiO_{3(aq)} + H_2O_{(l)}

Silica reacts with NaOH to form sodium silicate.

The insoluble impurities are then filtered off. Subsequently, the solution containing sodium meta-aluminate is treated with carbon dioxide (CO_2) gas, which causes the precipitation of hydrated alumina. Sodium silicate remains in the solution.

2 Na[Al(OH)_4]_{(aq)} + CO_{2(g)} \longrightarrow Al_2O_3 \cdot xH_2O_{(s)} + 2 NaHCO_{3(aq)}

The precipitated hydrated alumina is then filtered, dried, and heated strongly to obtain pure alumina (Al_2O_3).

Al_2O_3 \cdot xH_2O_{(s)} \xrightarrow{1470 \text{ K}} Al_2O_{3(s)} + xH_2O_{(g)}

Thus, leaching is a critical step for concentrating alumina from the crude bauxite ore.

Question 6.3

The reaction, Cr_2O_3 + 2Al \longrightarrow Al_2O_3 + 2Cr (\Delta G_0 = -421 \text{ kJ}) is thermodynamically feasible as is apparent from the Gibbs energy value. Why does it not take place at room temperature?
Solution: The given reaction, the reduction of chromium(III) oxide (Cr_2O_3) by aluminium (Al), is thermodynamically feasible at standard conditions because the change in Gibbs free energy (\Delta G_0) is highly negative (-421 kJ). This indicates that the forward reaction is spontaneous from a thermodynamic perspective.

However, the reaction does not occur at room temperature primarily because both the reactants (Cr_2O_3 and Al) and the products (Al_2O_3 and Cr) are in the solid state at room temperature. For a reaction to proceed, there needs to be sufficient contact and mobility between the reacting species. In the solid state, the atoms or molecules have limited movement, and the reaction rate is extremely slow, effectively making it non-existent at room temperature. The activation energy barrier for the reaction between solids is also very high.

The feasibility of a reaction is also described by the Gibbs energy equation: \Delta G = \Delta H - T \Delta S. While \Delta G_0 is negative, the reaction requires a significant amount of energy to initiate, especially at lower temperatures. At higher temperatures, the reactants may melt or vaporize, increasing their mobility and allowing the reaction to proceed at a significant rate. Furthermore, as temperature increases, the T \Delta S term becomes more significant. If \Delta S is positive (as is often the case when solids form a more dispersed product or when melting occurs), increasing temperature makes \Delta G even more negative, further enhancing the feasibility.

Question 6.4

Is it true that under certain conditions, Mg can reduce SiO_2 and Si can reduce MgO? What are those conditions?
Solution: Yes, it is true that under certain conditions, magnesium (Mg) can reduce silicon dioxide (SiO_2), and silicon (Si) can reduce magnesium oxide (MgO). The feasibility of these reactions depends on the relative thermodynamic stability of the metal oxides, which can be predicted using Ellingham diagrams or by considering the Gibbs free energy changes at different temperatures.

1. Mg reducing SiO_2:

Magnesium is a highly reactive metal and a strong reducing agent. At sufficiently high temperatures, magnesium can reduce silicon dioxide to elemental silicon. The reaction is:

2 Mg_{(s)} + SiO_{2(s)} \xrightarrow{\text{High Temp.}} 2 MgO_{(s)} + Si_{(s)}

This reaction is thermodynamically favorable at high temperatures because the formation of magnesium oxide (MgO) is more stable than the formation of silicon dioxide (SiO_2) under these conditions. The high temperature provides the necessary energy for the reaction to occur and overcome any activation barriers.

2. Si reducing MgO:

Silicon, while less reactive than magnesium, can act as a reducing agent for magnesium oxide at very high temperatures. The reaction is:

2 Si_{(s)} + 3 MgO_{(s)} \xrightarrow{\text{Very High Temp.}} 2 Mg_{(g)} + SiO_{2(s)}

This reaction becomes feasible at very high temperatures where the Gibbs free energy change becomes negative. At these extreme temperatures, magnesium metal is produced as a gas, and silicon dioxide is formed. The condition is that the temperature must be high enough for the reduction of MgO by Si to be thermodynamically favorable, which is typically a higher temperature than required for Mg to reduce SiO_2.

In summary, the conditions required are high temperatures, where the relative thermodynamic stability of the oxides dictates which metal can act as a reducing agent for the oxide of the other.

Common mistakes

  • Confusing the conditions required for different ore concentration methods.
  • Misinterpreting the role of Gibbs free energy in reaction feasibility.
  • Not considering the physical states of reactants and products in reactions.
  • Incorrectly applying thermodynamic principles to room temperature reactions.

Revision tips

  • Focus on understanding the specific conditions (temperature, pressure, reagents) for each extraction process.
  • Relate Gibbs free energy changes to the feasibility and temperature dependence of reactions.
  • Draw or visualize the processes described, such as magnetic separation and leaching.
  • Practice identifying which metal can reduce the oxide of another based on Ellingham diagrams (though not explicitly shown, the principle is tested).

Practice MCQs

Q1. Which of the following ores can be concentrated using magnetic separation?

Q2. What is the primary purpose of leaching in the extraction of aluminium from bauxite?

Q3. The reaction Cr2O3 + 2Al → Al2O3 + 2Cr has a very negative ΔG° value. Why doesn't it occur at room temperature?

Q4. Under what condition can Mg reduce SiO2?

Q5. What is the role of CO2 in the purification of alumina from bauxite?

Frequently asked questions

What is magnetic separation and which ores can use it?

Magnetic separation is used to concentrate ores when either the ore or the gangue is magnetic. Ores like haematite and magnetite, which contain iron, can be concentrated using this method.

Why is leaching important in the extraction of aluminium?

Leaching is significant because it helps to concentrate pure alumina (Al2O3) from the bauxite ore by dissolving it in a concentrated solution of sodium hydroxide, separating it from impurities like silica.

Can a reaction with a negative ΔG° not occur at room temperature?

Yes, a reaction with a negative ΔG° might not occur at room temperature if the reactants are in a solid state and lack mobility, preventing the reaction from proceeding. Higher temperatures are often needed to overcome these physical barriers.

What conditions allow Mg to reduce SiO2, and Si to reduce MgO?

These reactions depend on the relative thermodynamic stability of the oxides at specific temperatures. Generally, a more reactive metal at a given temperature can reduce the oxide of a less reactive metal. High temperatures are usually required for these reductions to be feasible.

How does temperature affect the feasibility of a reaction like Cr2O3 + 2Al → Al2O3 + 2Cr?

Increasing the temperature generally makes the reaction more feasible if the entropy change (ΔS) is positive, as indicated by the Gibbs energy equation ΔG = ΔH - TΔS. A positive ΔS means TΔS increases with temperature, making ΔG more negative.

Content reviewed by the NCERT Help team. Editorial Team and update policy

NCERT Solutions PDF PDF on NCERT Help. URL unchanged for search indexing.