NCERT Exemplar Class 11 Chemistry Chapter 7 Equilibrium
NCERT Exemplar for Class 11 Chemistry Chapter 7
CBSE Class 11 Chemistry is one of the challenging subjects with different chapters containing valuable information, details, concepts, principles, experiments, etc. Students willing to learn about them more closely must refer to the NCERT Exemplar for Class 11 Chemistry which contains different patterns of questions that focus on increasing your knowledge level. The solutions of all the chapters are provided on the platform, students can easily access them to learn more about them.
NCERT exemplar for class 11 chemistry Chapter 11 Equilibrium helps students to advance their understanding of each section presented in the chapter. Learners preparing for the 12th board next year, or medical entrances can use this exemplar solutions to prepare their revision notes. The answers are collated by the subject matter experts at SimplyAcad to assist students in performing well and grasping the basics of the chemistry well. There are other ncert exemplar for class 11 science on this site for students to explore.
I. Multiple Choice Questions (Type-I)
1. We know that the relationship between Kc and Kp is
Kp = Kc(RT)∆n
What would be the value of ∆n for the reaction
NH4Cl (s) → NH3 (g) + HCl (g)
(i) 1
(ii) 0.5
(iii) 1.5
(iv) 2
Solution:
Option (iv) is the answer.
2. For the reaction H2(g) + I2(g) → 2HI (g), the standard free energy is ∆G > 0.
The equilibrium constant (K ) would be __________.
(i) K = 0
(ii) K > 1
(iii) K = 1
(iv) K < 1
Solution:
Option (iv) is the answer.
3. Which of the following is not a general characteristic of equilibria involving
physical processes?
(i) Equilibrium is possible only in a closed system at a given temperature.
(ii) All measurable properties of the system remain constant.
(iii) All the physical processes stop at equilibrium.
(iv) The opposing processes occur at the same rate and there is dynamic
but stable condition.
Solution:
Option (iii) is the answer.
4. PCl5, PCl3 and Cl2 are at equilibrium at 500K in a closed container and their
concentrations are 0.8 × 10–3 mol L–1, 1.2 × 10–3 mol L–1 and 1.2 × 10–3 mol L–1
respectively. The value of Kc for the reaction PCl5 (g) PCl3 (g) + Cl2 (g)
will be
(i) 1.8 × 103
mol L–1
(ii) 1.8 × 10–3
(iii) 1.8 × 10–3 L mol–1
(iv) 0.55 × 104
Solution:
Option (ii) is the answer.
5. Which of the following statements is incorrect?
(i) In equilibrium mixture of ice and water kept in perfectly insulated flask
mass of ice and water does not change with time.
(ii) The intensity of red colour increases when oxalic acid is added to a
solution containing iron (III) nitrate and potassium thiocyanate.
(iii) On addition of the catalyst, the equilibrium constant value is not affected.
(iv) The equilibrium constant for a reaction with negative ∆H value decreases
as the temperature increases.
Solution:
Option (ii) is the answer.
6. When hydrochloric acid is added to cobalt nitrate solution at room
temperature, the following reaction takes place and the reaction mixture
becomes blue. On cooling the mixture it becomes pink. Based on this
information mark the correct answer.
[Co (H2O)6]3+ (aq) + 4Cl–(aq) ⇌ [CoCl4]2– (aq) + 6H2O (l)
(pink) (blue)
(i) ∆H > 0 for the reaction
(ii) ∆H < 0 for the reaction
(iii) ∆H = 0 for the reaction
(iv) The sign of ∆H cannot be predicted based on this information.
Solution;
Option (i) is the answer.
7. The pH of neutral water at 25°C is 7.0. As the temperature increases, ionization of water increases, however, the concentration of H+ ions and OH– ions are equal. What will be the pH of pure water at 60°C?
(i) Equal to 7.0
(ii) Greater than 7.0
(iii) Less than 7.0
(iv) Equal to zero
Solution:
Option (iii) is the answer.
8. The ionisation constant of an acid, Ka, is the measure of the strength of an acid. The Ka values of acetic acid, hypochlorous acid and formic acid are 1.74 × 10–5, 3.0 × 10–8 and 1.8 × 10–4 respectively. Which of the following orders of pH of 0.1 mol dm–3 solutions of these acids are correct?
(i) acetic acid > hypochlorous acid > formic acid
(ii) hypochlorous acid > acetic acid > formic acid
(iii) formic acid > hypochlorous acid > acetic acid
(iv) formic acid > acetic acid > hypochlorous acid
Solution:
Option (iv) is the answer.
9. Ka, 2Ka and 3Ka is the respective ionisation constants for the following
reactions.
H2S ⇌ H+ + HS–
HS– ⇌ H+ + S2–
H2S ⇌ 2H+ + S2–
The correct relationship between Ka1 , Ka2 and Ka3 is
(i) Ka3 = Ka1 × Ka2
(ii) Ka3 = Ka1 + Ka2
(iii) Ka3 = Ka1 – Ka2
(iv) Ka3 = Ka1 /Ka2
Solution:
Option (i) is the answer.
10. The acidity of BF3 can be explained based on which of the following concepts?
(i) Arrhenius concept
(ii) Bronsted Lowry concept
(iii) Lewis concept
(iv) Bronsted Lowry as well as Lewis concept.
Solution:
Option (iii) is the answer.
11. Which of the following will produce a buffer solution when mixed in equal
volumes?
(i) 0.1 mol dm–3 NH4OH and 0.1 mol dm–3 HCl
(ii) 0.05 mol dm–3 NH4OH and 0.1 mol dm–3 HCl
(iii) 0.1 mol dm–3 NH4OH and 0.05 mol dm–3 HCl
(iv) 0.1 mol dm–3 CH4COONa and 0.1 mol dm–3 NaOHSolution:
Option (iii) is the answer.
12. In which of the following solvents is silver chloride most soluble?
(i) 0.1 mol dm–3 AgNO3 solution
(ii) 0.1 mol dm–3 HCl solution
(iii) H2O
(iv) Aqueous ammoniaSolution:
Option (iv) is the answer.
13. What will be the value of pH of 0.01 mol dm–3 CH3COOH (Ka = 1.74 × 10–5 )?
(i) 3.4
(ii) 3.6
(iii) 3.9
(iv) 3.0
Solution:
Option (i) is the answer.
14. Ka for CH3COOH is 1.8 × 10–5 and Kb for NH4OH is 1.8 × 10–5. The pH of
ammonium acetate will be
(i) 7.005
(ii) 4.75
(iii) 7.0
(iv) Between 6 and 7
Solution:
Option (iii) is the answer.
15. Which of the following options will be correct for the stage of half completion
of the reaction A ⇌ B
(i) ∆Gᶱ= 0
(ii) ∆Gᶱ > 0
(iii) ∆Gᶱ< 0
(iv) ∆Gᶱ= –RT ln2.
Solution:
Option 9i) is the answer.
16. On increasing the pressure, in which direction will the gas-phase reaction
proceed to re-establish equilibrium, is predicted by applying Le Chatelier’s
principle. Consider the reaction.
N2 (g) + 3H2 (g) ⇌ 2NH3 (g)
Which of the following is correct, if the total pressure at which the equilibrium
is established, is increased without changing the temperature?
(i) K will remain the same
(ii) K will decrease
(iii) K will increase
(iv) K will increase initially and decrease when pressure is very highSolution:
Option (i) is the answer.
17. What will be the correct order of vapour pressure of water, acetone and ether
at 30°C. Given that among these compounds, water has a maximum boiling
Do point and ether have a minimum boiling point?
(i) Water < ether < acetone
(ii) Water < acetone < ether
(iii) Ether < acetone < water
(iv) Acetone < ether < water
Solution:
Option (ii) is the answer.
18. At 500 K, the equilibrium constant, 6Kc, for the following reaction is 5.
1/2 H2 (g) +1/2 I2 (g) ⇌ HI (g)
What would be the equilibrium constant Kc
for the reaction
2HI (g) ⇌ H2 (g) + I2 (g)
(i) 0.04
(ii) 0.4
(iii) 25
(iv) 2.5
Solution:
Option (I) is the answer.
19. In which of the following reactions, the equilibrium remains unaffected on
addition of small amount of argon at constant volume?
(i) H2 (g) + I2 (g) ⇌ 2HI (g)
(ii)PCl5 (g) ⇌ PCl3 (g) + Cl2 (g)
(iii) N2 (g) + 3H2 (g) ⇌ 2NH3 (g)
(iv) The equilibrium will remain unaffected in all the three cases.
Solution:
Option (iv) is the answer.
II. Multiple Choice Questions (Type-II)
In the following questions, two or more options may be correct.
20. For the reaction N2O4 (g) ⇌ 2NO2 (g), the value of K is 50 at 400 K and 1700
at 500 K. Which of the following options is correct?
(i) The reaction is endothermic
(ii) The reaction is exothermic
(iii) If NO2 (g) and N2O4 (g) are mixed at 400 K at partial pressures 20 bar
and 2 bar respectively, more N2O4
(g) will be formed.
(iv) The entropy of the system increases.
Solution:
Option (i) (iii) and (iv) are the answers.
21. At a particular temperature and atmospheric pressure, the solid and liquid
phases of a pure substance can exist in equilibrium. Which of the following
Does the term define this temperature?
(i) Normal melting point
(ii) Equilibrium temperature
(iii) Boiling point
(iv) Freezing point
Solution:
Option (i) and (iv) are the answers.
III. Short Answer Type
22. The ionisation of hydrochloric in water is given below:
HCl(aq) + H2O (l ) ⇌ H3O+(aq) + Cl–(aq)
Label two conjugate acid-base pairs in this ionisation.
Solution:
The two conjugate acid-base pairs in the ionisation of HCl are (HCl-Cl-) in which HCl is the conjugate acid and Cl- is the conjugate base similarly the second pair is (H2O-H3O+) in which H2O is the conjugate base and H3O+ is the conjugate acid.
23. The aqueous solution of sugar does not conduct electricity. However, when sodium chloride is added to water, it conducts electricity. How will you explain this statement on the basis of ionization and how is it affected by the concentration of sodium chloride?
Solution;
The aqueous solution of sugar does not conduct electricity because they exist as a molecule in water. They don’t have free ions to conduct electricity but in the case of NaCl, free ions of Na+ and Cl- are present to conduct electricity. Conductance depends on the no. of ions present in the solution. More will the no. of ions of NaCl in water more will be the conductivity.
24. BF3 does not have proton but still acts as an acid and reacts with NH3. Why is it so? What type of bond is formed between the two?
Solution:
According to Lewis concept e- deficient species are called lewis acid so BF3 will act as a lewis acid while NH3 (N=1s2 2s2 2p3) has a lone pair so it will act as a lewis base and it will donate its lone pair to the empty p-orbital of Boron through a coordinate bond to form an adduct.
25. Ionization constant of a weak base MOH is given by the expression
Kb = [M+][OH-]/[MOH-]
Values of ionisation constant of some weak bases at a particular temperature are given below:
Base Di-methylamine Urea Pyridine Ammonia
Kb 5.4 × 10-4 1.3 × 10-14 1.77× 10-9 1.77 × 10-5
Arrange the bases in decreasing order of the extent of their ionisation at Equilibrium. Which of the above base is the strongest?
Solution:
The decreasing order of bases based on the ionisation constant at Equilibrium will be;-
Di-methylamine > Ammonia > Pyridine > Urea
The strongest base will be Di-methyl amine as its pKb value is 3.29 and we know that the less the pKb value strong is the base.
26. The conjugate acid of a weak base is always stronger. What will be the decreasing order of basic strength of the following conjugate bases?
OH-, RO-, CH3COO-, Cl-
Solution:
The conjugate base of a strong acid is weak therefore the decreasing order of basic strength will be;
RO- > OH- > CH3COO- > Cl-
28. Arrange the following in increasing order of pH
KNO3 (aq), CH3COONa (aq), NH4Cl (aq), C6 H5COONH4 (aq)
Solution:
The increasing order of pH will be;
CH3COONa< KNO3< C6H5COONH4<NH4Cl
CH3COONa is a salt of a weak acid (CH3COOH) and strong base (NaOH)
KNO3 is a salt of strong acid (HNO3)-strong base (KOH)
C6H5COONH4 is a salt of a weak acid (benzoic acid) and weak base (NH4OH)
NH4Cl is a salt of a strong acid (HCl) and a weak base (NH4OH)
28. The value of Kc for the reaction 2HI (g) ⇋ H2 (g) + I2 (g) is 1 × 10-4
At a given time, the composition of the reaction mixture is
[HI] =2 × 10-5 mol, [H2] =1 × 10-5 mol and [I2] =1 × 10-5 mol. In which direction will the reaction proceed?
Solution:
Given that Kc = 1×10-4
Kc = [H2][I2]/[HI]2
Qc expresses the relative ratio of products to reactants at a given instant.
Qc = [H2][I2]/[HI]2
= (1×10-5)(1×10-5)/(2×10-4)
Qc = 1/4 = 0.25
Here; QC >KC Reaction will proceed in reverse direction.
29. Based on the equation pH = – log [H+], the pH of 10-8 mol dm-3 solution of HCl should be 8. However, it is observed to be less than 7.0. Explain the reason.
Solution:
The solution is very dilute here and we know that HCl reacts with water to form hydronium ion. A decrease in pH can be observed as a result of a large concentration of H+. Hydronium ion concentration also to be considered here.
Now total pH will be; [H3O+] = 10-8 + 10-7 M = 7
Hence the solution will be acidic.
30. The pH of a solution of a strong acid is 5.0. What will be the pH of the solution obtained after diluting the given solution 100 times?
Solution:
As we dilute the solution, the concentration of the solution will reduce by how much times we are diluting it.
When diluted 100 times [h+] = 10-5/100 = 10-7mol/L
And, pH Value will be = pH = -log [H+]
=-log [10-7] = 7
Hence the pH after diluting solution a hundred times will be 7.
31. A sparingly soluble salt gets precipitated only when the product of the concentration of its ions in the solution (Qsp) becomes greater than its solubility product. If the solubility of BaSO4 in water is 8 × 10-4 mol dm-3, calculate its solubility in 0.01 mol dm-3 of H2SO4.
Solution:
Given, the solubility of BaSO4 in water= 8 ×10-4 g/L
The equation of disassociation of BaSO4 will be-
BaSO4 ⇌ Ba2+ + SO42-
(S’ is the solubility of Ba2+ in 0.01 HCl)
S <<< 0.01, so it can be neglected
We know that Ksp = S2
Ksp = (8×10-8)2
= 64×10-8
Now, Ksp= (S’) (0.01)
S’ = 64.8×10-8/0.01 = 6.4×10-5
Hence solubility of BaSO4 in 0.01 mol dm-3 of H2SO4 is 6.4×10-5
32. pH of 0.08 mol dm-3 HOCl solution is 2.85. Calculate its ionisation constant.
Solution:
Given, pH =2.85 and C =0.08 mol dm-3
Now since HOCl is a weak acid its dissociation will be given as-
HOCl + H2O ⇌ H30+ + OCl-
We know that;
pH = -log [H+]
-2.85 = log [H+] [H+] = antilog (-2.85)
[H+] = 1.41 × 10-3We also know that, for a weak mono basic acid-
(On squaring both sides) [H+]2 = kaC
Ka = (1.41 x 10-3)2/ 0.08 = 2.5 × 10-5
Hence the ionization constant of HOCl will be 2.5 × 10-5
33. Calculate the pH of a solution formed by mixing equal volumes of two solutions A and B of a strong acid having pH = 6 and pH = 4 respectively.
Solution:
Given, pH of solution A = 6
[H+] of solution A = 10-6 mol/lit.pH of solution B = 4
[H+] of solution B = 10-4 mol/lit.On mixing 1L of each solution we will get total 2L of Solution.
Amount of [H+] in 1L: solution A = 10-6× 1L = 10-6
: Solution B = 10-4 × 1L = 10-4
Total [H+] in Solution = 10-6 + 10-4/2
=10-4 (1+0.01/2)=10-4× 1.01/2
=5×10-5 mol/L
pH = -log[H+]= -log[5×10-5]
=-log(5) + (-5log10)
=-log5 + 5 =4.3
The pH of the Solution formed by mixing will be 4.
34. The solubility product of Al(OH) 3 is 2.7 × 10-11. Calculate its solubility in gL-1 and also find out the pH of this solution. (Atomic mass of Al = 27 u).
Solution:
The equation of disassociation of Al(OH)3will be-
Al(OH)3 ⇌ Al3+ + 3OH-
We know that,
Ksp= [Al3+] [OH-] 3-
=(s) × (3s) 3 =27s4
S4 = Ksp/27
= 2.7x 10-11/27
s4= 10-12
s= (10-12)1/4 =10-3 mol/L
Now, molar mass of Al(OH)3 =78
Solubility= molar mass ×s
= 78 ×10-3
= 7.8 × 10-2 g/L
NOW, we know that-
pH = 14 – pOH
[OH]= 3s = 3 × 10-3pOH= 3-log3
pH = 14 – 3 + log3
= 11.4771
Hence the pH of the solution will be 11.4771 and solubility in g/L will be 7.8×10-2 g/L.
35. Calculate the volume of water required to dissolve 0.1 g lead (II) chloride to get a saturated solution. (Ksp of PbCl2 = 3.2 × 10-8, atomic mass of Pb = 207 u).
Solution:
Given, Ksp of PbCl2 =3.2 ×10-8
The equation of disassociation of PbCl2 will be-
PbCl2 ⇌ Pb2+ + 2Cl-
Ksp = [Pb2+] [Cl-] 2
= (x) × (2x) 2 = 4×3
4×3 =3.2 × 10-8
x=2 ×10-3 mol/L
Solubility = molar mass (PbCl2) × 2 × 10-3
=556 × 10-3 =0.556 g/L
0.1g of PbCl2 will dissolve in 0.1/0.0556 = 0.1798L
The required volume to get a saturated solution of PbCl2 is 0.1798 L
36. A reaction between ammonia and boron trifluoride is given below:
: NH3 + BF3→ H3N: BF3
Identify the acid and base in this reaction. Which theory explains it? What is the hybridisation of B and N in the reactants?
Solution:
Lewis acid in this reaction is NH3 (N=1s22s22p1)as it has a lone pair of e- to donate in its p-orbital and Lewis base Is BF3 as p-orbital of Boron is empty(B=1s22s22p1) so it will accept lone pair from N and form a dative bond. This is explained by lewis electronic theory. The Hybridisation of N is sp3 and B is sp2.
37. Following data is given for the reaction: CaCO3 (s) → CaO3 (s) + CO2 (g)
ΔfH⊖ [CaO (s)] = -635.1 kJ mol=-1
ΔfH⊖ [CO2 (g)] = -393.5 kJ mol-1
ΔfH⊖ [CaCO3 (s)] = -1206.9 kJ mol-1
Predict the effect of temperature on the Equilibrium constant of the above reaction.
Solution:
ΔfH⊖ = ΔfH⊖products- ΔfH⊖reactants
ΔfH⊖ = ΔfH⊖ [CaO(s)] + ΔfH⊖ [CO2(g)]- ΔfH⊖ [CaCO3(s)]
= -635.1 -393.5+1206.9 = 178.3 kJ mol-1
=positive
i.e. the reaction is exothermic.
Hence according to Le Chatelier’s Principle on increasing the temperature, the reaction will shift to forward direction.
IV. Matching Type
38. Match the following equilibria with the corresponding condition
(i) Liquid⇌Vapour
(ii) Solid ⇌Liquid (iii) Solid ⇌Vapour (iv) Solute (s) ⇌Solute (solution)
|
(a) Saturated solution
(b) Boiling point (c) Sublimation point (d) Melting point (e) Unsaturated solution |
---|
Solution:
(i) is b
(ii) is d
(iii) is c
(iv) is a
39. For the reaction : N2 (g) + 3H2(g) → 2NH3(g)
Equilibrium constant Kc= [NH3]2/[N2][H2]3
Some reactions are written below in Column I and their equilibrium constants
in terms of Kc
are written in Column II. Match the following reactions with the
corresponding equilibrium constant
Column I (Reaction)
(i) 2N2(g) + 6H2(g)→4NH3(g) (ii) 2NH3(g)→N2(g) + 3H2(g) (iii)2 N2(g) +3/2 H2(g)→NH3(g)
|
Column II (Equilibrium constant)
(a) 2Kc (b) Kc1/2 (c) 1/Kc (d) Kc2 |
---|
Solution:
(i) is d
(ii) is c
(iii) is b
40. Match standard free energy of the reaction with the corresponding Equilibrium constant
(i) ∆ Gᶱ> 0
(ii) ∆ Gᶱ< 0 (iii) ∆ Gᶱ= 0
|
(a) K > 1
(b) K = 1 (c) K = 0 (d) K < 1 |
---|
Solution:
(i) is d
(ii) is a
(iii) is b
41. Match the following species with the corresponding conjugate acid
Species Conjugate acid
(i) NH3
(ii) HCO3– (iii) H2O (iv) HSO4–
|
(a) CO32–
(b) NH4+ (c) H3O+ (d) H2SO4 (e) H2CO3 |
---|
Solution:
(i) is b
(ii) is e
(iii) is c
(iv) is d
42. Match the following graphical variation with their description
(a) Variation in product concentration
with time
(b) Reaction at equilibrium
(c) Variation in reactant concentration
with time
Solution:
(i) is c
(ii) is a
(iii) is b
43. Match Column (I) with Column (II).
Column I
(i) Equilibrium (ii) Spontaneous reaction (iii) Non-spontaneous reaction
|
Column II
(a) ∆G > 0, K < 1 (b) ∆G = 0 (c) ∆Gᶱ= 0 (d) ∆G < 0, K > 1 |
---|
Solution:
(i) are b and c
(ii) is d
(iii) is a
V. Assertion and Reason Type
In the following questions, a statement of Assertion (A) followed by a statement
of Reason (R) is given. Choose the correct option out of the choices given
below each question.
44. Assertion (A): Increasing order of acidity of hydrogen halides is
HF < HCl < HBr < HI
Reason (R): While comparing acids formed by the elements belonging to
the same group of the periodic table, H–A bond strength is a more
an important factor in determining the acidity of acid than the
polar nature of the bond.
(i) Both A and R are true and R is the correct explanation of A.
(ii) Both A and R are true but R is not the correct explanation of A.
(iii) A is true but R is false.
(iv) Both A and R are false.
Solution:
Option (i) is correct
45. Assertion (A): A solution containing a mixture of acetic acid and sodium
acetate maintains a constant value of pH on the addition of small
amounts of acid or alkali.
Reason (R): A solution containing a mixture of acetic acid and sodium
acetate acts as a buffer solution around pH 4.75.
(i) Both A and R are true and R is the correct explanation of A.
(ii) Both A and R are true but R is not the correct explanation of A.
(iii) A is true but R is false.
(iv) Both A and R are false.
Solution:
Option (i) is correct.
46. Assertion (A): The ionisation of hydrogen sulphide in water is low in the
presence of hydrochloric acid.
Reason (R): Hydrogen sulphide is a weak acid.
(i) Both A and R are true and R is the correct explanation of A.
(ii) Both A and R are true but R is not the correct explanation of A.(iii) A is true but R is false
(iv) Both A and R are false
Solution:
Option (ii) is the answer.
47. Assertion (A): For any chemical reaction at a particular temperature,
the equilibrium constant is fixed and is a characteristic property.
Reason (R): Equilibrium constant is independent of temperature.
(i) Both A and R are true and R is the correct explanation of A.
(ii) Both A and R are true but R is not the correct explanation of A.
(iii) A is true but R is false.
(iv) Both A and R are false.
Solution:
Option (iii) is correct.
48. Assertion (A): Aqueous solution of ammonium carbonate is basic.
Reason (R): Acidic/basic nature of a salt solution of a salt of a weak acid
and weak base depends on Ka and Kb value of the acid and
the base forming it.
(i) Both A and R are true and R is the correct explanation of A.
(ii) Both A and R are true but R is not the correct explanation of A.
(iii) A is true but R is false.
(iv) Both A and R are false.
Solution:
Option (i) is the answer.
49. Assertion (A): An aqueous solution of ammonium acetate can act as a
buffer.
Reason (R): Acetic acid is a weak acid and NH4OH is a weak base.
(i) Both A and R are true and R is the correct explanation of A.
(ii) Both A and R are true but R is not the correct explanation of A.
(iii) A is false but R is true.
(iv) Both A and R are false.
Solution:
Option (iii) is the answer.
50. Assertion (A): In the dissociation of PCl5 at constant pressure and
temperature addition of helium at equilibrium increases the
dissociation of PCl5.
Reason (R): Helium removes Cl2 from the field of action.
(i) Both A and R are true and R is the correct explanation of A.
(ii) Both A and R are true but R is not the correct explanation of A.
(iii) A is true but R is false.
(iv) Both A and R are false.
Solution:
Option (iv) is the answer.
NCERT Exemplar For Class 11 Science
The NCERT exemplars are an effective study material for scoring higher marks in the examination paper. Students must practise these additional questions for their own benefits, as these are curated by the best subject-matter experts to boost both knowledge and confidence. Students can easily access the ncert exemplar for class 11 science by visiting our website SimplyAcad and solve all the questions listed to secure maximum marks.
Here are some other NCERT exemplar for class 11 chemistry:
NCERT exemplar for class 11 chemistry Chapter 1 | NCERT exemplar for class 11 chemistry Chapter 6 |
---|---|
NCERT exemplar for class 11 chemistry Chapter 2 | NCERT exemplar for class 11 chemistry Chapter 8 |
NCERT exemplar for class 11 chemistry Chapter 3 | NCERT exemplar for class 11 chemistry Chapter 9 |
NCERT exemplar for class 11 chemistry Chapter 4 | NCERT exemplar for class 11 chemistry Chapter 10 |
NCERT exemplar for class 11 chemistry Chapter 5 | NCERT exemplar for class 11 chemistry Chapter 12 |
latest video
news via inbox
Nulla turp dis cursus. Integer liberos euismod pretium faucibua