Class 11 Chemistry NCERT Solutions 2023 For Chapter 4 Chemical Bonding And Molecular Structure

 

NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure: NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure: Students often feel overwhelmed when they start with their chemistry textbook at the beginning of their session. The chapters and syllabus might sound familiar with the previous class’s curriculum, however, the concepts get elaborate descriptions thus making the topics more complicated isn’t it? Seeking out the references book is the best thing that you can do. So we bring you the best choice here that is the NCERT Solutions For Chemistry Chapter 4.

Chemistry is a pretty important subject that determines your robust future for an aspiring goal ahead. Therefore taking note down from classroom lectures and reading the only textbook prescribed by your school won’t help you that much. Additionally, class 11 is the initial level to begin your ultimate preparation for your 12th grade. If students pass their 11th standard effortlessly, then there are high chances of scoring excellently in their 12th boards. Therefore taking guidance from a solid reference book is your conclusive solution.

Table of Contents

NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure

So to begin with an easy exposition, start with our NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure right now. The easy language study material from NCERT help you learn the topic with dexterity thus getting the concept clearly in no time. Additionally referring to NCERT solutions will help you prepare for a golden future. With NCERT guide books in hand, you can start preparing for JEE and NEET from 11th class itself thus increasing your possibility of scoring competent marks to build your own path.

And nothing can beat the approach of incorporating digital learning. Just have your copy of NCERT Solutions For Chemistry Chapter 4 Solutions pdf from here and start with your study session right now. Yes, it is that simple. Just Download NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure pdf in your portable device like your smartphone or laptop whichever is convenient for you, then get ready with your study time in your own space. Students who will appear for their exam in Hindi mode make sure to have NCERT Solutions For Chemistry Chapter 4 pdf download in Hindi.

You can download CBSE NCERT Solutions For Chemistry Chapter 4 from below.

NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure

 

 

.pdfobject-container { height: 500px;}
.pdfobject { border: 1px solid #666; }


PDFObject.embed(“https://www.kopykitab.com/blog/wp-content/uploads/2023/07/chapter_4_chemical_bonding_and_molecular_structure.pdf”, “#example1”);

What will you learn in NCERT Solutions For Chemistry Chapter 4?

Chemical bonding and molecular structure are rudimentary to topics that you learned in the previous class. Now you are about to experience an elaborate explanations of the concepts in this chapter. Topics that students will learn in the chapters are as follows-

  1. VSEPR theory
  2. Lewis structures
  3. Valence bond theory
  4. The polar character of covalent bonds
  5. The concept of hybridization
  6. The molecular orbital theory of homonuclear diatomic molecules
  7. Hydrogen bonding

Types of question they generally come from NCERT Solutions For Chemistry Chapter 4 chapter are as follows-

  1. Students will get to draw diagrams of Lewis Dot symbols of the atom, molecules and polyatomic ions.
  2. Then there will be questions on bond parameters and expressing resonance in reference to Lewis structure.
  3. Students will also get questions from dipole moment, bond polarity, covalent bonds, hybridization, VBT, MOT and lastly there is VSERP theory.

NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure Subtopics that are followed in this chapter are-

  • Octet Rule
    • Covalent Bond
    • Lewis Representation Of Simple Molecules (The Lewis Structures)
    • Formal Charge
    • Limitations Of The Octet Rule
  • Ionic Or Electrovalent Bond
    • Lattice Enthalpy
  • Bond Parameters
    • Bond Length
    • Bond Angle
    • Bond Enthalpy
    • Bond Order
    • Resonance Structures
    • Polarity Of Bonds
  • The Valence Shell Electron Pair Repulsion (VSEPR) Theory
  • Valence Bond Theory
    • Orbital Overlap Concept
    • Directional Properties Of Bonds
    • Overlapping Of Atomic Orbitals
    • Types Of Overlapping And Nature Of Covalent Bonds
    • The Strength Of Sigma And Pi Bonds
  • Hybridisation
    • Types Of Hybridisation
    • Other Examples Of Sp3, Sp2 And Sp Hybridisation
    • The Hybridisation Of Elements Involving D Orbitals
  • Molecular Orbital Theory
    • Formation Of Molecular Orbitals Linear Combination Of Atomic Orbitals (Lcao)
    • Conditions For The Combination Of Atomic Orbitals
    • Types Of Molecular Orbitals
    • Energy Level Diagram For Molecular Orbitals
    • Electronic Configuration And Molecular Behaviour
  • Bonding In Some Homonuclear Diatomic Molecules
  • Hydrogen Bonding
    • Cause Of Formation Of Hydrogen Bond
    • Types Of H-bonds.

Benefits of NCERT Solutions For Chemistry Chapter 4

  1. One of the most promising benefits of the chemistry solution of class 11 is that NCERT comes up with easy language base. Therefore students will learn the subject with ease thus finishing the subject on time.
  2. Additionally, when you get to finish the chapter on time, you get to enjoy a rigorous revision session, thus having a solid base for each of the topics discussed in your syllabus.
  3. This ultimately will help you solve the question bank, previous year question paper and sample papers thus letting you stand on the grounds of your strength and weakness and hence working on the same as required.
  4. Moreover, NCERT solutions are the best guide to complete your exam prep fast and better.

Access NCERT Solutions For Chemistry Chapter 4

Question 1. Explain the formation of a chemical bond.

Answer: According to Kossel and Lewis, atoms combine together in order to complete their respective octets so as to acquire the stable inert gas configuration. This can occur in two ways; by transfer of one or more electrons from one atom to other or by sharing of electrons between two or more atoms.

Question 2.Write Lewis dot symbols for atoms of the following elements: Mg, Na, B, O, N, Br.

Answer:

1

Question 3. Write Lewis symbols for the following atoms and ions: S and S2– ; Al and Al3+; H and H

Answer:
2

Question 4. Draw the Lewis structures for the following molecules and ions:
H2S, SiCl4 , BeF2, C032-, HCOOH

Answer:
3

Question 5. Define Octet rule. Write its significance and limitations.

Answer: Octet rule: Atoms of elements combine with each other in order to complete their respective octets so as to acquire the stable gas configuration.
Significance: It helps to explain why different atoms combine with each other to form ionic compounds or covalent compounds.
Limitations of Octet rule:

  • According to Octet rule, atoms take part in chemical combination to achieve the configuration of nearest noble gas elements. However, some of noble gas elements like Xenon have formed compounds with fluorine and oxygen. For example: XeF2, XeFetc.
    Therefore, validity of the octet rule has been challenged.
  • This theory does not account for shape of molecules.

Question 6. Write the favourable factors for the formation of ionic bond.

Answer:

  1. Low ionization enthalpy of metal atoms
  2. High electron gain enthalpy of non-metal atoms
  3. High lattice enthalpy of compound formed.

Question 7. Discuss the shape of the following molecules using the VSEPR model:
BeCl2, BCl3 , SiCl4, AsF5, H2S, PH3

Answer:
4

Question 8. Although geometries of NHand H20 molecules are distorted tetrahedral, bond angle in water is less than that of ammonia. Discuss.

Answer:
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure Q8
Because of two lone pairs of electrons on O-atom, repulsion on bond pairs is greater in H20 in comparison to NH. Thus, the bond angle is less in H20 molecules.

Question 9. How do you express the bond strength in terms of bond order?

Answer: Bond strength is directly proportional to the bond order. Greater the bond order, more is the bond strength.

Question 10. Define the bond-length.

Answer:  Bond-length: It is the equilibrium distance between the nuclei of two bonded atoms in a molecule. Bond-lengths are measured by spectroscopic methods.

Question 11. Explain the important aspects of resonance with reference to the C032-ion.

Answer:
5
Resonance in C032-, I, II and III represent the three canonical forms.

  • In these structures, the position of nuclei are same.
  • All three forms have almost equal energy.
  • Same number of paired and impaired electrons, they differ only in their position.

Question 12. H3POcan be represented by structures 1 and 2 shown below. Can these two structures be taken as the canonical forms of the resonance hybrid representing H3PO3? If not, give reasons for the same.
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure Q12

Answer: No, these cannot be taken as canonical forms because the positions of atoms have been changed.

Question 13. Write the resonance structures for SO3,NO2 and NO3

Answer:
6

Question 14. Use Lewis symbols to show electron transfer between the following atoms to form cations and anions (a) K and S (b) Ca and O (c) Al and N.

Answer:
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure Q14
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure Q14.1

Question 15. Although both CO2 and H2O are triatomic molecules, the shape of H2O molecule is bent while that of CO2 is linear. Explain this on the basis of dipole moment.

Answer:  In CO2, there are two C=O bonds. Each C=O bond is a polar bond.
The net dipole moment of CO2 molecule is zero. This is possible only if CO2 is a linear molecule. (O=C=O). The bond dipoles of two C=O bonds cancel the moment of each other.
Whereas, H2O molecule has a net dipole moment (1.84 D). H2O molecule has a bent structure because here the O—H bonds are oriented at an angle of 104.5° and do not cancel the bond moments of each other.

Question 16. Write the significance/applications of dipole moment.

Answer: 

  • In predicting the nature of the molecules: Molecules with specific dipole moments are polar in nature and those of zero dipole moments are non-polar in nature.
  • In the determination of shapes of molecules.
  • In calculating the percentage ionic character.

Question 17. Define electronegativity. How does it differ from electron gain enthalpy?

Answer: Electronegativity: Electronegativity is the tendency of an atom to attract shared pair of electrons. It is the property of bonded atom.
Whereas, electron gain enthalpy is the tendency of an atom to attract outside electron. It is the property of an isolated atom.

Question 18. Explain with the help of suitable example polar covalent bond.

Answer: When two atoms with different electronegativity are linked to each other by covalent bond, the shared electron pair will not in the centre because of the difference in electronegativity. For example, in hydrogen flouride molecule, flouride has greater electronegativity than hydrogen.

Thus, the shared electron pair is displaced more towards flourine atom, the later will acquire a partial negative charge (∂). At the same time hydrogen atom will have a partial positive charge (∂+). Such a covalent bond is known as polar covalent bond or simply polar bond.
It is represented as
7

Question 19. Arrange the bonds in order of increasing ionic character in the molecules: LiF, K2O, N2, SO2 and ClF3.

Answer: N2 < SO2 < ClF3 < K2O < LiF

Question 20. The skeletal structure of CH3COOH as shown below is correct, but some of the bonds are shown incorrectly. Write the correct Lewis structure for acetic acid.
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure Q20

Answer:
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure Q20.1

Question 21. Apart from tetrahedral geometry, another possible geometry for CH4 is square planar with the four H atoms at the comers of the square and the C atom at its centre. Explain why CH4 is not square planar?

Answer: According to VSEPR theory, if CH4were square planar, the bond angle would be 90°. For tetrahedral structure, the bond angle is 109°28′. Therefore, in square planar structure, repulsion between bond pairs would be more and thus the stability will be less.

Question 22. Explain why BeH2 molecule has a zero dipole moment although the Be—H bonds are polar.

Answer: BeH2is a linear molecular (H—Be—H), the bond angle = 180°.
Be—H bonds are polar due to difference in their electronegativity but the bond polarities cancel each other. Thus, molecule has resultant dipole moment of zero.

Question 23. Which out of NH3 and NF3 has higher dipole moment and why?

Answer: In NH3 and NF3, the difference in electronegativity is nearly same but the dipole moment of NH3 = (1.46D) For Example, NH3 = (0.24D)
In NH3, the dipole moments of the three N—H bonds are in the same direction as the lone pair of electron. But in NF3, the dipole moments of the three N—F bonds are in the direction opposite to that of the lone pair. Therefore, the resultant dipole moment in NH3 is more than in NF3.

Question 24. What is meant by hybridisation of atomic orbitals? Describe the shapes of sp, sp2, sp3 hybrid orbitals.

Answer:  Hybridisation: It is defined as the process of intermixing of atomic oribitals of slightly different energies to give rise to new hybridized orbitals having equivalent energy and identical shapes.
Shapes of Orbitals:
sp hybridisation: When one s-and one p-orbital, intermix then it is called sp-hybridisation. For example, in BeF2, Be atom undergoes sp-hybridisation. It has linear shape. Bond angle is 180°.
sphybridisation: One s-and two p-orbitals get hybridised to form three equivalent hybrid orbitals. The three hybrid orbitals directed towards three corners of an equilateral triangle. It is, therefore, known as trigonal hybridisation.
sp3 hybridisation: One s-and three p-orbitals get hybridised to form four equivalent hybrid orbitals. These orbitals are directed towards the four corners of a regular tetrahedron.

Question 25. Describe the change in hybridisation (if any) of the Al atom in the following reaction. AlCl3 + Cl ——> AlCl4- .

Answer: Electronic configuration of 13Al = 1s2 2s2 2p6 3s1 3px13py1
(excited state)
Hence, hybridisation will be SP2
In AlCl4, the empty 3porbital is also involved. So, the hybridisation is sp3 and the shape is tetrahedral.

Question 26. Is there any change in the hybridisation of B and N atoms as a result of the following reaction ? BF3 + NH3 ——-> F3 B.NH3

Answer: In BF3, B atom is sp2 hybridised. In NH3, N is sphybridised.
After the reaction, hybridisation of B changes from sp2 to sp3.

Question 27. Draw diagrams showing the formation of a double bond and a triple bond between carbon atoms in C2 H4 and C2 Hmolecules.

Answer:
8

Question 28. What is the total number of sigma and pi bonds in the following molecules?
(a) C2 H2 (b) C2 H4

Answer:  (a) H—C = C—H
Sigma bond = 3 Π bonds = 2
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure Q28

Question 29. Considering X-axis as the intemuclear axis which out of the following will not form a sigma bond and why? (a) Is and Is (b) Is and 2p(c) 2pand 2py (d) Is and 2s

Answer: (c) It will not form a s-bond because taking x-axis as the intemuclear axis, there will be lateral overlap between the two 2py orbitals forming a Π -bond.

Question 30. Which hybrid orbitals are used by carbon atoms in the following molecules?
(a) CH3-CH3 (b) CH3-CH = CH2 (c) CH3-CH2-OH (d) CH3-CHO (e) CH3COOH.

Answer:
9

Question 31. What do you understand by bond pairs and lone pairs of electrons? Illustrate by giving one example of each type.

Answer: The electron pair involved in sharing between two atoms during covalent bonding is called shared pair or bond pair. At the same time, the electron pair which is not involved in sharing is called lone pair of electrons.
10

Question 32. Distinguish between a sigma bond and a pi bond.

Answer:
11

Question 33. Explain the formation of H2 molecule on the basis of valence bond theory.

Answer: Let us consider the combination between atoms of hydrogen HA and HB and eA and eB be their respective electrons.
As they tend to come closer, two different forces operate between the nucleus and the electron of the other and vice versa. The nuclei of the atoms as well as their electrons repel each other. Energy is needed to overcome the force of repulsion.

Although the number of new attractive and repulsive forces is the same, but the magnitude of the attractive forces is more. Thus, when two hydrogen atoms approach each other, the overall potential energy of the system decreases. Thus, a stable molecule of hydrogen is formed.

Question 34. Write the important conditions required for the linear combination of atomic orbitals to form molecular orbitals.

Answer:

  • The combining atomic orbitals should have comparable energies.
    For example, Is orbital of one atom can combine with Is atomic orbital of another atom, 2s can combine with 2s.
  • The combining atomic orbitals must have proper orientations. So that they are able to overlap to a considerable extent.
  • The extent of overlapping should be large.

Question 35. Use molecular orbital theory to explain why the Be2 molecule does not exist.

Answer:
12

Question 36. Compare the relative stability of the following species and indicate their magnetic properties: O2, O2, O2 (Superoxide),O22- (peroxide)

Answer: O2— Bond order = 2, paramagnetic
O2+— Bond order = 2.5, paramagnetic
O2— Bond order = 1.5, paramagnetic
O22- — Bond order = 1, diamagnetic
Order of relative stability is
O2+ > O> O2 > O22-
(2.5) (2.0) (1.5) (1.0)

Question 37. Write the significance of plus and minus sign in representing the orbitals,

Answer:  Plus and minus sign is used to indentify the nature of electrons wave. Plus (+ve) sign denotes crest, while (-ve) sign denotes trough.

Question 38. Describe the hybridisation in case of PCl5. Why are the axial bonds longer as compared to equatorial bonds?

Answer: The ground state E.C. and the excited state E.C. of phosphorus are represented as:
13
The one s, three-p and one d-orbitals hybridise to yield five sets of SPd hybrid orbitals which are directed towards the five corners of a trigonal bipyramidal as in Fig.
14
Because axial bond pairs suffer more repulsive interaction from the equatorial bond pairs, therefore axial bonds have been found to be slightly longer and hence slightly weaker than equatorial bonds.

Question 39. Define hydrogen bonds. Is it weaker or stronger than the van der Waals forces?

Answer: When hydrogen is attached with highly electronegative element in a covalent bonding the electrons of the covalent bond are shifted towards the more electronegative atom. Thus, a partially positively charged hydrogen atom forms a bond with the other more electronegative atom. This bond is known as a hydrogen bond. Hydrogen bond is stronger than the van der Waals forces.

Question 40. What is meant by the term bond order? Calculate the bond order of N2, O2, O2+,O2

Answer:  Bond order is defined as the half of the difference between the number of electrons present in bonding and antibonding molecular orbitals.
15

MORE QUESTIONS SOLVED

I. Very Short Answer Type Questions
Question 1. How is bond order related to the stability of a molecule?

Answer: Higher the bond order, greater is the stability.

Question 2. Write the type of hybridisation involved in CH4,C2Hand C2H2.

Answer: CH4= sp3
C2H4 = sp2
C2H2 = sp

Question 3. Out of sigma and Π bonds, which one is stronger and why?

Answer: sigma-bond is stronger. This is because sigma-bond is formed by head-on overlapping of atomic orbitals and Π bond is formed by side wise overlapping.

Question 4. Write the Lewis dot symbols of the following elements and predict their valences. (i) Cl (ii) P

Answer:
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure VSAQ Q4

Question 5. Predict the shapes of the following molecules using VSEPR theory?
(i) BeCl2(ii) SiCl4

Answer: (i) Linear
(ii) Tetrahedral

Question 6. Write the state of hybridisation of boron in BF3.

Answer:  SP2

Question 7. Arrange O2,O2,O22-, O2+in increasing order of bond energy. 

Answer:  O22-< O2 < O22-< O2+

Question 8. What is meant by bond pairs of electrons?

Answer: The electron pairs involved in the bond formation are known as bond pairs or shared pairs.

Question 9. Which of the following has larger bond angle in each pair?
(i) CO2, BF3 (ii) NH3, CH4

Answer: (i) CO2 (ii) CH4

Question 10. Arrange the following, according to increasing covalent nature.
NaCl, MgCl2, AlCl3
Answer: NaCl < MgCl2 < AlCl3

Question 11. Define covalent bond according to orbital concept?

Answer: Covalent bond can be formed by the overlap of the orbitals belonging to the two atoms having opposite spins of electrons.

Question 12. Why Bis paramagnetic in nature while C2 is not?

Answer:  The molecular orbital electronic configuration of both B2 and C2 are.
16
Since, B2has two impaired electrons, B2 is paramagnetic.
C2 has no unpaired electron. Thus, C2 is diamagnetic.

Question 13. Why ethyl alcohol is completely miscible with water?

Answer: This is because ethyl alcohol forms H-bonds witfi water.

Question 14. Which is more polar COor N2O? Give reason.

Answer: N2O is more polar than CO2.
This is “because CO2 is linear and symmetrical. Its net dipole moment is zero.
N2O is linear but not symmetrical. It has a net dipole moment of sigma II6D.

Question 15. State the types of hybrid orbitals associated with (i) P in PCland (ii) S in SF6

Answer: (i) sp3d of P in PCl5 (ii) sp3dof S in SF6

Question 16. Why Nis more stable than O2? Explain on the basis of molecular orbital theory.

Answer: Bond order of N2 (= 3) is greater than that of O2 (= 2).

Question 17. How is bond order related to bond length of a molecule?

Answer:  Bond length is inversely proportional to bond order.

Question 18. Out of bonding and antibonding molecular orbitals, which one has lower energy and which one has higher stability?

Answer: Bonding molecular orbital has lower energy and higher stability.

Question 19. Define antibonding molecular orbital.

Answer: The molecular orbital formed by the subtractive effect of the electron waves of the combining atomic orbitals, is called antibonding molecular orbital.

Question 20. Name the two conditions which must be satisfied for hydrogen bonding to take place in a molecule.

Answer: (i) The molecule should contain highly electronegative atom like hydrogen atom. (ii) The size of electronegative atom should be small.

II. Short Answer Type Questions
Question 1.What is an electrovalent (or ionic) bond? Explain its formation with two examples.

Answer: When a chemical bond is formed by the complete transfer of electrons from one atom to another, so as to complete their outermost shell and therefore, aquire the stable noble gas configuration, the bond formed is called ionic bond or electrovalent bond. ‘
For Example,
17

Question 2. What are Lewis structures? Write the Lewis structure of H2, BeF2 and H2O.

Answer: The outer shell electrons are shown as dots surrounding the symbol of the atom. These symbols are known as Lewis symbols or Lewis structures.
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure SAQ Q2

Question 3. Define Lattice energy. How is Lattice energy influenced by (i) Charge on the ions (ii) Size of the ions?

Answer: Lattice energy is defined as the energy released when one mole of crystalline solid is formed by the combination of oppositely charged ions.
(i)As the magnitude of charge on an ion increases there will be greater force of interionic attraction and hence greater will be the value of Lattice energy,
(ii)Smaller the. size of the ions> lower will be the intemuclear distance and thus greater will be the Lattice energy,

Question 4. Give the shapes of the following molecules:
(i) AB3 (ii) AB4

Answer:
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure SAQ Q4

Question 5. Define Hybridisation. Explain sp hybridisation with suitable example.

Answer: Hybridisation: It is the phenomenon of intermixing of atomic orbitals of slightly different energies to form new hybrid orbitals of equivalent energy,
Formation of water. In water (H20)> the atomic number of oxygen is 8 and its orbitals electronic configuration is 1s2 2s2 2px2 2py1 2pz1.The oxygen atom is also SPhybridised. However, in this case, the two orbitals with one electron each (half filled) are involved in overlap With the hydrogen orbitals.
18

Question 6. Account for the following:
(i) Water is a liquid while H2S is a gas
(ii) NH3 has higher boiling point than PH3.

Answer: (i) In case of water hydrogen bonding causes association of the H2O molecules. There is no such hydrogen bonding in H2S, that’s why it is a gas.
(ii) There is hydrogen bonding in NH3 but not in PH3.

Question 7. What do you mean by Dipole moment? Draw the dipole diagram of H2O.

Answer: The product of magnitude of charges (+ve, or -ve) and distance between them is called dipole moment. It is usually denoted by µ.
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure SAQ Q7

Question 8. What are the main postulates of Valence Shell Electron Pair Repulsion (VSEPR) theory?

Answer: 

  •  The shape of a molecule depends upon the no. of electron pairs around the central atom.
  • There is a repulsive force between the electron pairs, which tend to repel one another.
  • The electron pairs in space tend to occupy such positions that they are at maximum distance so, that the repulsive force will be minimum.
  • A multiple bond is treated as if it is single bond and the remaining electron pairs which constitute the bond may be regarded as single super pair.

Question 9. Define bond order. How is it related to the stability of a molecule?

Answer: Bond order is defined as half of the difference between the number of electrons present in bonding and antibonding molecular orbitals.
Bond order (B.O.) = 1/2[Nb – Na ] z
If the bond order is positive (Nb > Na), the molecule or ion will be stable. If it is negative (Nb < Na)the molecule or ion will be unstable.

Question 10. Explain the diamagnetic behaviour of Pmolecule on the basis of molecular orbital theory.

Answer:
19

III. Long Answer Type Questions
Question 1. (a) Explain the formation of ionic bond with two examples.
(b) Discuss the conditions which favour the formation of ionic bond.

Answer: (a) An ionic or electrovalent bond is formed by the complete transference of one or more electrons from one atom to another.
20
(b) Conditions favourable for the formation of ionic bond:
(i)Lesser the ionization enthalpy, easier will be the removal of an electron i.e., formation of a positive ion and hence greater the chances of formation of ionic bond.
(ii)Higher is the electron affinity, more is the energy released and stabler will be the negative ion produced. Consequently, the probability of formation of ionic bond will be enhanced.

Question 2. (a) Define dipole moment. What are the units of dipole moment?
(b) Dipole moment values help in predicting the shapes of covalent molecules. Explain.

Answer: (a)Dipole moment: In a polar molecule, one end bears a positive charge and the other has a negative charge. Thus, the molecule has two poles with equal magnitude of the charges.

The molecule is known as dipolar molecule and possesses dipole moment.
It is defined as the product of the magnitude of the positive or negative charge and the distance between the charges. µ (dipole moment) = q x d
SI unit of dipole moment is coulomb metre (m) or Debye.

(b)The dipole moment values are quite helpful in determining the general shapes of molecules.
For molecules with zero dipole moment, shapes will be either linear or symmetrical. For Example. BeF2 CO2etc. Molecules that possess dipole moments, their shape will not be symmetrical.

Question 3. Discuss the orbital structures of the following molecules on the basis of hybridisation, (i) BH(ii) C2H2

Answer:
21
B atom gets hybridised to form three equivalent hybrid orbitals directed towards three comers of equilateral triangle with B atoms in the centre. Bond angle = 120°.
22
Both the carbon atoms are sp hybridised. Both the carbon atoms have also two unhybridized orbitals which overlap sidewise with the similar orbitals of the other carbon atom to form two Jt bonds.

Question 4. (a) How many a and n bonds are present in
NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure LAQ Q4
(b) Why Hf is more stable than H2?
(c) Why is B2 molecule paramagnetic?

Answer:  (a) No. of c bonds = 7
23

NCERT Solutions for Class 11 Chemistry Chapter 4 Chemical Bonding and Molecular Structure LAQ Q4.2

IV. Multiple Choice Questions
Question 1. A co-ordinate bond is formed by:
(a)sharing of electrons contributed by both the atoms
(b)complete transfer of electrons
(c)sharing of electrons contributed by one atom only (d) none of these
Question 2. The species CO, CNand N2are:
(a) isoelectronic (b) having coordinated bond
(c)having polar bond (d) having low bond energies
Question 3. The axial overlap between the two orbitals leads to the formation of a:
(a) sigma bond (b) pi bond (c) multiple bond (d) none of these
Question 4. In S0molecule, S atom is:
(a)sphybridized (b) sp hybridized (c) sphybridized (d) d sphybridized
Question 5. A molecule or ion is stable if:
(a) Nb = Na (b) Nb < Na (c) Na < Nb (d) Na – Nb = + ve
Question 6. The molecule Ne2 does not exist because
(a) Nb > Na (b) Nb = Na + (c) Nb < Na (d) None of these
Question 7. Which one is diamagnetic among NO+, NO and NO ?
(a)NO+(b) NO (c) NO(d) None of these
Question 8. In sp3, sp2 and sp hybridized carbon atom, the p character is maximum in:
(a) sp3 (b) sp2
(c) sp (d) all of the above have same p-character
Question 9. Out of the following, intramolecular hydrogen bonding exists in:
(a) water (b)H2S (c) 4-nitrophenol (d) 2-nitrophenol

Answer:  1. (c) 2. (a) 3. (a) 4. (c) 5. (c)
6. (b) 7. (a) 8. (a) 9. (d)

Here we presented you everything about CBSE NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure. Still, if you find any sort of doubts make sure to ask us since are always here to help you out.

FAQ: NCERT Solutions For Chemistry Chapter 4

Are NCERT Solutions For Chemistry Chapter 4 difficult to understand?

No not at all, if you practice regularly NCERT Solutions For Chemistry Chapter 4 is not much difficult to understand. 

Can I download NCERT Solutions for Class 11 Chemistry Chapter 4 PDF for free?

Yes, you can download NCERT Solutions for Class 11 Chemistry Chapter 4 PDF For free.

What is the name of NCERT Solutions For Chemistry Chapter 4?

The name of NCERT Solutions For Chemistry Chapter 4 is Chemical Bonding And Molecular Structure

What are the topics included in NCERT Solutions For Chemistry Chapter 4?

VSEPR theory
Lewis structures
Valence bond theory
The polar character of covalent bonds
The concept of hybridization
The molecular orbital theory of homonuclear diatomic molecules
Hydrogen bonding

What are the NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure Subtopics?

You can refer to the above article to know about the subtopics for NCERT Solutions For Chemistry Chapter 4 Chemical Bonding And Molecular Structure.

Leave a Comment

Top 10 Professional Courses With High-Paying Jobs 2024 Top 8 Online MCA Colleges in India 2024 Skills You Will Gain from an Online BBA Programme How to stay motivated during distance learning Things to know before starting with first year of medical school