CBSE Class 10 Science Chapter 3: Metals and Non-Metals NCERT Solutions

NCERT Solutions PDF Class 10 PDF

This chapter delves into the fascinating world of metals and non-metals, exploring their properties and reactions. The NCERT Solutions for Class 10 Science, Chapter 3, provide detailed explanations and step-by-step answers to the exercises. Key concepts covered include displacement reactions, the process of rusting and methods to prevent it, the characteristic properties of metals and non-metals like malleability and conductivity, and the nature of oxides formed by these elements. The solutions also explain the concept of amphoteric oxides with examples. These solutions are designed to help students understand the fundamental principles of metallurgy and chemical reactivity, aiding in effective exam preparation and revision.

Quick info

BoardCBSE
ClassClass 10
SubjectScience
Session2026
LanguageEnglish
TypeNCERT Solutions
ChapterChapter 3: Metals and Non – Metals

Chapter summary

Chapter 3 of the NCERT Class 10 Science textbook focuses on Metals and Non-Metals. The provided NCERT Solutions cover essential topics such as identifying displacement reactions based on reactivity series, methods to prevent rusting of iron, distinguishing metals from non-metals using physical properties like malleability and conductivity, and understanding the nature of oxides. It also explains the concept of amphoteric oxides with relevant chemical equations. These solutions offer clear explanations for all exercise questions, reinforcing learning of key concepts.

Learning outcomes

  • Understand the concept of displacement reactions and predict their occurrence.
  • Identify methods to prevent rusting of iron and explain their effectiveness.
  • Distinguish between metals and non-metals based on their physical properties.
  • Explain the formation and properties of metal and non-metal oxides.
  • Define amphoteric oxides and provide examples.

Topics covered

Paper topics

  • Metals and Non-metals
  • Displacement Reactions
  • Reactivity Series
  • Rusting of Iron
  • Prevention of Rusting
  • Physical Properties of Metals
  • Physical Properties of Non-metals
  • Electrical Conductivity
  • Malleability
  • Oxides of Metals
  • Oxides of Non-metals
  • Amphoteric Oxides

Important topics

  • Displacement Reactions and Reactivity Series
  • Rusting: Causes and Prevention
  • Distinguishing Properties of Metals and Non-metals
  • Amphoteric Oxides

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Questions and Solutions

Question 1

Which of the following pairs will give displacement reactions?
  1. NaCl solution and copper metal
  2. MgCl2 solution and aluminium metal
  3. FeSO4 solution and silver metal
  4. AgNO3 solution and copper metal.
Solution: A displacement reaction occurs when a more reactive element displaces a less reactive element from its compound. We need to consider the reactivity series of metals. The reactivity series generally lists metals in order of decreasing reactivity. A metal higher in the series can displace a metal lower in the series from its salt solution.

Let's analyze the options:

  1. Sodium (Na) is much more reactive than Copper (Cu). NaCl is a stable salt, and copper cannot displace sodium from it.
  2. Magnesium (Mg) is more reactive than Aluminium (Al). Aluminium cannot displace magnesium from MgCl2 solution.
  3. Iron (Fe) is more reactive than Silver (Ag). Iron can displace silver from AgNO3 solution, but here we have FeSO4 and silver metal. Silver is less reactive than iron, so it cannot displace iron from FeSO4 solution.
  4. Copper (Cu) is more reactive than Silver (Ag). Therefore, copper metal can displace silver from silver nitrate (AgNO3) solution. The reaction would be: Cu(s) + 2AgNO_3(aq) \rightarrow Cu(NO_3)_2(aq) + 2Ag(s)
Answer: The pair that will give displacement reactions is AgNO3 solution and copper metal.

Question 2

Which of the following methods is suitable for preventing an iron frying pan from rusting?
  1. Applying grease
  2. Applying paint
  3. Applying a coating of zinc
  4. All of the above.
Solution: Rusting is the process of corrosion of iron, which occurs when iron is exposed to moisture and oxygen. Several methods can prevent rusting:
  1. Applying grease or oil creates a barrier between iron and air/moisture.
  2. Applying paint also forms a protective layer, preventing contact with the environment.
  3. Applying a coating of zinc (galvanization) is another effective method. Zinc is more reactive than iron and corrodes preferentially, protecting the iron underneath (sacrificial protection).
However, for an iron frying pan, methods like applying grease or paint are not ideal. These coatings can be easily washed away or destroyed by the heat generated during cooking and subsequent cleaning. Therefore, applying a coating of zinc (galvanization) is a more suitable and durable method for preventing rust on an iron frying pan, although it's less common for cookware due to aesthetic and potential health concerns if the zinc layer degrades significantly. Answer: While all methods can prevent rusting in general, applying a coating of zinc is considered the most suitable for a frying pan among the given options, considering the limitations of grease and paint with heat and washing.

Question 3

An element reacts with oxygen to give a compound with a high melting point. This compound is also soluble in water. The element is likely to be
  1. calcium
  2. carbon
  3. silicon
  4. iron
Solution: Let's analyze the properties of the oxides formed by the given elements:
  1. Calcium (Ca): Calcium is a metal. It reacts with oxygen to form calcium oxide (CaO). Calcium oxide is an ionic compound with a very high melting point. It reacts with water to form calcium hydroxide (Ca(OH)2), which is soluble in water. 2Ca(s) + O_2(g) \rightarrow 2CaO(s) CaO(s) + H_2O(l) \rightarrow Ca(OH)_2(aq)
  2. Carbon (C): Carbon is a non-metal. It forms oxides like carbon monoxide (CO) and carbon dioxide (CO2). CO2 is a gas with a low melting point and dissolves in water to form carbonic acid, but the oxide itself doesn't have a high melting point.
  3. Silicon (Si): Silicon is a metalloid. It forms silicon dioxide (SiO2), which has a very high melting point but is insoluble in water.
  4. Iron (Fe): Iron is a metal. It forms oxides like Fe2O3, which have high melting points but are insoluble in water.
Based on the properties described (high melting point compound, soluble in water), calcium is the most likely element. Answer: The element is likely to be calcium.

Question 4

Food cans are coated with tin and not with zinc because
  1. zinc is costlier than tin.
  2. zinc has a higher melting point than tin.
  3. zinc is more reactive than tin.
  4. zinc is less reactive than tin.
Solution: Food cans are typically made of iron or steel, which are prone to rusting. To protect them, they are coated with a layer of another metal. The choice of coating metal depends on its reactivity relative to iron and its ability to protect the can.

Tin (Sn) and Zinc (Zn) are commonly used for coating iron.

Reactivity Comparison: Zinc is significantly more reactive than tin. Both zinc and tin are more reactive than iron.

Protection Mechanism:

  • Tin Coating: Tin is less reactive than iron. It forms a protective layer. If the tin coating is scratched, exposing the iron, the iron will rust because it is more reactive than tin and will corrode preferentially.
  • Zinc Coating (Galvanization): Zinc is more reactive than iron. It provides protection in two ways: barrier protection and sacrificial protection. If the zinc coating is scratched, the more reactive zinc corrodes preferentially, protecting the iron underneath from rusting.
Reason for using Tin in Food Cans: While zinc offers sacrificial protection, it is undesirable for food cans because if the coating is breached, the more reactive zinc can react with the food, potentially making it toxic or altering its taste. Tin, being less reactive than iron, acts primarily as a barrier. Even if scratched, the iron will rust, but the tin itself does not react readily with food. Therefore, tin is preferred for food cans to ensure food safety, despite zinc offering better sacrificial protection against rust in other applications. The question implies a reason why tin is chosen *over* zinc, and the key difference is their reactivity with food. Answer: Food cans are coated with tin and not with zinc because zinc is more reactive than tin, and this higher reactivity could lead to undesirable reactions with the food contents if the coating is compromised.

Question 5

You are given a hammer, a battery, a bulb, wires and a switch.
  1. How could you use them to distinguish between samples of metals and non-metals?
  2. Assess the usefulness of these tests in distinguishing between metals and non-metals.
Solution:

(a) Distinguishing between metals and non-metals:

  1. Using the hammer (Test for Malleability):

    Take a small piece of the sample. Place it on a hard surface and strike it firmly with the hammer.

    • If the sample can be beaten or hammered into thin sheets without breaking, it exhibits malleability and is likely a metal.
    • If the sample breaks into pieces or crumbles upon hammering, it is likely a non-metal.

  2. Using the battery, bulb, wires, and switch (Test for Electrical Conductivity):

    Set up a simple electrical circuit. Connect the battery, bulb, switch, and wires in series. Insert the sample to be tested into the circuit, either by connecting its ends to the terminals or by placing it between two points in the circuit. Close the switch.

    • If the bulb glows, it indicates that the sample conducts electricity, meaning it is a metal.
    • If the bulb does not glow, it indicates that the sample does not conduct electricity (or conducts very poorly), meaning it is a non-metal.

(b) Usefulness of these tests:

These tests are based on the characteristic physical properties of metals and non-metals, making them quite useful for distinguishing between them, especially for solid samples at room temperature.

  • Malleability: Most metals are malleable, allowing them to be shaped into thin sheets. This is a key distinguishing physical property.
  • Electrical Conductivity: Metals are generally excellent conductors of electricity, while non-metals are poor conductors (insulators). This is another fundamental difference.
These tests are practical and do not require complex chemical reactions. However, it's important to note that some elements might exhibit intermediate properties (like metalloids), and some metals might be brittle (like Manganese) or have low conductivity under certain conditions. Despite these exceptions, these physical property tests are highly effective for a general classification.

Question 6

What are amphoteric oxides? Give two examples of amphoteric oxides.
Solution:

Amphoteric oxides are a special class of chemical compounds, specifically oxides, that exhibit dual chemical behavior. They possess the ability to react with both acids and bases, behaving as either an acid or a base depending on the nature of the reactant they are paired with. This dual reactivity is a characteristic property of certain metal oxides.

When an amphoteric oxide reacts with an acid, it acts as a base. When it reacts with a base, it acts as an acid.

Examples of amphoteric oxides:

  1. Aluminium oxide (Al2O3):

    It reacts with acids to form aluminium salts and water:

    Al_2O_3(s) + 6HCl(aq) \rightarrow 2AlCl_3(aq) + 3H_2O(l)

    It also reacts with strong bases like sodium hydroxide to form a soluble complex salt, sodium aluminate:

    Al_2O_3(s) + 2NaOH(aq) + 3H_2O(l) \rightarrow 2Na[Al(OH)_4](aq) (or 2NaAlO_2(aq) + 2H_2O(l))

  2. Zinc oxide (ZnO):

    It reacts with acids to form zinc salts and water:

    ZnO(s) + 2HCl(aq) \rightarrow ZnCl_2(aq) + H_2O(l)

    It also reacts with strong bases like sodium hydroxide to form sodium zincate:

    ZnO(s) + 2NaOH(aq) + H_2O(l) \rightarrow Na_2[Zn(OH)_4](aq) (or 2NaZnO_2(aq) + H_2O(l))

Other examples include lead oxide (PbO) and tin oxide (SnO).

Common mistakes

  • Confusing the reactivity series, leading to incorrect predictions of displacement reactions.
  • Not considering the practical limitations of certain anti-rusting methods for specific applications (like frying pans).
  • Misinterpreting the properties of amphoteric oxides.
  • Overlooking the distinction between physical and chemical properties when classifying elements.

Revision tips

  • Memorize the reactivity series of metals to predict displacement reactions accurately.
  • Understand the chemical principles behind preventing rusting, not just the methods.
  • Practice identifying metals and non-metals using their characteristic physical properties.
  • Review the definitions and examples of acidic, basic, and amphoteric oxides.

Practice MCQs

Q1. Which pair will exhibit a displacement reaction?

Q2. What is the most suitable method to prevent an iron frying pan from rusting, considering its use?

Q3. An element forms an oxide with a high melting point that is soluble in water. This element is likely:

Q4. Why are food cans coated with tin instead of zinc?

Q5. Which property allows metals to be hammered into thin sheets?

Q6. Amphoteric oxides can react with:

Frequently asked questions

What is a displacement reaction in the context of metals?

A displacement reaction occurs when a more reactive metal displaces a less reactive metal from its compound's solution. The reactivity series helps predict these reactions.

Why is it important to prevent iron from rusting?

Rusting weakens iron objects and can lead to their eventual destruction. Preventing it ensures the longevity and structural integrity of iron-based materials.

How can we differentiate between metals and non-metals using simple tests?

Metals are generally malleable (can be hammered into sheets) and good conductors of electricity, while non-metals are typically brittle and poor conductors. These physical properties can be tested using a hammer and a simple electrical circuit.

What are amphoteric oxides and what are their key characteristics?

Amphoteric oxides are oxides that can react with both acids and bases to form salt and water. Examples include aluminium oxide (Al2O3) and zinc oxide (ZnO).

Are the solutions provided suitable for exam preparation?

Yes, these NCERT Solutions offer clear, step-by-step explanations for all exercise questions, covering the core concepts of metals and non-metals, making them ideal for exam revision.

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