Science Ncert Exemplar 2019 Solutions for Class 9 Science Chapter 3 - Atoms And Molecules

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Page No 19:

Question 1:

Which of the following correctly represents 360g of water?
(i) 2 moles of H₂O
(ii) 20 moles of water
(iii) 6.022 × 10^₂₃molecules of water
(iv) 1.2044 ×10²⁵molecules of water
(a) (i)
(b) (i) and (iv)
(c) (ii) and (iii)
(d) (ii) and (iv)

Answer:

$(i) 2 moles of water = 18 \times 2 = 36 grams of water (ii) 20 moles of water = 18 \times 20 = 360 grams of water (iii) 6.022 \times 10^{23} molecules of water = 1 mole of water = 18 grams of water (iv) 1.2044 \times 10^{25} molecules of water = \frac{1.2044 \times 10^{25}}{6.022 \times 10^{23}} = 20 moles of water = 360 grams of water$
Hence, the correct answer is option d.

Page No 19:

Question 2:

Which of the following statements is not true about an atom?
(a) Atoms are not able to exist independently
(b) Atoms are the basic units from which molecules and ions are formed
(c) Atoms are always neutral in nature
(d) Atoms aggregate in large numbers to form the matter that we can see, feel or touch

Answer:

Atoms of inert gases like neon and argon exist independently.
Hence, the correct answer is option a.

Page No 19:

Question 3:

The chemical symbol for nitrogen gas is
(a) Ni
(b) N₂
(c) N⁺
(d) N

Answer:

Nitrogen exists as a diatomic molecule and the symbol is N₂.
Hence, the correct answer is option b.

Page No 19:

Question 4:

The chemical symbol for sodium is
(a) So
(b) Sd
(c) NA
(d) Na

Answer:

The symbol for sodium is Na.
Hence, the correct answer is option d.

Page No 19:

Question 5:

Which of the following would weigh the highest?
(a) 0.2 mole of sucrose (C₁₂H₂₂O₁₁)
(b) 2 moles of CO₂
(c) 2 moles of CaCO₃
(d) 10 moles of H₂O

Answer:

$Mass = number of moles \times molar mass$
$(a) 0.2 moles of sucrose = 0.2 \times 342.3 grams = 68.46 grams (b) 2 moles of {CO}_{2} = 2 \times 44 = 88 grams (c) 2 moles of {CaCO}_{3} = 2 \times 100 = 200 grams (d) 10 moles of H_{2} O = 10 \times 18 = 180 grams$
Hence, the correct answer is option c.

Page No 19:

Question 6:

Which of the following has maximum number of atoms?
(a) 18g of H₂O
(b) 18g of O₂
(c) 18g of CO₂
(d) 18g of CH₄

Answer:

$Number of atoms = \frac{mass of the substance \times Number of atoms in a molecule \times N_{a}}{Molar Mass} (a) 18 grams of Water = 1 mole = 6.022 \times 10^{23} molecules = 3 \times 6.022 \times 10^{23} = 1.8066 \times 10^{24} atoms (b) 18 grams of Oxygen = \frac{18 \times 2}{32} \times 6.022 \times 10^{23} = 6.77 \times 10^{23} atoms (c) 18 grams of {CO}_{2} = \frac{18 \times 3}{44} \times 6.022 \times 10^{23} = 7.39 \times 10^{23} atoms (d) 18 grams of {CH}_{4} = \frac{18 \times 5}{16} \times 6.022 \times 10^{23} = 3.38 \times 10^{24} atoms$
Hence, the correct answer is option d.

Page No 19:

Question 7:

Which of the following contains maximum number of molecules?
(a) 1g CO₂
(b) 1g N₂
(c) 1g H₂
(d) 1g CH₄

Answer:

$(a) 1 gram of {CO}_{2} = \frac{1}{44} \times 6.022 \times 10^{23} = 1.368 \times 10^{23} molecules (b) 1 gram of N_{2} = \frac{1}{28} \times 6.022 \times 10^{23} = 2.15 \times 10^{22} molecules (c) 1 gram of H_{2} = \frac{1}{2} \times 6.022 \times 10^{23} = 3.011 \times 10^{23} molecules (d) 1 gram of {CH}_{4} = \frac{1}{16} \times 6.022 \times 10^{23} = 3.76 \times 10^{22} molecules$
Hence, the correct answer is option c.

Page No 20:

Question 8:

Mass of one atom of oxygen is
(a) $\frac{16}{6.023 \times 10^{23}} g$

(b) $\frac{32}{6.023 \times 10^{23}} g$

(c) $\frac{1}{6.023 \times 10^{23}} g$

(d) 8u

Answer:

$Mass of one atom of Oxygen = \frac{Atomic mass}{6.022 \times 10^{23}} = \frac{16}{6.022 \times 10^{23}}$
Hence, the correct answer is option a.

Page No 20:

Question 9:

3.42 g of sucrose are dissolved in 18 g of water in a beaker. The number of oxygen atoms in the solution are
(a) 6.68 × 10²³
(b) 6.09 × 10²²
(c) 6.022 × 10²³
(d) 6.022 × 10²¹

Answer:

$Moles of sucrose = \frac{3.42}{342.3} = 0.01 mol 1 mole of sucrose has 11 \times 6.022 \times 10^{23} oxygen atoms 0.01 mole of sucrose will have 0.01 \times 11 \times 6.022 \times 10^{23} = 0.11 \times 6.022 \times 10^{23} oxygen atoms Number of moles of water = \frac{18}{18} = 1 mol 1 mol of water has 1 \times 6.022 \times 10^{23} Oxygen atoms Total oxygen atoms = 0.11 \times 6.022 \times 10^{23} + 1 \times 6.022 \times 10^{23} = 1.11 \times 6.022 \times 10^{23} = 6.68 11 \times 10^{23} atoms$
Hence, the correct answer is option a.

Page No 20:

Question 10:

A change in the physical state can be brought about
(a) only when energy is given to the system
(b) only when energy is taken out from the system
(c) when energy is either given to, or taken out from the system
(d) without any energy change

Answer:

A change in the physical state can be brought about when energy is either given to or taken out of the system. For example, during boiling of water heat energy is given out whereas in the case of melting of ice heat is taken by the system. The change in the state of matter occurs because of energy exchange between the system and the surroundings.

Page No 20:

Question 11:

Which of the following represents a correct chemical formula? Name it.
(a) CaCl
(b) BiPO₄
(c) NaSO₄
(d) NaS

Answer:

(a) Valency of Ca is 2 and Cl is 1. The correct formula is CaCl₂.
(b) Valency of Bi is 3 and PO₄ is 3. The correct formula is BiPO₄.
(c) Valency of Na is 1 and SO4 is 2. The correct formula is Na₂SO₄.
(d) Valency of Na is 1 and S is 2. The correct formula is Na₂S.
Hence, the correct answer is option b.

Page No 20:

Question 12:

Write the molecular formulae for the following compounds
(a) Copper (II) bromide
(b) Aluminium (III) nitrate
(c) Calcium (II) phosphate
(d) Iron (III) sulphide
(e) Mercury (II) chloride
(f) Magnesium (II) acetate

Answer:

(a) CuBr₂
(b) Al(NO₃)₃
(c) Ca₃(PO₄)₂
(d) Fe₂S₃
(e) HgCl₂
(f) Mg(CH₃COO)₂

Page No 20:

Question 13:

Write the molecular formulae of all the compounds that can be formed by the combination of following ions
${Cu}^{2 +}, {Na}^{+}, {Fe}^{3 +}, {Cl}^{-}, {SO}_{4}^{2 -}, {PO}_{4}^{3 -}$

Answer:

Cations: Cu²⁺, Na⁺, Fe³⁺
Anions: Cl^-, SO₄^2-, PO₄^3-

CuCl₂, CuSO₄, Cu₃(PO₄)₂
NaCl, Na₂SO₄, Na₃PO₄
FeCl₃, Fe₂(SO₄)₃, FePO₄

Page No 20:

Question 14:

Write the cations and anions present (if any) in the following compounds
(a) CH₃COONa
(b) NaCl
(c) H₂
(d) NH₄NO₃

Answer:

(a) CH3COO^- and Na⁺
(b) Na⁺ and Cl^-
(c) No ions are present in H₂
(d) NH₄⁺ and NO₃^-

Page No 21:

Question 15:

Give the formulae of the compounds formed from the following sets of elements
(a) Calcium and fluorine
(b) Hydrogen and sulphur
(c) Nitrogen and hydrogen
(d) Carbon and chlorine
(e) Sodium and oxygen
(f) Carbon and oxygen

Answer:

(a) CaF₂
(b) H₂S
(c) NH₃
(d) CCl₄
(e) Na₂O
(f) CO
(g) CO₂

Page No 21:

Question 16:

Which of the following symbols of elements are incorrect? Give their correct symbols

(a)	Cobalt	CO
(b)	Carbon	c
(c)	Aluminium	AL
(d)	Helium	He
(e)	Sodium	So

Answer:

(a) Cobalt Co
(b) Carbon C
(c) Aluminium Al
(d) Helium He
(e) Sodium Na

Page No 21:

Question 17:

Give the chemical formulae for the following compounds and compute the ratio by mass of the combining elements in each one of them. (You may use appendix-III).
(a) Ammonia
(b) Carbon monoxide
(c) Hydrogen chloride
(d) Aluminium fluoride
(e) Magnesium sulphide

Answer:

Chemical Formula	Ratio by mass of combining atoms
Ammonia (NH3)	N(1): H(3) [14:3]
Carbon monoxide (CO)	C(1): O(1) [3:4]
Hydrogen chloride (HCl)	H(1): Cl(1) [1:35.5] or [2:71]
Aluminium fluoride (AlF3)	Al(1): F(3) [9:19]
Magnesium sulphide (MgS)	Mg(1): S(1) [3:4]

Page No 21:

Question 18:

State the number of atoms present in each of the following chemical species

(a) ${CO}_{3}^{2 -}$

(b) ${PO}_{4}^{3 -}$

(c) P₂O₅

(d) CO

Answer:

$\begin{array}{rcl} (a) {CO}_{3}^{2 -} & = & 1 atom of C + 3 atoms of O \\ = & 4 atoms \\ (b) {PO}_{4}^{3 -} & = & 1 atom of P + 4 atoms of O \\ = & 5 atoms \\ (c) P_{2} O_{5} & = & 2 atoms of P + 5 atoms of O \\ = & 7 atoms \\ (d) CO & = & 1 atom of C + 1 atom of O \\ = & 2 atoms \end{array}$

Page No 21:

Question 19:

What is the fraction of the mass of water due to neutrons?

Answer:

$Mass of one mole (N_{A}) of neutrons = 1 gram Mass of 1 neutron = \frac{1}{N_{A}} grams Mass of 1 mole of H_{2} O = 18 grams Mass of one molecule of water = \frac{18}{N_{A}} grams Number of neutrons in one atom of H = 0 Number of neutrons in one atom of O = 8 Mass of 8 neutrons (in H_{2} O) = \frac{8}{N_{A}} Fraction of mass of water due to neutrons = \frac{8}{N_{A}} / \frac{18}{N_{A}} = \frac{8}{18} = \frac{4}{9}$

Page No 21:

Question 20:

Does the solubility of a substance change with temperature? Explain with the help of an example.

Answer:

Yes, the solubility of a substance changes with temperature. It generally increases with temperature. For example, more sugar can be dissolved in hot water as compared to cold water.

Page No 21:

Question 21:

Classify each of the following on the basis of their atomicity.

(a)	F₂	(b)	NO₂	(c)	N₂O	(d)	C₂H₆	(e)	P₄	(f)	H₂O₂
(g)	P₄O₁₀	(H)	O₃	(i)	HCl	(j)	CH₄	(k)	He	(l)	Ag

Answer:

Monoatomic: He, Ag
Diatomic: F₂, HCl
Polyatomic with atomicity > 2
Atomicity (3) = NO₂, N₂O, O₃
Atomicity (4) = P₄, H₂O₂
Atomicity (5) = CH₄
Atomicity (8) = C₂H₆
Atomicity (14) = P₄O₁₀

Page No 21:

Question 22:

You are provided with a fine white coloured powder which is either sugar or salt. How would you identify it without tasting?

Answer:

Salt and sugar can be differentiated from each other, by heating or dissolving in water.
(i) Sugar powder is charred to black on heating, whereas salt do not change.
(ii) A salt solution conducts electricity due to the formation of ions in the solution, whereas a sugar solution does not do so.

Page No 21:

Question 23:

Calculate the number of moles of magnesium present in a magnesium ribbon weighing 12 g. Molar atomic mass of magnesium is 24g mol^–1.

Answer:

The atomic mass of Mg = 24 g/mol
24 grams of Magnesium = 1 mol
$\begin{array}{rcl} Number of moles in 12 g of Mg & = & \frac{Given mass}{Molar mass} \\ = & \frac{12}{24} \\ = & 0.5 mol \end{array}$

Page No 22:

Question 24:

Verify by calculating that
(a) 5 moles of CO₂and 5 moles of H₂O do not have the same mass.
(b) 240 g of calcium and 240 g magnesium elements have a mole ratio of 3:5.

Answer:

$(a) Mass of 1 mole of {CO}_{2} = 44 grams Mass of 5 moles of {CO}_{2} = 44 \times 5 = 220 grams Mass of 1 mole of H_{2} O = 18 grams Mass of 5 moles of H_{2} O = 18 \times 5 = 90 grams (b) Molar mass of Ca = 40 grams = 1 mole Number of moles in 240 grams of Ca = \frac{240}{40} = 6 Molar mass of Mg = 24 grams = 1 mole Number of moles in 240 grams of Mg = \frac{240}{24} = 10 Mole ratio of Ca and Mg = 6 : 10 = 3 : 5$

Page No 22:

Question 25:

Find the ratio by mass of the combining elements in the following compounds. (You may use Appendix-III)

(a)	CaCO₃	(d)	C₂H₅OH
(b)	MgCl₂	(e)	NH₃
(c)	H₂SO₄	(f)	Ca(OH)₂

Answer:

$(a) Ca : C : O = 40 : 12 : 16 \times 3 = 40 : 12 : 48 = 10 : 3 : 12 (b) Mg : Cl = 24 : 35.5 \times 2 = 24 : 71 (c) H : S : O = 1 \times 2 : 32 : 4 \times 16 = 2 : 32 : 64 = 1 : 16 : 32 (d) C : H : O = 12 : 1 \times 6 : 16 = 12 : 6 : 16 = 6 : 3 : 8 (e) N : H = 14 : 3 (f) Ca : O : H = 40 : 32 : 2 = 20 : 16 : 1$

Page No 22:

Question 26:

Calcium chloride when dissolved in water dissociates into its ions according to the following equation.
CaCl₂(aq) → Ca²⁺(aq) + 2Cl^–(aq)
Calculate the number of ions obtained from CaCl₂when 222 g of it is dissolved in water.

Answer:

CaCl₂(aq) → Ca²⁺(aq) + 2Cl^–(aq)
$111 grams (1 mole) \to 1 mole + 2 moles 222 grams (2 moles) \to 2 moles + 4 moles Total number of ions given by 2 moles of {CaCl}_{2} = 6 Number of ions = Number of moles of ions \times N_{A} = 6 \times 6.022 \times 10^{23} = 3.6132 \times 10^{24} ions$

Page No 22:

Question 27:

The difference in the mass of 100 moles each of sodium atoms and sodium ions is 5.48002 g. Compute the mass of an electron.

Answer:

Number of electrons in Na atom = 11
Number of electrons in Na⁺ = 10
The difference of the number of electrons for 1 mole of Na atom and Na⁺ = 1 mole
For 100 moles the difference will be 100 moles of electrons
Mass of 100 moles of electrons= 5.48002 g
$Mass of 1 mole of electron = \frac{5.48002}{100} g Mass of one electron = \frac{5.48002}{100 \times 6.022 \times 10^{23}} = 9.1 \times 10^{- 28} g = 9.1 \times 10^{- 31} kg$

Page No 22:

Question 28:

Cinnabar (HgS) is a prominent ore of mercury. How many grams of mercury are present in 225 g of pure HgS? Molar mass of Hg and S are 200.6 g mol^–1and 32 g mol^–1respectively.

Answer:

The molar mass of HgS = 200.6 + 32 = 232.6 grams
Mass of Hg in 232.6 of HgS = 200.6 grams
$Mass of Hg in 225 grams of HgS = \frac{200.6}{232.6} \times 225 = 194.04 grams$

Page No 22:

Question 29:

The mass of one steel screw is 4.11g. Find the mass of one mole of these steel screws. Compare this value with the mass of the Earth (5.98 × 10²⁴kg). Which one of the two is heavier and by how many times?

Answer:

Mass of 1 screws = 4.11 grams
$Mass of 1 mole of screws = 4.11 \times 6.022 \times 10^{23} = 2.475 \times 10^{24} grams = 2.475 \times 10^{21} kg \frac{Mass of earth}{Mass of 1 mole screws} = \frac{5.98 \times 10^{24} kg}{2.475 \times 10^{21} kg} = 2416 It shows that earth is 2416 times heavier than one mole of screws .$

Page No 22:

Question 30:

A sample of vitamic C is known to contain 2.58 ×10²⁴oxygen atoms. How many moles of oxygen atoms are present in the sample?

Answer:

$Number of oxygen atoms in the sample = 2.58 \times 10^{24} 6.022 \times 10^{23} atoms of oxygen = 1 mole 2.58 \times 10^{24} atoms of oxygen = \frac{2.58 \times 10^{24}}{6.022 \times 10^{23}} moles = 4.28 moles$

Page No 22:

Question 31:

Raunak took 5 moles of carbon atoms in a container and Krish also took 5 moles of sodium atoms in another container of same weight. (a) Whose container is heavier? (b) Whose container has more number of atoms?

Answer:

$(a) Mass of container containing 5 moles of C atoms = 5 \times 12 = 60 g Mass of container containing 5 moles of Na atoms = 5 \times 23 = 115 g Hence, container of krish is heavier . (b) Both containers have same number of atoms since they contain same number of moles .$

Page No 22:

Question 32:

Fill in the missing data in the Table 3.1

Table 3.1

Species	H₂O	CO₂	Na atom	MgCl₂
Property
No. of moles	2	—	—	0.5
No. of particles	—	3.011×10²³	—	—
Mass	36g	—	115 g	—

Answer:

Species	H₂O	CO₂	Na atom	MgCl₂
Property
No. of moles	2	0.5	5	0.5
No. of particles	1.2044× 10²⁴	3.011×10²³	5×6.022×10²³ = 3.011×10²³	0.5×6.022×10²³×3 = 9.033×10²³
Mass	36 grams	22 grams	115 grams	47.5 grams

Page No 22:

Question 33:

The visible universe is estimated to contain 10²²stars. How many moles of stars are present in the visible universe?

Answer:

$1 Mole of stars = 6.022 \times 10^{23} stars Number of moles of stars = \frac{10^{22}}{6.023 \times 10^{23}} = 0.0166 moles$

Page No 23:

Question 34:

What is the SI prefix for each of the following multiples and submultiples of a unit?
(a) 10³
(b) 10^–1
(c) 10^–2
(d) 10^–6
(e) 10^–9
(f) 10^–12

Answer:

$(a) 10^{3} = kilo (b) 10^{- 1} = deci (c) 10^{- 2} = centi (d) 10^{- 6} = micro (e) 10^{- 9} = nano (f) 10^{- 12} = pico$

Page No 23:

Question 35:

Express each of the following in kilograms
(a) 5.84 × 10^–3mg
(b) 58.34 g
(c) 0.584 g
(d) 5.873 × 10^–21 g

Answer:

$(a) 5.84 \times 10^{- 3} mg = \frac{5.84 \times 10^{- 3}}{10^{3} \times 10^{3}} kg = 5.84 \times 10^{- 9} kg (b) 58.34 g = \frac{58.34}{10^{3}} = 5.834 \times 10^{- 2} kg (c) 0.584 g = \frac{0.584}{10^{3}} kg = 5.84 \times 10^{- 4} kg (d) 5.873 \times 10^{- 21} g = \frac{5.873 \times 10^{- 21}}{10^{3}} = 5.873 \times 10^{- 24} kg$

Page No 23:

Question 36:

Compute the difference in masses of 10³moles each of magnesium atoms and magnesium ions.
(Mass of an electron = 9.1 × 10^–31kg)

Answer:

${Mg}^{2 +} ion = 10 electrons Mg atom = 12 electrons Difference between {Mg}^{2 +} and Mg = 2 moles of electrons The difference between 10^{3} moles of Mg and 10^{3} moles of {Mg}^{2 +} = 10^{3} \times 2 moles of electrons Mass 0 f 10^{3} \times 2 moles of eletrons = 2 \times 10^{3} \times 6.022 \times 10^{23} \times 9.1 \times 10^{- 31} kg = 1.096 \times 10^{- 3} kg$

Page No 23:

Question 37:

Which has more number of atoms?
100g of N₂or 100 g of NH₃

Answer:

$(i) 100 grams of N_{2} = \frac{100}{28} moles Number of molecules = \frac{100}{28} \times 6.022 \times 10^{23} molecules Number of atoms = \frac{2 \times 100}{28} \times 6.022 \times 10^{23} atoms = 43.01 \times 10^{23} atoms (ii) 100 grams of {NH}_{3} = \frac{100}{17} moles Number of molecules = \frac{100}{17} \times 6.022 \times 10^{23} molecules Number of atoms = \frac{100}{17} \times 6.022 \times 10^{23} \times 4 atoms = 141.69 \times 10^{23} atoms Thus, {NH}_{3} would have more atoms .$

Page No 23:

Question 38:

Compute the number of ions present in 5.85 g of sodium chloride.

Answer:

$1 mole of NaCl = 23 + 35.5 = 58.5 grams of NaCl Number of moles in 5085 grams of NaCl = \frac{5085}{58.5} = 0.1 moles Each NaCl formula unit = {Na}^{+} + {Cl}^{-} = 2 ions Number of ions = 0.2 \times 6.022 \times 10^{23} = 1.2044 \times 10^{23} ions$

Page No 23:

Question 39:

A gold sample contains 90% of gold and the rest copper. How many atoms of gold are present in one gram of this sample of gold?

Answer:

$1 g of gold sample contains = \frac{90}{100} = 0.9 g gold Number of moles of gold = \frac{Mass of gold}{Atomic mass of gold} = \frac{0.9}{197} = 0.0046 1 mole of gold contains = 6.022 \times 10^{23} atoms 0.0046 mole of gold = 6.022 \times 10^{23} \times 0.0046 = 2.77 \times 10^{21} atoms$

Page No 23:

Question 40:

What are ionic and molecular compounds? Give examples.

Answer:

An ionic compound is a compound formed due to the transfer of electrons between the reacting species. An ionic compound contains a cation which is a positive ion and an anion which is a negative ion. For example, sodium chloride is an ionic compound made up of Na⁺ and Cl^- ions. On the other hand, a molecular compound is a compound that is formed by sharing of electrons. It mainly consists of molecules. For example, ammonia (NH₃), carbon dioxide (CO₂).

Page No 23:

Question 41:

Compute the difference in masses of one mole each of aluminium atoms and one mole of its ions. (Mass of an electron is 9.1 × 10^–28g). Which one is heavier?

Answer:

$Mass of Aluminium = 27 g {mol}^{- 1} Al \to {Al}^{3 +} + 3 e^{-} (3 moles of electrons) Mass of 3 moles of electrons = 3 \times (9.1 \times 10^{- 28}) \times 6.022 \times 10^{23} g = 0.00164 g Molar mass of {Al}^{3 +} = 27 - 0.00164 g {mol}^{- 1} = 26.9984 g {mol}^{- 1} ∴ Difference = 27 - 0.00164 g {mol}^{- 1} = 26.9984 g {mol}^{- 1}$

Page No 23:

Question 42:

A silver ornament of mass ‘m’ gram is polished with gold equivalent to 1% of the mass of silver. Compute the ratio of the number of atoms of gold and silver in the ornament.

Answer:

$Mass of gold = \frac{m}{100} grams Number of atoms of silver = \frac{Mass}{Atomic mass} \times N_{A} = \frac{m}{108} \times N_{A} Number of atoms of gold = \frac{m}{100 \times 197} \times N_{A} Ratio of number of atoms of gold to silver = Au : Ag = \frac{m}{100 \times 197} \times N_{A} : \frac{m}{108} \times N_{A} = 108 : 100 \times 197 = 108 : 19700 = 1 : 182.41$

Page No 23:

Question 43:

A sample of ethane (C₂H₆) gas has the same mass as 1.5 ×10²⁰molecules of methane (CH₄). How many C₂H₆ molecules does the sample of gas contain?

Answer:

$Molar mass of {CH}_{4} = 16 grams = 6.022 \times 10^{23} molecules Thus, 6.022 \times 10^{23} molecules of {CH}_{4} will have mass = 16 grams Therefore, 1.5 \times 10^{20} molecules of {CH}_{4} will have mass = \frac{16}{6.022 \times 10^{23}} \times 1.5 \times 10^{20} = 4 \times 10^{- 3} grams Molar mass of C_{2} H_{6} = 30 g / mol = 6.022 \times 10^{23} molecules Thus, 30 grams of C_{2} H_{6} have molecules = 6.022 \times 10^{23} Therefore, 4 \times 10^{- 3} grams of C_{2} H_{6} will have molecules = \frac{6.022 \times 10^{23}}{30} \times 4 \times 10^{- 3} = 0.803 \times 10^{20} = 8.03 \times 10^{19}$

Page No 23:

Question 44:

Fill in the blanks
(a) In a chemical reaction, the sum of the masses of the reactants and products remains unchanged. This is called ————.
(b) A group of atoms carrying a fixed charge on them is called ————.
(c) The formula unit mass of Ca₃(PO₄)₂is ————.
(d) Formula of sodium carbonate is ———— and that of ammonium sulphate is ————.

Answer:

(a) Law of conservation of mass
(b) Polyatomic ion
$(c) (3 \times 40 + 2 \times 31 + 8 \times 16) = 120 + 62 + 128 = 310 u$
(d) Na₂CO₃, (NH₄)₂SO₄

Page No 24:

Question 45:

Complete the following crossword puzzle Figure by using the name of the chemical elements. Use the data given in Table 3.2.

Table 3.2

Across		Down
2.	The element used by Rutherford during his α–scattering experiment	1.	A white lustrous metal used for making ornaments and which tends to get tarnished black in the presence of moist air
3.	An element which forms rust on exposure to moist air	4.	Both brass and bronze are alloys of the element
5.	A very reactive non-metal stored under water	6.	The metal which exists in the liquid state at room temperature
7.	Zinc metal when treated with dilute hydrochloric acid produces a gas of this element which when tested with burning splinter produces a pop sound.	8.	An element with symbol Pb

Answer:

1. Silver
2. Gold
3. Iron
4. Copper
5. Phosphorous
6. Mercury
7. Hydrogen
8. Lead

Page No 24:

Question 46:

In this crossword puzzle Figure, names of 11 elements are hidden. Symbols of these are given below. Complete the puzzle.

1.	Cl	7.	He
2.	H	8.	F
3.	Ar	9.	Kr
4.	O	10.	Rn
5.	Xe	11.	Ne
6.	N

(b) Identify the total number of inert gases, their names and symbols from this cross word puzzle.

Answer:

ure(a) 1. Chlorine

2. Hydrogen
3. Argon
4. Oxygen
5. Xenon
6. Nitrogen
7. Helium
8. Fluorine
9. Krypton
10.Radon
11. Neon

(b) Argon, Xenon, Helium, Krypton and Neon are noble gases.

Page No 25:

Question 47:

Write the formulae for the following and calculate the molecular mass for each one of them.
(a) Caustic potash
(b) Baking powder
(c) Lime stone
(d) Caustic soda
(e) Ethanol
(f) Common salt

Answer:

(a) Caustic Potash, KOH = (39+16+1) = 56 g/mol
(b) Baking powder, NaHCO₃ = (23 +1+12+48)= 84 g/mol
(c) Limestone, CaCO₃ = (40+12+48) =100 g/mol
(d) Caustic soda, NaOH = (23+16+1) = 40 g/mol
(e) Ethanol, C₂H₅OH = (24 + 6 + 16) = 46 g/mol
(f) Common salt, NaCl = (23 + 35.5) = 58.5 g/mol

Page No 25:

Question 48:

In photosynthesis, 6 molecules of carbon dioxide combine with an equal number of water molecules through a complex series of reactions to give a molecule of glucose having a molecular formula C₆H₁₂O₆. How many grams of water would be required to produce 18 g of glucose? Compute the volume of water so consumed assuming the density of water to be 1 g cm^–3.

Answer:

$6 {CO}_{2} + 6 H_{2} O \to_{Sunlight}^{Chlorophyll} C_{6} H_{12} O_{6} + 6 O_{2} 1 mole (180 grams) of glucose needs 6 moles (6 \times 18 grams) of H_{2} O 1 gram of glucose will need \frac{108}{180} of H_{2} O 18 grams of glucose will need \frac{108}{180} \times 18 = 10.8 grams Volume of water used = \frac{Mass}{Density} = \frac{10.8}{1} = 10.8 {cm}^{3}$

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