NCERT Exemplar Class 11 Chemistry Chapter 1 Some Basic Concepts Of Chemistry
NCERT Exemplar for Class 11 Chemistry Chapter 1
SimplyAcad has provided the NCERT Exemplar for Class 11 Chemistry below to help students learn about the different topics in a detailed manner. The exemplar will allow students to gain deep insights of all the sections and prepares you better for the upcoming examination. Chemistry is an interesting subject which requires attention to minor details, hence, completing exemplars will be an effective way to increase your marks and boost confidence in you. The given exemplar contains MCQs of two different types, Short, Matching, Assertion and Reason, and Long Answer Type Questions, there are a total of 45 questions. Students can access the NCERT exemplar for class 11 chemistry, Chapter 1: Some Basic Concepts of Chemistry by scrolling below. Along with this, there are several NCERT exemplar for class 11 science of all the chapters provided on this platform.
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Multiple Choice Questions (Type-I)
1. Two students performed the same experiment separately and each one of
them recorded two readings of mass which are given below. The correct reading
of mass is 3.0 g. Based on given data, mark the correct option out of the
following statements.
Student Readings
(i) | (ii) | |
---|---|---|
A | 3.01 | 2.99 |
B | 3.05 | 2.95 |
(i) Results of both the students are neither accurate nor precise.
(ii) Results of student A are both precise and accurate.
(iii) Results of student B are neither precise nor accurate.
(iv) Results of student B are both precise and accurate.
Solution:
Option (ii) is the answer.
2. A measured temperature on the Fahrenheit scale is 200 °F. What will this reading
be on a Celsius scale?
(i) 40 °C
(ii) 94 °C
(iii) 93.3 °C
(iv) 30 °C
Solution:
Option (iii) is the answer.
3. What will be the molarity of a solution, which contains 5.85 g of NaCl(s) per
500 mL?
(i) 4 mol L-1
(ii) 20 molL-1
(iii) 0.2 molL-1
(iv) 2molL-1
Solution:
Option (iii) is the answer.
4. If 500 mL of a 5M solution is diluted to 1500 mL, what will be the molarity of
the solution obtained?
(i) 1.5 M
(ii) 1.66 M
(iii) 0.017 M
(iv) 1.59 M
Solution:
Option (ii) is the answer.
5. The number of atoms present in one mole of an element is equal to Avogadro
number. Which of the following element contains the greatest number of
atoms?
(i) 4g He
(ii) 46g Na
(iii) 0.40g Ca
(iv) 12g He
Solution:
Option (iv) is the answer.
6. If the concentration of glucose (C6H12O6) in the blood is 0.9 g L-1, what will be the
molarity of glucose in the blood?
(i) 5 M
(ii) 50 M
(iii) 0.005 M
(iv) 0.5 M
Solution:
Option (iii) is the answer.
7. What will be the molality of the solution containing 18.25 g of HCl gas in
500 g of water?
(i) 0.1 m
(ii) 1 M
(iii) 0.5 m
(iv) 1 m
Solution:
Option (iv) is the answer.
8. One mole of any substance contains 6.022 × 1023 atoms/molecules. Number
of molecules of H2SO4 present in 100 mL of 0.02M H2SO4 solution is ______.
(i) 12.044 × 1020 molecules
(ii) 6.022 × 1023 molecules
(iii) 1 × 1023 molecules
(iv) 12.044 × 1023molecules
Solution:
Option (i) is the answer.
9. What is the mass per cent of carbon in carbon dioxide?
(i) 0.034%
(ii) 27.27%
(iii) 3.4%
(iv) 28.7%
Solution:
Option (ii) is the answer.
10. The empirical formula and molecular mass of a compound are CH2O and
180 g respectively. What will be the molecular formula of the compound?
(i) C9H18O9
(ii) CH2O
(iii) C6H12O6
(iv) C2H4O2
Solution:
Option (iii) is the answer.
11. If the density of a solution is 3.12 g mL-1, the mass of 1.5 mL solution in
significant figures is _______.
(i) 4.7g
(ii) 4680 × 10 -3g
(iii) 4.680g
(iv) 46.80g
Solution:
Option (i) is the answer
12. Which of the following statements about a compound is incorrect?
(i) A molecule of a compound has atoms of different elements.
(ii) A compound cannot be separated into its constituent elements by
physical methods of separation.
(iii) A compound retains the physical properties of its constituent elements.
(iv) The ratio of atoms of different elements in a compound is fixed.
Solution:
Option (iii) is the answer.
13. Which of the following statements is correct about the reaction given below:
4Fe(s) + 3O2(g) → 2Fe2O3(g)
(i) The total mass of iron and oxygen in reactants = total mass of iron and
oxygen in product therefore it follows the law of conservation of mass.
(ii) The total mass of reactants = total mass of product; therefore, the law of multiple
proportions is followed.
(iii) Amount of Fe2O3 can be increased by taking any one of the reactants
(iron or oxygen) in excess.
(iv) Amount of Fe2O3 produced will decrease if the amount of any one of the
reactants (iron or oxygen) is taken in excess.
Solution:
Option (i) is the answer.
14. Which of the following reactions is not correct according to the law of
conservation of mass.
(i) 2Mg(s) + O2(g) →2MgO(s)
(ii) C3H8(g) + O2(g) → CO2(g) + H2O(g)
(iii) P4(s) + 5O2(g) → P4O10(s)
(iv) CH4(g) + 2O2(g) → CO2(g) + 2H2O (g)
Solution:
Option (ii) is the answer.
15. Which of the following statements indicates that the law of multiple proportions is
being followed.
(i) Sample of carbon dioxide taken from any source will always have carbon
and oxygen in the ratio 1:2.
(ii) Carbon forms two oxides namely CO2 and CO, where masses of oxygen
which combine with a fixed mass of carbon are in the simple ratio 2:1.
(iii) When magnesium burns in oxygen, the amount of magnesium taken
for the reaction is equal to the amount of magnesium in magnesium
oxide formed.
(iv) At constant temperature and pressure, 200 mL of hydrogen will combine
with 100 mL oxygen to produce 200 mL of water vapour.
Solution:
Option (ii) is the answer.
Multiple Choice Questions (Type-II)
In the following questions, two or more options may be correct.
16. One mole of oxygen gas at STP is equal to _______.
(i) 6.022 × 1023 molecules of oxygen
(ii) 6.022 × 1023 atoms of oxygen
(iii) 16 g of oxygen
(iv) 32 g of oxygen
Solution:
Option (i) and (iv) are the answers.
17. Sulphuric acid reacts with sodium hydroxide as follows:
H2SO4 + 2NaOH → Na2SO4+ 2H2O
When 1L of 0.1M sulphuric acid solution is allowed to react with 1L of 0.1M
sodium hydroxide solution, the amount of sodium sulphate formed and its
molarity in the solution obtained is
(i) 0.1 mol L-1
(ii) 7.10 g
(iii) 0.025 mol L-1
(iv) 3.55 g
Solution:
Option (ii) and (iii) are the answers.
18. Which of the following pairs have the same number of atoms?
(i) 16 g of O2(g) and 4 g of H2(g)
(ii) 16 g of O2 and 44 g of CO2
(iii) 28 g of N2 and 32 g of O2
(iv) 12 g of C(s) and 23 g of Na(s)
Solution:
Option (iii) and (iv) are the answers.
19. Which of the following solutions have the same concentration?
(i) 20 g of NaOH in 200 mL of solution
(ii) 0.5 mol of KCl in 200 mL of solution
(iii) 40 g of NaOH in 100 mL of solution
(iv) 20 g of KOH in 200 mL of solution
Solution:
Option (i) and (ii) are the answers.
20. 16 g of oxygen has the same number of molecules as in
(i) 16 g of CO
(ii) 28 g of N2
(iii) 14 g of N2
(iv) 1.0 g of H2
Solution:
Option (iii) and (iv) are the answers.
21. Which of the following terms is unitless?
(i) Molality
(ii) Molarity
(iii) Mole fraction
(iv) Mass per cent
Solution:
Option (iii) and (iv) are the answers.
22. One of the statements of Dalton’s atomic theory is given below:
“Compounds are formed when atoms of different elements combine in a fixed
ratio”
Which of the following laws is not related to this statement?
(i) Law of conservation of mass
(ii) Law of definite proportions
(iii) Law of multiple proportions
Solution:
Option (i) and (iv)
Short Answer Type
23. What will be the mass of one atom of C-12 in grams?
Solution:
1 mole of carbon atom = 12g= 6.022 × 1023 atoms.
24. How many significant figures should be present in the answer to the following
calculations?
2.5 1.25 3.5/2.01
Solution:
Two significant figures should be present in this.
Since the least number of significant figures from the given figure is 2 (in 2.5 and 3.5).
25. What is the symbol for the SI unit of a mole? How is the mole defined?
Solution:
The symbol for the SI unit of the mole is mol. A mole is defined as the amount of substance that contains as many entities as there are atoms in 12g carbon.
26. What is the difference between molality and molarity?
Solution:
Molarity is the number of moles of solute dissolved in 1 litre of the solution. Molality is the number of moles of solute present in 1kg of the solvent.
27. Calculate the mass percent of calcium, phosphorus and oxygen in calcium
phosphate Ca3(PO4)
Solution:
Molecular mass of Ca3(PO4) = 3*40+2*31+8*16 =310
Mass per cent of Ca = 3*40/310*100 = 38.71%
Mass per cent of P = 2*31/310*100 = 20%
Mass per cent of O = 8*16/310 = 41.29%
28. 45.4 L of dinitrogen reacted with 22.7 L of dioxygen and 45.4 L of nitrous
oxide was formed. The reaction is given below:
2N2(g) + O2(g) → 2N2O(g)
Which law is being obeyed in this experiment? Write the statement of the law?
Solution:
The above experiment proves Gay-Lussac’s law which states that gases combine or produced in a chemical reaction in a simple whole-number ratio by volume provided that all gases are the same temperature and pressure.
29. If two elements can combine to form more than one compound, the masses of
one element that combine with a fixed mass of the other element, are in whole-number ratio.
(a) Is this statement true?
(b) If yes, according to which law?
(c) Give one example related to this law.
Solution:
(a) Yes, the statement is true.
(b) According to the law of multiple proportions
(c), Hydrogen and oxygen react to form water and hydrogen peroxide
H2 + 1/2O2 → H2O
H2 + O2 → H2O2
Masses of oxygen which combine the fixed mass of hydrogen are in the ratio 16:32 or 1
30. Calculate the average atomic mass of hydrogen using the following data :
Isotope % | Natural abundance | Molar mass |
---|---|---|
1H | 99.985 | 1 |
2H | 0.015 | 2 |
Solution:
Average atomic mass = 99.985*1+0.015*2/100
=099.985*1+0.015*2/100
=1.00015u
31. Hydrogen gas is prepared in the laboratory by reacting dilute HCl with
granulated zinc. Following reaction takes place.
Zn + 2HCl → ZnCl2 + H2
Calculate the volume of hydrogen gas liberated at STP when 32.65 g of zinc
reacts with HCl. 1 mol of a gas occupies 22.7 L volume at STP; atomic mass of
Zn = 65.3 u.
Solution:
1 mol of gas occupies = 22.7L Volume at STP atomic mass of Zn = 65.3u
From the above equation,
65.3g of Zn when reacts with HCl produces = 22.7L H2 at STP
Therefore, 32.65g of Zn when reacts with HCl will produce = 22.7 * 32.65/65.3 =11.35L of H2 at STP
32. The density of 3 molal solutions of NaOH is 1.110 g mL–1. Calculate the molarity
of the solution.
Solution:
3 molal solution of NaOH = 3 moles of NaOH dissolved in 1000g water
3 mole of NaOH = 3*40g = 120g
Density of solution = 1.110gmL-1
Volume = mass/density = 1120g/1.110gmL-1 =1.009L
Molarity of the solution = 3/1.009 = 2.97M
33. The volume of a solution changes with change in temperature, then, will the molality
of the solution be affected by temperature? Give a reason for your answer.
Solution:
Mass does not change as the temperature changes. Therefore, the molality of a solution does not change.
Molality = moles of solute/ weight of solvent (in g) *1000
34. If 4 g of NaOH dissolves in 36 g of H2O, calculate the mole fraction of each
component in the solution. Also, determine the molarity of the solution (specific
gravity of solution is 1g mL–1).
Solution:
Mole fraction of H2O = No; of moles of H2O/ Total no: of moles (H2O+NaOH)
No: of moles of H2O = 36/18=2moles
No: of moles of NaOH = 4/40=0.1mol
Total no: of moles = 2+0.1= 2.1
Mole fraction of H2O = 2/2.1 = 0.952
Mole fraction of NaOH = 0.1/2.1 = 0.048
Mass of solution = Mass of H2O + Mass of NaOH = 36+4=40G
Volume of the solution = 40/1 = 40mL
Molarity = 0.1/0.04 = 2.5M
35. The reactant which is entirely consumed in the reaction is known as limiting reagent.
In the reaction 2A + 4B → 3C + 4D, when 5 moles of A react with 6 moles of B,
then
(i) which is the limiting reagent?
(ii) calculate the amount of C formed?
Solution;
(i) B will be the limiting reagent as it gives a lesser amount of product.
(ii) Let B is completely consumed
4 mol B gives 3 mol C
6 mol B will give 3/4 *6 mol C =4.5 mol C
Match The Following Type
36.
(i) 88 g of CO2
(ii) 6.022 ×1023 molecules of H2O (iii) 5.6 litres of O2 at STP (iv) 96 g of O2 (v) 1 mol of any gas |
(a) 0.25 mol
(b) 2 mol (c) 1 mol (d) 6.022 × 1023 molecules (e) 3 mol |
---|
Solution:
A → b
B → c
C → a
D → e
E → d
37. Match the following
Physical quantity | Unit |
---|---|
(i) Molarity
(ii) Mole fraction (iii) Mole (iv) Molality (v) Pressure (vi) Luminous intensity (vii) Density (viii) Mass |
(a) g mL–1
(b) mol (c) Pascal (d) Unitless (e) mol L–1 (f) Candela (g) mol kg–1 (h) Nm–1 (i) kg |
Solution:
(i → e)
(ii → d)
(iii → b)
(iv → g)
(v → c)
(vi → f)
(vii → a)
(viii → i)
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 are given below each question.
38. Assertion (A): The empirical mass of ethene is half of its molecular mass.
Reason (R): The empirical formula represents the simplest whole-number
the ratio of various atoms present in a compound.
(i) Both A and R are true and R is the correct explanation of A.
(ii) A is true but R is false.
(iii) A is false but R is true.
(iv) Both A and R are false.
Solution:
Option (i) is correct.
39. Assertion (A): One atomic mass unit is defined as one-twelfth of the mass of
one carbon-12 atom.
Reason (R): Carbon-12 isotope is the most abundant isotope of carbon
and has been chosen as the standard.
(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 correct. Carbon-12 is considered a standard for defining the atomic and molecular mass.
40. Assertion (A): Significant figures for 0.200 is 3 whereas for 200 it is 1.
Reason (R): Zero at the end or right of a number are significantly provided
they are not on the right side of the decimal point.
(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 a correct explanation of A.
(iii) A is true but R is false.
(iv) Both A and R are false.
Solution:
Option (iii) is correct. Significant figures for 0.200 = 3 and for 200 =1
Zero at the end of a number without decimal point may or may not be significant depending on the accuracy of the measurement.
41. Assertion (A): Combustion of 16 g of methane gives 18 g of water.
Reason (R): In the combustion of methane, water is one of the products.
(i) Both A and R are true but R is not the correct explanation of A.
(ii) A is true but R is false.
(iii) A is false but R is true.
(iv) Both A and R are false.
Solution:
Option (iii) is correct.
16g of CH4 on complete combustion will give 36g of water.
Long Answer Type Question
42. A vessel contains 1.6 g of dioxygen at STP (273.15K, 1 atm pressure). The
gas is now transferred to another vessel at a constant temperature, where
the pressure becomes half of the original pressure. Calculate
(i) the volume of the new vessel.
(ii) a number of molecules of dioxygen.
Solution:
(i) Moles of oxygen = 1.6/32 = 0.05mol
At STP, 1 mol of O2 = 22.4L
Then volume of O2 = 22.4 × 0.05 = 1.12L
V1 = 1.12L
V2 =?
P1 = 1atm
P2 = ½ = 0.5atm
According to Boyle’s law, p1V1 = p2V2
Substituting the values
V2 = 1 × 1.12/0.5 = 2.24L
(ii) No of molecules in 1.6g or 0.005mol = 6.022 × 1023 × 0.05 = 3.011 × 1022
43. Calcium carbonate reacts with aqueous HCl to give CaCl2 and CO2 according
to the reaction given below:
CaCO3 (s) + 2HCl (aq) → CaCl2(aq) + CO2(g) + H2O(l)
What mass of CaCl2 will be formed when 250 mL of 0.76 M HCl reacts with
1000 g of CaCO3? Name the limiting reagent. Calculate the number of moles
of CaCl2 formed in the reaction.
Solution:
No: of moles of HCl taken = MV/1000 = 0.76*250/1000 = 0.19
No: of moles of CaCO3 = Mass/Molar mass = 1000/100 = 10
1. When CaCO3 is completely consumed
1 mol of CaCO3 = 1 mol CaCl2
10 mol CaCO3 = 10mol CaCl2
2. When HCl is completely consumed.
2 mol HCl = 1 mol CaCl2
0.19mol HCl = ½ × 0.19mol CaCl2 = 0.095 mol CaCl2
HCl will be the limiting reagent and the number of moles of CaCl2 formed will be 0.095mol
44. Define the law of multiple proportions. Explain it with two examples. How
does this law point to the existence of atoms?
Solution:
When two elements combine to form two or more chemical compounds, then the masses of one of the elements which combine with a fixed mass of the other bear a simple ratio to one another is the law of multiple proportions.
For example, carbon combines with oxygen to form two compounds they are carbon dioxide and carbon monoxide
The masses of oxygen which combine with a fixed mass of carbon in carbon dioxide and carbon monoxide are 32 and 16. Therefore oxygen bear: 32:16 ratio or 2:1
Example 2: Sulphur combines with oxygen to form sulphur trioxide and sulphur dioxide
The masses of oxygen which combine with a fixed mass of sulphur in SO3 and SO2 are 48 and 32. Therefore oxygen bear a ratio of 48:32 or 3:2
45. A box contains some identical red coloured balls, labelled as A, each weighing
2 grams. Another box contains identical blue coloured balls, labelled as B,
each weighing 5 grams. Consider the combinations AB, AB2, A2B and A2B3
and show that the law of multiple proportions is applicable.
Solution:
AB | ab2 | A,B | A2B3 | |
---|---|---|---|---|
Mass of A (in g) | 2 | 2 | 4 | 415 |
Mass of B (in g) | 5 | 10 | 5 |
Masses of B which combine with a fixed mass of A are
10g, 20g, 5g, 15g
2 : 4 : 1 : 3
This is the simple whole-number ratio.
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 2 | NCERT exemplar for class 11 chemistry Chapter 7 |
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NCERT exemplar for class 11 chemistry Chapter 3 | NCERT exemplar for class 11 chemistry Chapter 8 |
NCERT exemplar for class 11 chemistry Chapter 4 | NCERT exemplar for class 11 chemistry Chapter 9 |
NCERT exemplar for class 11 chemistry Chapter 5 | NCERT exemplar for class 11 chemistry Chapter 10 |
NCERT exemplar for class 11 chemistry Chapter 6 | NCERT exemplar for class 11 chemistry Chapter 11 |
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