THE MOLE QUESTIONS AND ANSWERS-Empirical and Molecular Formula - Highschool: Form1-4 Revision Material Exams with Marking Schemes

1. Calculate the volume of Oxygen required to completely react with 50cm3 of Hydrogen.

Chemical equation: 2H₂ (g) + O₂ (g) -> 2H₂O(l)

Volume ratios 2 : 1 : 0

Reacting volumes 50cm3 : 25cm3

50cm3 of Oxygen is used

2. Calculate the volume of air required to completely reacts with 50cm3 of Hydrogen.(assume Oxygen is 21% by volume of air)

Chemical equation: 2H₂ (g) + O₂ (g) -> 2H₂O(l)

Volume ratios 2 : 1 : 0

Reacting volumes 50cm3 : 25cm3

50cm3 of Oxygen is used

21% = 25cm3

100% = 100 x 25 =

3.If 5cm3 of a hydrocarbon C_xH_y burn in 15cm3 of Oxygen to form 10cm3 of Carbon(IV)oxide and 10cm3 of water vapour/steam, obtain the equation for the reaction and hence find the value of x and y in C_xH_y.

Chemical equation: C_xH_y (g) + O₂ (g) -> H₂O(g) + CO₂(g)

Volumes 5cm3 : 15cm3 : 10cm3 : 10cm3

Volume ratios 5cm3 : 15cm3 : 10cm3 : 10cm3 (divide by lowest volume) 5 5 5 5

Reacting volume ratios 1volume 3 volume 2 volume 2 volume

Balanced chemical equation: C_xH_y (g) + 3O₂ (g) -> 2H₂O(g) + 2CO₂(g)

If “4H” are in 2H₂O(g) the y=4

If “2C” are in 2CO₂ (g) the x=2

Thus(i) chemical formula of hydrocarbon = C₂H₄

(ii) chemical name of hydrocarbon = Ethene

4.100cm3 of nitrogen (II)oxide NO combine with 50cm3 of Oxygen to form 100cm3 of a single gaseous compound of nitrogen. All volumes measured at the same temperature and pressure. Obtain the equation for the reaction and name the gaseous product.

Chemical equation: NO (g) + O₂ (g) -> NO_x

Volumes 100cm3 : 50cm3 : 100

Volume ratios 100cm3 : 50cm3 : 100cm3 (divide by lowest volume) 50 50 50

Reacting volume ratios 2volume 1 volume 2 volume

Balanced chemical equation: 2 NO (g) + O₂ (g) -> 2NO_x(g)

Thus(i) chemical formula of the nitrogen compound = 2 NO₂

(ii) chemical name of compound = Nitrogen(IV)oxide

5.When 15cm3 of a gaseous hydrocarbon was burnt in 100cm3 of Oxygen ,the resulting gaseous mixture occupied70cm3 at room temperature and pressure. When the gaseous mixture was passed through, potassium hydroxide its volume decreased to 25cm3.

(a)What volume of Oxygen was used during the reaction.(1mk)

Volume of Oxygen used =100-25 =75cm3√

(P was completely burnt)

(b)Determine the molecular formula of the hydrocarbon(2mk)

C_xH_y + O₂ -> xCO₂+ yH₂O

15cm3 : 75cm3

15 15

1 : 3√

=> 1 atom of C react with 6 (3×2)atoms of Oxygen

Thus x = 1 and y = 2 => P has molecula formula CH₄√

(g) Ionic equations

An ionic equation is a chemical statement showing the movement of ions (cations and anions ) from reactants to products.

Solids, gases and liquids do not ionize/dissociate into free ions. Only ionic compounds in aqueous/solution or molten state ionize/dissociate into free cations and anions (ions)

An ionic equation is usually derived from a stoichiometric equation by using the following guidelines

Guidelines for writing ionic equations

1.Write the balanced stoichiometric equation

2.Indicate the state symbols of the reactants and products

3.Split into cations and anions all the reactants and products that exist in aqueous state.

4.Cancel out any cation and anion that appear on both the product and reactant side.

5. Rewrite the chemical equation. It is an ionic equation.

Practice

(a)Precipitation of an insoluble salt

All insoluble salts are prepared in the laboratory from double decomposition /precipitation. This involves mixing two soluble salts to form one soluble and one insoluble salt

1. When silver nitrate(V) solution is added to sodium chloride solution,sodium nitrate(V) solution and a white precipitate of silver chloride are formed.

Balanced stoichiometric equation

AgNO₃(aq) + NaCl(aq) -> AgCl (s) + NaNO₃ (aq)

Split reactants product existing in aqueous state as cation/anion

Ag⁺(aq) + NO₃^–(aq) + Na⁺(aq) + Cl^–(aq) -> AgCl(s) + Na⁺(aq)+ NO₃^–(aq)

Cancel out ions appearing on reactant and product side

Ag⁺(aq) + NO₃^–(aq) + Na⁺(aq) + Cl^–(aq) -> AgCl(s) + Na⁺(aq)+ NO₃^–(aq)

Rewrite the equation

Ag⁺(aq) + Cl^–(aq) -> AgCl(s) (ionic equation)

2. When barium nitrate(V) solution is added to copper(II)sulphate(VI) solution, copper(II) nitrate(V) solution and a white precipitate of barium sulphate(VI) are formed.

Balanced stoichiometric equation

Ba(NO₃)₂(aq) + CuSO₄(aq) -> BaSO₄ (s) + Cu(NO₃)₂ (aq)

Split reactants product existing in aqueous state as cation/anion

Ba²⁺(aq) + 2NO₃^–(aq) + Cu²⁺(aq) + SO₄^2-(aq) -> BaSO₄ (s) + 2NO₃^–(aq)+ Cu²⁺(aq)

Cancel out ions appearing on reactant and product side

Ba²⁺(aq) + 2NO₃^–(aq) +Cu²⁺ (aq) + SO₄^2-(aq)-> BaSO₄(s) + 2NO₃^–(aq) + Cu²⁺(aq)

Rewrite the equation

Ba²⁺(aq) + SO₄^2-(aq) -> BaSO₄(s) (ionic equation)

3.A yellow precipitate of Potassium Iodide is formed from the reaction of Lead(II)nitrate(v) and potassium iodide.

Balanced stoichiometric equation

Pb(NO₃)₂(aq) + 2KI(aq) -> PbI₂ (s) + 2KNO₃ (aq)

Split reactants product existing in aqueous state as cation/anion

Pb²⁺(aq) + 2NO₃^–(aq) + 2K⁺(aq) + 2I^–(aq) -> PbI₂ (s) + 2NO₃^–(aq)+ 2K⁺(aq)

Cancel out ions appearing on reactant and product side

Pb²⁺(aq) + 2NO₃^–(aq) + 2K⁺(aq) + 2I^–(aq) -> PbI₂ (s) + 2NO₃^–(aq)+ 2K⁺(aq)

Rewrite the equation

Pb²⁺(aq) + 2I^–(aq) -> PbI₂ (s) (ionic equation)

(b)Neutralization

Neutralization is the reaction of an acid with a soluble base/alkali or insoluble base.

(i)Reaction of alkalis with acids

1.Reaction of nitric(V)acid with potassium hydroxide

Balanced stoichiometric equation

HNO₃(aq) + KOH(aq) -> H₂O (l) + KNO₃ (aq)

Split reactants product existing in aqueous state as cation/anion

H⁺(aq) + NO₃^–(aq) + K⁺(aq) + OH^–(aq) -> H₂O (l) + NO₃^–(aq)+ K⁺(aq)

Cancel out ions appearing on reactant and product side

H⁺(aq) + NO₃^–(aq) + K⁺(aq) + OH^–(aq) -> H₂O (l) + NO₃^–(aq)+ K⁺(aq)

Rewrite the equation

H⁺ (aq) + OH^–(aq) -> H₂O (l) (ionic equation)

2.Reaction of sulphuric(VI)acid with ammonia solution

Balanced stoichiometric equation

H₂SO₄(aq) + 2NH₄OH(aq) -> H₂O (l) + (NH₄)₂SO₄ (aq)

Split reactants product existing in aqueous state as cation/anion

2H⁺(aq) + SO₄^2-(aq) + 2NH₄⁺(aq)+ 2OH^–(aq) ->2H₂O (l) +SO₄^2- (aq)+ 2NH₄⁺ (aq)

Cancel out ions appearing on reactant and product side

2H⁺(aq) + SO₄^2-(aq) + 2NH₄⁺(aq)+ 2OH^–(aq) ->2H₂O (l) +SO₄^2- (aq)+ 2NH₄⁺ (aq)

Rewrite the equation

2H⁺ (aq) + 2OH^–(aq) -> 2H₂O (l)

H⁺ (aq) + OH^–(aq) -> H₂O (l) (ionic equation)

3.Reaction of hydrochloric acid with Zinc hydroxide

Balanced stoichiometric equation

2HCl(aq) + Zn(OH)₂(s) -> 2H₂O (l) + ZnCl₂ (aq)

Split reactants product existing in aqueous state as cation/anion

2H⁺(aq) + 2Cl^–(aq) + Zn(OH)₂(s) ->2H₂O (l) + 2Cl^– (aq)+ Zn²⁺ (aq)

Cancel out ions appearing on reactant and product side

2H⁺(aq) + 2Cl^–(aq) + Zn(OH)₂(s) ->2H₂O (l) + 2Cl^– (aq)+ Zn²⁺ (aq)

Rewrite the equation

2H⁺(aq) + Zn(OH)₂(s) ->2H₂O (l) + Zn²⁺ (aq) (ionic equation)

(h)Molar solutions

A molar solution is one whose concentration is known. The SI unit of concentration is Molarity denoted M.

Molarity may be defined as the number of moles of solute present in one cubic decimeter of solution.

One cubic decimeter is equal to one litre and also equal to 1000cm3.

The higher the molarity the higher the concentration and the higher/more solute has been dissolved in the solvent to make one cubic decimeter/ litre/1000cm3 solution.

Examples

2M sodium hydroxide means 2 moles of sodium hydroxide solute is dissolved in enough water to make one cubic decimeter/ litre/1000cm3 uniform solution mixture of sodium hydroxide and water.

0.02M sodium hydroxide means 0.02 moles of sodium hydroxide solute is dissolved in enough water to make one cubic decimeter/ litre/1000cm3 uniform solution mixture of sodium hydroxide and water.

“2M” is more concentrated than“0.02M”.

Preparation of molar solution

Procedure

Weigh accurately 4.0 g of sodium hydroxide pellets into a 250cm3 volumetric flask.

Using a wash bottle add about 200cm3 of distilled water.

Stopper the flask.

Shake vigorously for three minutes.

Remove the stopper for a second then continue to shake for about another two minutes until all the solid has dissolved.

Add more water slowly upto exactly the 250 cm3 mark.

Sample questions

1.Calculate the number of moles of sodium hydroxide pellets present in:

(i) 4.0 g.

Molar mass of NaOH = (23 + 16 + 1) = 40g

Moles = Mass => 4.0 = 0.1 / 1.0 x 10 ^-1 moles

Molar mass 40

(ii) 250 cm3 solution in the volumetric flask.

Moles in 250 cm3 = 0.1 / 1.0 x 10 ^-1 moles

(iii) one decimeter of solution

Method 1

Moles in decimeters = Molarity = Moles x 1000cm3/1dm3

Volume of solution

=> 1.0 x 10 ^-1 moles x 1000cm3 =

250cm3

= 0.4 M / 0.4 molesdm^-3

Method 2

250cm3 solution contain 1.0 x 10 ^-1 moles

1000cm3 solution = Molarity contain 1000 x 1.0 x 10 ^-1 moles

250 cm3

= 0.4 M / 0.4 molesdm^-3

Theoretical sample practice

1. Calculate the molarity of a solution containing:

(i) 4.0 g sodium hydroxide dissolved in 500cm3 solution

Molar mass of NaOH = (23 + 16 + 1) = 40g

Moles = Mass => 4.0 = 0.1 / 1.0 x 10 ^-1 moles

Molar mass 40

Method 1

Moles in decimeters = Molarity = Moles x 1000cm3/1dm3

Volume of solution

=> 1.0 x 10 ^-1 moles x 1000cm3

500cm3

= 0.2 M / 0.2 molesdm^-3

Method 2

500 cm3 solution contain 1.0 x 10 ^-1 moles

1000cm3 solution = Molarity contain 1000 x 1.0 x 10 ^-1 moles

500 cm3

= 0.2 M / 0.2 molesdm^-3

(ii) 5.3 g anhydrous sodium carbonate dissolved in 50cm3 solution

Molar mass of Na₂CO₃ = (23 x 2 + 12 + 16 x 3) = 106 g

Moles = Mass => 5.3 = 0.05 / 5. 0 x 10^-2 moles

Molar mass 106

Method 1

Moles in decimeters = Molarity = Moles x 1000cm3/1dm3

Volume of solution

=> 1.0 moles x 1000cm3 =

50cm3

=1.0 M

Method 2

50 cm3 solution contain 5.0 x 10 ^-2 moles

1000cm3 solution = Molarity contain 1000 x 5.0 x 10 ^-2 moles

50 cm3

= 1.0M / 1.0 molesdm^-3

(iii) 5.3 g hydrated sodium carbonate decahydrate dissolved in 50cm3 solution

Molar mass of Na₂CO₃.10H₂O = (23 x 2 + 12 + 16 x 3 + 20 x 1 + 10 x 16) =286g

Moles = Mass => 5.3 = 0.0185 / 1.85 x 10 ^-2 moles

Molar mass 286

Method 1

Moles in decimeters = Molarity = Moles x 1000cm3/1dm3

Volume of solution

=> 1.85 x 10 ^-2 moles x 1000cm3 =

50cm3

= 0.37 M/0.37 molesdm^-3

Method 2

50 cm3 solution contain 1.85 x 10 ^-2 moles

1000cm3 solution = Molarity contain 1000 x 1.85 x 10 ^-2 moles

50 cm3

= 3.7 x 10^-1 M / 3.7 x 10^-1 molesdm^-3

(iv) 7.1 g of anhydrous sodium sulphate(VI)was dissolved in 20.0 cm3 solution. Calculate the molarity of the solution.

Method 1

20.0cm3 solution ->7.1 g

1000cm3 solution -> 1000 x 71 = 3550 g dm^-3

Molar mass Na₂SO₄ = 142 g

Moles dm^-3 = Molarity = Mass 3550 = 2.5 M/ molesdm^-3

Molar mass 142

Method 2

Molar mass Na₂SO₄ = 142 g

Moles = Mass => 7.1 = 0.05 / 5.0 x 10 ^-2 moles

Molar mass 142

Method 2(a)

Moles in decimeters = Molarity = Moles x 1000cm3/1dm3

Volume of solution

=> 5.0 x 10 -2 moles x 1000cm3

20cm3

= 2.5 M/2.5 molesdm^-3

Method 2(b)

20 cm3 solution contain 5.0 x 10 ^-2 moles

1000cm3 solution = Molarity contain 1000 x 5.0 x 10 ^-2 moles

20 cm3

= 2.5 M/2.5 molesdm^-3

(iv) The density of sulphuric(VI) is 1.84gcm^-3Calculate the molarity of the acid.

Method 1

1.0cm3 solution ->1.84 g

1000cm3 solution -> 1000 x 1.84 = 1840 g dm^-3

Molar mass H₂SO₄ = 98 g

Moles dm^-3 = Molarity = Mass = 1840

Molar mass 98

= 18.7755 M/ molesdm^-3

Method 2

Molar mass H₂SO₄ = 98 g

Moles = Mass => 1.84 = 0.0188 / 1.88 x 10 ^-2 moles

Molar mass 98

Method 2(a)

Moles in decimeters = Molarity = Moles x 1000cm3/1dm3

Volume of solution

=> 1.88 x 10 ^-2 moles x 1000cm3

1.0cm3

= 18.8M/18.8 molesdm^-3

Method 2(b)

20 cm3 solution contain 1.88 x 10 ^-2 moles

1000cm3 solution = Molarity contain 1000 x 1.88 x 10 ^-2 moles

1.0 cm3

= 18.8M/18.8 molesdm^-3

2. Calculate the mass of :

(i) 25 cm3 of 0.2M sodium hydroxide solution(Na =23.0.O =16.0, H=1.0)

Molar mass NaOH = 40g

Moles in 25 cm3 = Molarity x volume => 0.2 x 25 = 0.005/5.0 x 10^-3moles

1000 1000

Mass of NaOH =Moles x molar mass = 5.0 x 10^-3 x 40 = 0.2 g

(ii) 20 cm3 of 0.625 M sulphuric(VI)acid (S =32.0.O =16.0, H=1.0)

Molar mass H₂SO₄ = 98g

Moles in 20 cm3 = Molarity x volume=> 0.625 x 20 = 0.0125/1.25.0 x 10^-3moles

1000 1000

Mass of H₂SO₄ =Moles x molar mass => 5.0 x 10^-3 x 40 = 0.2 g

(iii) 1.0 cm3 of 2.5 M Nitric(V)acid (N =14.0.O =16.0, H=1.0)

Molar mass HNO₃ = 63 g

Moles in 1 cm3 = Molarity x volume => 2.5 x 1 = 0.0025 / 2.5. x 10^-3moles

1000 1000

Mass of HNO₃ =Moles x molar mass => 2.5 x 10^-3 x 40 = 0.1 g

3. Calculate the volume required to dissolve :

(a)(i) 0.25moles of sodium hydroxide solution to form a 0.8M solution

Volume (in cm3) = moles x 1000 => 0.25 x 1000 = 312.5cm3

Molarity 0.8

(ii) 100cm3 was added to the sodium hydroxide solution above. Calculate the concentration of the solution.

C₁ x V₁ = C₂ x V₂ where:

C₁= molarity/concentration before diluting/adding water

C₂= molarity/concentration after diluting/adding water

V₁= volume before diluting/adding water

V₂= volume after diluting/adding water

=> 0.8M x 312.5cm3 = C₂ x (312.5 + 100)

C₂= 0.8M x 312.5cm3 = 0.6061M

412.5

(b)(ii) 0.01M solution containing 0.01moles of sodium hydroxide solution .

Volume (in cm3) = moles x 1000 => 0.01 x 1000 = 1000 cm3

Molarity 0.01

(ii) Determine the quantity of water which must be added to the sodium hydroxide solution above to form a 0.008M solution.

C₁ x V₁ = C₂ x V₂ where:

C₁= molarity/concentration before diluting/adding water

C₂= molarity/concentration after diluting/adding water

V₁= volume before diluting/adding water

V₂= volume after diluting/adding water

=> 0.01M x 1000 cm3 = 0.008 x V₂

V₂= 0.01M x 1000cm3 = 1250cm3

0.008

Volume added = 1250 – 1000 = 250cm3

(c)Volumetric analysis/Titration

Volumetric analysis/Titration is the process of determining unknown concentration of one reactant from a known concentration and volume of another.

Reactions take place in simple mole ratio of reactants and products.

Knowing the concentration/ volume of one reactant, the other can be determined from the relationship:

M₁V₁ = M₂V₂ where:

n₁ n₂

M₁ = Molarity of 1^st reactant

M₂ = Molarity of 2^nd reactant

V₁ = Volume of 1^st reactant

V₁= Volume of 2^nd reactant

n₁= number of moles of 1^st reactant from stoichiometric equation

n₂= number of moles of 2^nd reactant from stoichiometric equation

Examples

1.Calculate the molarity of MCO₃ if 5.0cm3 of MCO₃react with 25.0cm3 of 0.5M hydrochloric acid.(C=12.0 ,O =16.0)

Stoichiometric equation:MCO₃(s) + 2HCl(aq) -> MCl₂(aq) + CO₂(g) + H₂O(l)

Method 1

M₁V₁ = M₂V₂ -> M₁ x 5.0cm3 = 0.5M x 25.0cm3

n₁ n₂1 2

=> M₁= 0.5 x 25.0 x1 = 1.25M / 1.25 moledm^-3

5.0 x 2

Method 2

Moles of HCl used = molarity x volume

1000

=> 0.5 x 25.0 = 0.0125 /1.25 x 10^-2moles

1000

Mole ratio MCO₃: HCl = 1:2

Moles MCO₃= 0.0125 /1.25 x 10^-2moles = 0.00625 / 6.25 x 10^-3moles

Molarity MCO₃= moles x 1000 => 0.00625 / 6.25 x 10^-3 x 1000

Volume 5

= 1.25M / 1.25 moledm^-3

2. 2.0cm3 of 0.5M hydrochloric acid react with 0.1M of M₂CO₃. Calculate the volume of 0.1M M₂CO₃ used.

Stoichiometric equation:M₂CO₃ (aq) + 2HCl(aq) -> 2MCl (aq) + CO₂(g) + H₂O(l)

Method 1

M₁V₁ = M₂V₂ -> 0.5 x 2.0cm3 = 0.1M x V₂cm3

n₁ n₂2 1

=> V₂= 0.5 x 2.0 x1 = 1.25M / 1.25 moledm^-3

0.1 x 2

Method 2

Moles of HCl used = molarity x volume

1000

=> 0.5 x 2.0 = 0.0125 /1.25 x 10^-2moles

1000

Mole ratio M₂CO₃: HCl = 1:2

Moles M₂CO₃= 0.0125 /1.25 x 10^-2moles = 0.00625 / 6.25 x 10^-3moles

Molarity M₂CO₃= moles x 1000 => 0.00625 / 6.25 x 10^-3 x 1000

Volume 5

= 1.25M / 1.25 moledm^-3

3. 5.0cm3 of 0.1M sodium iodide react with 0.1M of Lead(II)nitrate(V). Calculate(i) the volume of Lead(II)nitrate(V) used.

(ii)the mass of Lead(II)Iodide formed

(Pb=207.0, I =127.0)

Stoichiometric equation: 2NaI(aq) + Pb(NO₃)₂(aq) -> 2NaNO₃(aq) + PbI₂(s)

(i)Volume of Lead(II)nitrate(V) used

Method 1

M₁V₁ = M₂V₂ -> 5 x 0.1cm3 = 0.1M x V₂cm3

n₁ n₂2 1

=> V₂= 0.1 x 5.0 x 1 = 1.25M / 1.25 moledm^-3

0.1 x 2

Method 2

Moles of HCl used = molarity x volume

1000

=> 0.1 x 5.0 = 0.0125 /1.25 x 10^-2moles

1000

Mole ratio M₂CO₃: HCl = 1:2

Moles M₂CO₃= 0.0125 /1.25 x 10^-2moles = 0.00625 / 6.25 x 10^-3moles

Molarity M₂CO₃= moles x 1000 => 0.00625 / 6.25 x 10^-3 x 1000

Volume 5

= 1.25M / 1.25 moledm^-3

4. 0.388g of a monobasic organic acid B required 46.5 cm3 of 0.095M sodium hydroxide for complete neutralization. Name and draw the structural formula of B

Moles of NaOH used = molarity x volume

1000

=> 0.095 x 46.5 = 0.0044175 /4.4175 x 10^-3moles

1000

Mole ratio B: NaOH = 1:1

Moles B= 0.0044175 /4.4175 x 10^-3moles

Molar mass B = mass => 0.388

moles 0.0044175 /4.4175 x 10^-3moles

= 87.8324 gmole^-1

X-COOH = 87.8324 where X is an alkyl group

X =87.8324- 42 = 42.8324=43

By elimination: CH₃ = 15 CH₃CH₂= 29 CH₃CH₂ CH₂ = 43

Molecula formula : CH₃CH₂ CH₂COOH

Molecule name : Butan-1-oic acid

Molecular structure

H H H O

H C C C C O H

H H H H

5. 10.5 g of an impure sample containing ammonium sulphate (VI) fertilizer was warmed with 250cm3 of o.8M sodium hydroxide solution.The excess of the alkali was neutralized by 85cm3 of 0.5M hydrochloric acid. Calculate the % of impurities in the ammonium sulphate (VI)fertilizer. (N=14.0,S=32.0,O=16.0, H=1.0)

Equation for neutralization

NaOH(aq) + HCl(aq) -> NaOH(aq) + H₂O(l)

Mole ratio NaOH(aq):HCl(aq)= 1:1

Moles of HCl = Molarity x volume => 0.5 x 85 = 0.0425 moles

1000 1000

Excess moles of NaOH(aq)= 0.0425 moles

Equation for reaction with ammonium salt

2NaOH(aq) + (NH₄)₂SO₄(aq) -> Na₂SO₄(aq) + 2NH₃ (g)+ 2H₂O(l)

Mole ratio NaOH(aq): (NH₄)₂SO₄(aq)= 2:1

Total moles of NaOH = Molarity x volume => 0.8 x 250 = 0.2 moles

1000 1000

Moles of NaOH that reacted with(NH₄)₂SO₄ = 0.2 – 0.0425 = 0.1575moles

Moles (NH₄)₂SO₄= ½ x 0.1575moles = 0. 07875moles

Molar mass (NH₄)₂SO₄= 132 gmole^-1

Mass of in impure sample = moles x molar mass =>0. 07875 x 132 = 10.395 g

Mass of impurities = 10.5 -10.395 = 0.105 g

% impurities = 0.105 x 100 = 1.0 %

10.5

Practically volumetric analysis involves titration.

Titration generally involves filling a burette with known/unknown concentration of a solution then adding the solution to unknown/known concentration of another solution in a conical flask until there is complete reaction. If the solutions used are both colourless, an indicator is added to the conical flask. When the reaction is over, a slight/little excess of burette contents change the colour of the indicator. This is called the end point.

The titration process involve involves determination of titre. The titre is the volume of burette contents/reading before and after the end point. Burette contents/reading before titration is usually called the Initial burette reading. Burette contents/reading after titration is usually called the Final burette reading. The titre value is thus a sum of the Final less Initial burette readings.

To reduce errors, titration process should be repeated at least once more.

The results of titration are recorded in a titration table as below

Sample titration table

Titration number	1	2	3
Final burette reading (cm3)	20.0	20.0	20.0
Initial burette reading (cm3)	0.0	0.0	0.0
Volume of solution used(cm3)	20.0	20.0	20.0

As evidence of a titration actually done examining body requires the candidate to record their burette readings before and after the titration.

For KCSE candidates burette readings must be recorded in a titration table in the format provided by the Kenya National Examination Council.

As evidence of all titration actually done Kenya National Examination Council require the candidate to record their burette readings before and after the titration to complete the titration table in the format provided.

Calculate the average volume of solution used

24.0 + 24.0 + 24.0 = 24.0 cm3

As evidence of understanding the degree of accuracy of burettes , all readings must be recorded to a decimal point.

As evidence of accuracy in carrying the out the titration , candidates value should be within 0.2 of the school value .

The school value is the teachers readings presented to the examining body/council based on the concentrations of the solutions s/he presented to her/his candidates.

Bonus mark is awarded for averaged reading within 0.1 school value as Final answer.

Calculations involved after the titration require candidates thorough practical and theoretical practice mastery on the:

(i)relationship among the mole, molar mass, mole ratios, concentration, molarity.

(ii) mathematical application of 1^st principles.

Very useful information which candidates forget appears usually in the beginning of the question paper as:

“You are provided with…”

All calculation must be to the 4^th decimal point unless they divide fully to a lesser decimal point.

Candidates are expected to use a non programmable scientific calculator.

(a)Sample Titration Practice 1 (Simple Titration)

You are provided with:

0.1M sodium hydroxide solution A

Hydrochloric acid solution B

You are required to determine the concentration of solution B in moles per litre.

Procedure

Fill the burette with solution B. Pipette 25.0cm3 of solution A into a conical flask. Titrate solution A with solution B using phenolphthalein indicator to complete the titration table 1

Sample results Titration table 1

Titration number	1	2	3
Final burette reading (cm3)	20.0	20.0	20.0
Initial burette reading (cm3)	0.0	0.0	0.0
Volume of solution B used(cm3)	20.0	20.0	20.0

Sample worked questions

1. Calculate the average volume of solution B used

Average titre = Titre 1 + Titre 2 +Titre 3 => ( 20.0 +20.0 +20.0 ) = 20.0cm3

3 3

2. How many moles of:

(i)solution A were present in 25cm3 solution.

Moles of solution A = Molarity x volume = 0.1 x 25 = 2.5 x 10^-3 moles

1000 1000

(ii)solution B were present in the average volume.

Chemical equation: NaOH(aq) + HCl(aq) -> NaCl(aq) + H₂O(l)

Mole ratio 1:1 => Moles of A = Moles of B = 2.5 x 10^-3 moles

(iii) solution B in moles per litre.

Moles of B per litre = moles x 1000 = 2.5 x 10^-3 x 1000 = 0.1M

Volume 20

(b)Sample Titration Practice 2 (Redox Titration)

You are provided with:

Acidified Potassium manganate(VII) solution A

0.1M of an iron (II)salt solution B

8.5g of ammonium iron(II)sulphate(VI) crystals(NH₄)₂ SO₄FeSO₄.xH₂O solid C

You are required to

(i)standardize acidified potassium manganate(VII)

(ii)determine the value of x in the formula (NH₄)₂ SO₄FeSO₄.xH₂O.

Procedure 1

Fill the burette with solution A. Pipette 25.0cm3 of solution B into a conical flask. Titrate solution A with solution B until a pink colour just appears.

Record your results to complete table 1.

Table 1:Sample results

Titration number	1	2	3
Final burette reading (cm3)	20.0	20.0	20.0
Initial burette reading (cm3)	0.0	0.0	0.0
Volume of solution A used(cm3)	20.0	20.0	20.0

Sample worked questions

1. Calculate the average volume of solution A used

Average titre = Titre 1 + Titre 2 +Titre 3 => ( 20.0 +20.0 +20.0 ) = 20.0cm3

3 3

2. How many moles of:

(i)solution B were present in 25cm3 solution.

Moles of solution A = Molarity x volume = 0.1 x 25 = 2.5 x 10^-3 moles

1000 1000

(ii)solution A were present in the average volume. Assume one mole of B react with five moles of B

Mole ratio A : B = 1:5

=> Moles of A = Moles of B = 2.5 x 10^-3 moles = 5.0 x 10 ^-4moles

5 5

(iii) solution B in moles per litre.

Moles of B per litre = moles x 1000 = 2.5 x 10^-3 x 1000

Volume 20

= 0.025 M /moles per litre /moles l^-1

Procedure 2

Place all the solid C into the 250cm3 volumetric flask carefully. Add about 200cm3 of distilled water. Shake to dissolve. Make up to the 250cm3 of solution by adding more distilled water. Label this solution C. Pipette 25cm3 of solution C into a conical flask, Titrate solution C with solution A until a permanent pink colour just appears. Complete table 2.

Table 2:Sample results

Titration number	1	2	3
Final burette reading (cm3)	20.0	20.0	20.0
Initial burette reading (cm3)	0.0	0.0	0.0
Volume of solution A used(cm3)	20.0	20.0	20.0

Sample worked questions

1. Calculate the average volume of solution A used

Average titre = Titre 1 + Titre 2 +Titre 3 => ( 20.0 +20.0 +20.0 ) = 20.0cm3

3 3

2. How many moles of:

(i)solution A were present inin the average titre.

Moles of solution A = Molarity x volume = 0.025 x 20 = 5.0 x 10^-4 moles

1000 1000

(ii)solution C in 25cm3 solution given the equation for the reaction:

MnO₄^–(aq) + 8H⁺(aq) + 5Fe²⁺ (aq) -> Mn²⁺(aq) + 5Fe³⁺(aq) + 4H₂O(l)

Mole ratio MnO₄^–(aq): 5Fe²⁺ (aq) = 1:5 => Moles of 5Fe²⁺ (aq) = Moles of MnO₄^–(aq) = 5.0 x 10^-4 moles = 1.0 x 10 ^-4moles

5 5

(iii) solution B in 250cm3.

Moles of B per litre = moles x 250 = 1.0 x 10 ^-4 x 250 = 1.0 x 10 ^-3moles Volume 25

3. Calculate the molar mass of solid C and hence the value of x in the chemical formula (NH₄)₂SO₄FeSO₄.xH₂O.

(N=14.0, S=32.0, Fe=56.0, H=1.0 O=16.0)

Molar mass = mass perlitre = 8.5 = 8500 g

Moles per litre 1.0 x 10 ^-3moles

NH₄)₂SO₄FeSO₄.xH₂O = 8500

284 + 18x =8500

8500 – 284 = 8216 = 18x = 454.4444

18 18

x = 454 (whole number)

(c)Sample Titration Practice 3 (Back titration)

You are provided with:

(i)an impure calcium carbonate labeled M

(ii)Hydrochloric acid labeled solution N

(iii)solution L containing 20g per litre sodium hydroxide.

You are required to determine the concentration of N in moles per litre and the % of calcium carbonate in mixture M.

Procedure 1

Pipette 25.0cm3 of solution L into a conical flask. Add 2-3 drops of phenolphthalein indicator. Titrate with dilute hydrochloric acid solution N and record your results in table 1(4mark)

Sample Table 1

1	2	3
Final burette reading (cm3)	6.5	6.5	6.5
Initial burette reading (cm3)	0.0	0.0	0.0
Volume of N used (cm3)	6.5	6.5	6.5

Sample questions

(a) Calculate the average volume of solution N used

6.5 + 6.5 + 6.5 = 6.5 cm3

(b) How many moles of sodium hydroxide are contained in 25cm3of solution L

Molar mass NaOH =40g

Molarity of L = mass per litre => 20 = 0.5M

Molar mass NaOH 40

Moles NaOH in 25cm3 = molarity x volume => 0.5M x 25cm3 = 0.0125 moles

1000 1000

(c)Calculate:

(i)the number of moles of hydrochloric acidthat react with sodium hydroxide in (b)above.

Mole ratio NaOH : HCl from stoichiometric equation= 1:1

Moles HCl =Moles NaOH => 0.0125 moles

(ii)the molarity of hydrochloric acid solution N.

Molarity = moles x 1000 => 0.0125 moles x 1000 =1.9231M/moledm^-3

6.5 6.5

Procedure 2

Place the 4.0 g of M provided into a conical flask and add 25.0cm3 of the dilute hydrochloric acid to it using a clean pipette. Swirl the contents of the flask vigorously until effervescence stop.Using a 100ml measuring cylinder add 175cm3 distilled waterto make up the solution up to 200cm3.Label this solution K.Using a clean pipettetransfer 25.0cm3 of the solution into a clean conical flask and titrate with solution L from the burette using 2-3 drops of methyl orange indicator.Record your observations in table 2.

Sample Table 2

1	2	3
Final burette reading (cm3)	24.5	24.5	24.5
Initial burette reading (cm3)	0.0	0.0	0.0
Volume of N used (cm3)	24.5	24.5	24.5

Sample calculations

(a)Calculate the average volume of solution L used(1mk)

24.5 + 24.5 + 24.5 = 24.5cm3

(b)How many moles of sodium hydroxide are present in the average volume of solution L used?

Moles = molarity x average burette volume => 0.5 x 24.5

1000 1000

= 0.01225 /1.225 x 10^-2moles

(c) How many moles of hydrochloric acid are present in the original 200cm3 of solution K?

Mole ratio NaOH: HCl = 1:1 => moles of HCl = 0.01225 /1.225 x 10^-2moles

Moles in 200cm3 = 200cm3 x 0.01225 /1.225 x 10^-2moles

25cm3(volume pipetted)

=0.49 /4.9 x 10^-1moles

(d)How many moles of hydrochloric acid were contained in original 25 cm3 solution N used

Original moles = Original molarity x pipetted volume =>

1000cm3

1.9231M/moledm^-3x 25 = 0.04807/4.807 x 10^-2moles

1000

(e)How many moles of hydrochloric acid were used to react with calcium carbonate present?

Moles that reacted = original moles –moles in average titre =>

0.04807/4.807 x 10^-2moles – 0.01225 /1.225 x 10^-2moles

= 0.03582/3.582 x 10 ^-2moles

(f)Write the equation for the reaction between calcium carbonate and hydrochloric acid.

CaCO₃(s) + 2HCl(aq) -> CaCl₂(aq) + CO₂(g) + H₂O(l)

(g)Calculate the number of moles of calcium carbonate that reacted with hydrochloric acid.

From the equation CaCO₃(s):2HCl(aq) = 1:2

=> Moles CaCO₃(s) = ¹/₂moles HCl

= ¹/₂ x 0.03582/3.582 x 10 ^-2moles

= 0.01791 /1.791 x 10^-2moles

(h)Calculate the mass of calcium carbonate in 4.0g of mixture M (Ca=40.0,O = 16.0,C=12.0)

Molar mass CaCO₃ = 100g

Mass CaCO₃ = moles x molar mass => 0.01791 /1.791 x 10^-2moles x 100g

= 1.791g

(i)Determine the % of calcium carbonate present in the mixture

% CaCO₃ = mass of pure x 100% => 1.791g x 100% = 44.775%

Mass of impure 4.0

(d)Sample titration practice 4 (Multiple titration)

You are provided with:

(i)sodium L containing 5.0g per litre of a dibasic organic acid H₂X.2H₂O.

(ii)solution M which is acidified potassium manganate(VII)

(iii)solution N a mixture of sodium ethanedioate and ethanedioic acid

(iv)0.1M sodium hydroxide solution P

(v)1.0M sulphuric(VI)

You are required to:

(i)standardize solution M using solution L

(ii)use standardized solution M and solution P to determine the % of sodium ethanedioate in the mixture.

Procedure 1

Fill the burette with solution M. Pipette 25.0cm3 of solution L into a conical flask. Heat this solution to about 70^oC(but not to boil).Titrate the hot solution L with solution M until a permanent pink colour just appears .Shake thoroughly during the titration. Repeat this procedure to complete table 1.

Sample Table 1

1	2	3
Final burette reading (cm3)	24.0	24.0	24.0
Initial burette reading (cm3)	0.0	0.0	0.0
Volume of N used (cm3)	24.0	24.0	24.0

Sample calculations

(a)Calculate the average volume of solution L used (1mk)

24.0 + 24.0 + 24.0 = 24.0cm3

(b)Given that the concentration of the dibasic acid is 0.05molesdm^-3.determine the value of x in the formula H₂X.2H₂O (H=1.0,O=16.0)

Molar mass H₂X.2H₂O= mass per litre => 5.0g/litre = 100g

Moles/litre 0.05molesdm^-3

H₂X.2H₂O =100

X = 100 – ((2 x1) + 2 x (2 x1) + (2 x 16) => 100 – 34 = 66

(c) Calculate the number of moles of the dibasic acid H₂X.2H₂O.

Moles = molarity x pipette volume => 0.5 x 25 = 0.0125/1.25 x10 ^-2 moles

1000 1000

(d)Given the mole ratio manganate(VII)(MnO₄^–): acid H₂X is 2:5, calculate the number of moles of manganate(VII) (MnO₄^–) in the average titre.

Moles H₂X = ²/₅ moles of MnO₄^–

=> ²/₅ x 0.0125/1.25 x10 ^-2 moles

= 0.005/5.0 x 10 ^-3moles

(e)Calculate the concentration of the manganate(VII)(MnO₄^–) in moles per litre.

Moles per litre/molarity = moles x 1000

average burette volume

=>0.005/5.0 x 10 ^-3moles x 1000 = 0.2083 molesl^-1/M

24.0

Procedure 2

With solution M still in the burette ,pipette 25.0cm3 of solution N into a conical flask. Heat the conical flask containing solution N to about 70^oC.Titrate while hot with solution M.Repeat the experiment to complete table 2.

Sample Table 2

1	2	3
Final burette reading (cm3)	12.5	12.5	12.5
Initial burette reading (cm3)	0.0	0.0	0.0
Volume of N used (cm3)	12.5	12.5	12.5

Sample calculations

(a)Calculate the average volume of solution L used (1mk)

12.5 + 12.5 + 12.5 =12.5cm3

(b)Calculations:

(i)How many moles of manganate(VII)ions are contained in the average volume of solution M used?

Moles = molarity of solution M x average burette volume

1000

=> 0.2083 molesl^-1/ M x 12.5 = 0.0026 / 2.5 x 10^-3 moles

1000

(ii)The reaction between manganate(VII)ions and ethanedioate ions that reacted with is as in the equation:

2MnO₄^–(aq) + 5C₂O₄^2- (aq) + 16H⁺ (aq) -> 2Mn²⁺(aq) + 10CO₂(g) + 8H₂O(l)

Calculate the number of moles of ethanedioate ions that reacted with manganate (VII) ions in the average volume of solution M.

From the stoichiometric equation,mole ratio MnO₄^–(aq): C₂O₄^2- (aq) = 2:5

=> moles C₂O₄^2- = ⁵/₂ moles MnO₄^– => ⁵/₂x 0.0026 / 2.5 x 10^-3 moles

= 0.0065 /6.5 x10^-3 moles

(iii)Calculate the number of moles of ethanedioate ions contained in 250cm3 solution N.

25cm3 pipette volume -> 0.0065 /6.5 x10^-3 moles

250cm3 ->

0.0065 /6.5 x10^-3 moles x 250 = 0.065 / 6.5 x10^-2 moles

Procedure 3

Remove solution M from the burette and rinse it with distilled water. Fill the burette with sodium hydroxide solution P. Pipette 25cm3 of solution N into a conical flask and add 2-3 drops of phenolphthalein indicator. Titrate this solution N with solution P from the burette. Repeat the procedure to complete table 3.

Sample Table 2

1	2	3
Final burette reading (cm3)	24.9	24.9	24.9
Initial burette reading (cm3)	0.0	0.0	0.0
Volume of N used (cm3)	24.9	24.9	24.9

Sample calculations

(a)Calculate the average volume of solution L used (1mk)

24.9 + 24.9 + 24.9 = 24.9 cm3

(b)Calculations:

(i)How many moles of sodium hydroxide solution P were contained in the average volume?

Moles = molarity of solution P x average burette volume

1000

=> 0.1 molesl^-1 x 24.9 = 0.00249 / 2.49 x 10^-3 moles

1000

(ii)Given that NaOH solution P reacted with the ethanedioate ions from the acid only and the equation for the reaction is:

2NaOH(aq) + H₂C₂O₄ (aq) -> Na₂C₂O₄(g) + 2H₂O(l)

Calculate the number of moles of ethanedioic acid that were used in the reaction

From the stoichiometric equation,mole ratio NaOH(aq): H₂C₂O₄ (aq) = 2:1

=> moles H₂C₂O₄ = ¹/₂ moles NaOH => ¹/₂x 0.00249 / 2.49 x 10^-3 moles

= 0.001245/1.245 x10^-3 moles.

(iii)How many moles of ethanedioic acid were contained in 250cm3 of solution N?

25cm3 pipette volume -> 0.001245/1.245 x10^-3 moles

250cm3 ->

0.001245/1.245 x10^-3 moles x 250 = 0.01245/1.245 x10^-2 moles

(iii)Determine the % by mass of sodium ethanedioate in the micture (H= 1.0,O=16.0,C=12.0 and total mass of mixture =2.0 g in 250cm3 solution)

Molar mass H₂C₂O₄= 90.0g

Mass of H₂C₂O₄in 250cm3 = moles in 250cm3 x molar mass H₂C₂O₄

=>0.01245/1.245 x10^-2 moles x 90.0

= 1.1205g

% by mass of sodium ethanedioate

=(Mass of mixture – mass of H₂C₂O₄) x 100%

Mass of mixture

=> 2.0 – 1.1205 g = 43.975%

2.0

Note

(i) L is 0.05M Oxalic acid

(ii) M is 0.01M KMnO4

(iii) N is 0.03M oxalic acid(without sodium oxalate)

Practice example 5.(Determining equation for a reaction)

You are provided with

-0.1M hydrochloric acid solution A

-0.5M sodium hydroxide solution B

You are to determine the equation for thereaction between solution A and B

Procedure

Fill the burette with solution A.Using a pipette and pipette filler transfer 25.0cm3 of solution B into a conical flask.Add 2-3 drops of phenolphthalein indicator.Run solution A into solution B until a permanent pink colour just appears.Record your results in Table 1.Repeat the experiment to obtain three concordant results to complete Table 1

Table 1(Sample results)

Titration	1	2	3
Final volume(cm3)	12.5	25.0	37.5
Initial volume(cm3)	0.0	12.5	25.0
Volume of solution A used(cm3)	12.5	12.5	12.5

Sample questions

Calculate the average volume of solution A used.

12.5+12.5+12.5 = 12.5cm3

Theoretical Practice examples

1. 1.0g of dibasic acid HOOC(CH₂)_xCOOH was dissolved in 250cm3 solution. 25.0 cm3 of this solution reacted with 30.0cm3 of 0.06M sodium hydroxide solution. Calculate the value of x in HOOC(CH₂)_xCOOH. (C=12.0,H=1.0,O=16.)

Chemical equation

2NaOH(aq) + H₂X(aq) -> Na₂X (aq) + 2H₂O(aq)

Mole ratio NaOH(aq) :H₂X(aq) = 2:1

Method 1

Ma Va = na => Ma x 25.0 = 1 => Ma =0.06 x 30.0 x1

Mb Vb = nb 0.06 x 30.0 2 25.0 x 2

Molarity of acid = 0.036M/Mole l^-1

Mass of acid per lite = 1.0 x1000 = 4.0 g/l

250

0.036M/ Mole l^-1 -> 4.0 g /l

1 mole= molar mass of HOOC(CH₂)_xCOOH = 4.0 x 1 = 111.1111 g

0.036

Molar mass (CH₂)_x = 111.1111 – (HOOCCOOH = 90.0) = 21.1111

(CH₂)_x = 14x = 21.1111 = 1.5 = 1 (whole number)

Method 2

Moles of sodium hydroxide = Molarity x volume = 0.06 x 30 = 1.8 x 10 ^-3moles

1000

Moles of Hydrochloric acid = ¹/₂x 1.8 x 10 ^-3moles = 9.0 x10 ^-4moles

Molarity of Hydrochloric acid = moles x 1000 = 9.0 x10 ^-4moles x1000

Volume 25

Molarity of acid = 0.036M/Mole l^-1

Mass of acid per lite = 1.0 x1000 = 4.0 g/l

250

0.036M/ Mole l^-1 -> 4.0 g /l

1 mole= molar mass of HOOC(CH₂)_xCOOH = 4.0 x 1 = 111.1111 g

0.036

Molar mass (CH₂)_x = 111.1111 – (HOOCCOOH = 90.0) = 21.1111

(CH₂)_x = 14x = 21.1111 = 1.5 = 1 (whole number)

2. 20.0cm3 of 0.05 M acidified potassium manganate(VII)solution oxidized 25.0cm3 of Fe²⁺(aq) ions in 40.0g/l of impure Iron (II)sulphate(VI) to Fe³⁺(aq) ions. Calculate the percentage impurities in the Iron (II)sulphate(VI).

MnO₄^– (aq) + 8H⁺(aq)+ 5Fe²⁺(aq)-> 5Fe³⁺(aq) + Mn²⁺(aq) + 4H₂O(aq)

Fe=56.0,S= 32.0, O=16.0).

Moles of MnO₄^– (aq) = Molarity x volume = 0.05 x 20.0 = 0.001 Moles

1000 1000

Mole ratio MnO₄^– (aq): 5Fe²⁺(aq)= 1:5

Moles 5Fe²⁺(aq) = 5 x0.001 = 0.005 Moles

Moles of 5Fe²⁺(aq) per litre/molarity = Moles x 1000 = 0005 x 1000

Volume 25.0

= 0.2 M/ Moles/litre

Molar mass =FeSO₄=152 g

Mass of in the mixture = Moles x molar mass => 0.2 x 152 = 30.4 g

Mass of impurity = 40.0 – 30.4 =9.6 g

% impurity = 9.6 g x100 = 24.0 % impurity

40.0

3.9.7 g of a mixture of Potassium hydroxide and Potassium chloride was dissolved to make one litre solution.20.0cm3 of this solution required 25.0cm3 of 0.12M hydrochloric acid for completed neutralization. Calculate the percentage by mass of Potassium chloride.(K=39.0,Cl= 35.5)

Chemical equation

KOH(aq) + HCl(aq) -> KCl(aq) + H₂O(l)

Moles of HCl = Molarity x volume => 0.12 x 25.0 = 0.003/3.0 x 10 ^-3 moles

1000 1000

Mole ratio KOH(aq) : HCl(aq) -= 1:1

Moles KOH =0.003/3.0 x 10 ^-3 moles

Method 1

Molar mass KOH =56.0g

Mass KOH in 25cm3 =0.003/3.0 x 10 ^-3 moles x56.0 = 0.168g

Mass KOH in 1000cm3/1 litre = 0.168 x1000= 8.4 g/l

Mass of KCl = 9.7g – 8.4g = 1.3 g

% of KCl = 1.3 x 100 = 13.4021%

9.7

Method 2

Moles KOH in 1000cm3 /1 litre = Moles in 20cm3 x 1000 =>0.003 x 1000

20 20

=0.15M/Moles /litre

Molar mass KOH =56.0g

Mass KOH in 1000/1 litre = 0.15M/Moles /litre x 56.0 = 8.4g/l

Mass of KCl = 9.7g – 8.4g = 1.3 g

% of KCl = 1.3 x 100 = 13.4021%

9.7

4.A certain carbonate, GCO3, reacts with dilute hydrochloric acid according to the equation given below:

GCO_3(s) + 2HCl_(aq) -> GCl₂ _(aq) + CO₂ (g) + H₂O_(l)

If 1 g of the carbonate reacts completely with 20 cm3 of 1 M hydrochloric acid ,calculate the relative atomic mass of G (C = 12.0 = 16.0)

Moles of HCl = Molarity x volume=> 1 x20 = 0.02 moles

1000 1000

Mole ratio HCl; GCO₃ = 2:1

Moles of GCO₃= 0.02 moles = 0.01moles

Molar mass of GCO₃ = mass => 1 = 100 g

moles 0.01moles

G= GCO₃– CO₃ =>100g – (12+ 16 x3 = 60) = 40(no units)

5. 46.0g of a metal carbonate MCO₃ was dissolved 160cm3 of 0.1M excess hydrochloric acid and the resultant solution diluted to one litre.25.0cm3 of this solution required 20.0cm3 of 0.1M sodium hydroxide solution for complete neutralization. Calculate the atomic mass of ‘M’

Equation

Chemical equation

NaOH(aq) + HCl(aq) -> KCl(aq) + H₂O(l)

Moles of NaOH = Molarity x volume=> 0.1 x20 = 0.002 moles

1000 1000

Mole ratio HCl; NaOH = 1:1

Excess moles of HCl = 0.002 moles

25cm3 -> 0.002 moles

1000cm3 -> 1000 x 0.002 = 0.08moles

25cm3

Original moles of HCl = Molarity x volume => 1M x 1litre = 1.0 moles

Moles of HCl reacted with MCO₃ = 1.0 – 0.08 moles = 0.92moles

Chemical equation

MCO_3(s) + 2HCl_(aq) -> MCl₂ _(aq) + CO₂ (g) + H₂O_(l)

Mole ratio MCO_3(s) : HCl_(aq) =1:2

Moles of MCO₃ = 0.92moles => 0.46moles

Molar mass of MCO₃= mass => 46g = 100 g

moles 0.46moles

M= MCO₃– CO₃ =>100g – (12+ 16 x3 = 60) = 40

6. 25.0cm3 of a mixture of Fe²⁺ and Fe³⁺ ions in an aqueous salt was acidified with sulphuric(VI)acid then titrated against potassium manganate(VI).The salt required 15cm3 ofe0.02M potassium manganate(VI) for complete reaction.

A second 25cm3 portion of the Fe²⁺ and Fe³⁺ ion salt was reduced by Zinc then titrated against the same concentration of potassium manganate(VI).19.0cm3 of potassium manganate(VI)solution was used for complete reaction. Calculate the concentration of Fe²⁺ and Fe³⁺ ion in the solution on moles per litre.

Mole ratio Fe²⁺ :Mn0₄^– = 5:1

Moles Mn0₄^–used = 0.02 x 15 = 3.0 x 10^-4 moles

1000

Moles Fe²⁺ = 3.0 x 10^-4 moles = 6.0 x 10^-5 moles

Molarity of Fe²⁺ = 6.0 x 10^-4 moles x 1000 = 2.4 x 10^-3 moles l^-1

Since Zinc reduces Fe³⁺to Fe²⁺ in the mixture:

Moles Mn0₄^– that reacted with all Fe²⁺= 0.02 x 19 = 3.8 x 10^-4 moles

1000

Moles of all Fe²⁺= 3.8 x 10^-4 moles = 7.6 x 10^-5 moles

Moles of Fe³⁺ = 3.8 x 10^-4 – 6.0 x 10^-5 = 1.6 x 10^-5 moles

Molarity of Fe³⁺ = 1.6 x 10^-5 moles x 1000 = 4.0 x 10^-4 moles l^-1