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| WK | LSN | TOPIC | SUB-TOPIC | OBJECTIVES | T/L ACTIVITIES | T/L AIDS | REFERENCE | REMARKS |
|---|---|---|---|---|---|---|---|---|
| 1 |
Opening and revision of end of term assessment |
|||||||
| 1 | 5 |
THE MOLE
|
Stoichiometry - Experimental Determination of Equations
|
By the end of the
lesson, the learner
should be able to:
Determine chemical equations from experimental data Calculate mole ratios from mass measurements Write balanced chemical equations Apply stoichiometry to displacement reactions |
Experiment: Iron displacement of copper from CuSO₄ solution. Measure masses of iron used and copper displaced. Calculate mole ratios. Derive balanced chemical equation. Discuss spectator ions.
|
Iron filings, Copper(II) sulphate solution, Beam balance, Beakers, Filter equipment
|
KLB Secondary Chemistry Form 3, Pages 50-53
|
|
| 2 | 1 |
THE MOLE
|
Stoichiometry - Precipitation Reactions
|
By the end of the
lesson, the learner
should be able to:
Investigate stoichiometry of precipitation reactions Determine mole ratios from volume measurements Write ionic equations for precipitation Analyze limiting and excess reagents |
Experiment: Pb(NO₃)₂ + KI precipitation reaction. Use different volumes to determine stoichiometry. Measure precipitate heights. Plot graphs to find reaction ratios. Identify limiting reagents.
|
Test tubes, Lead(II) nitrate solution, Potassium iodide solution, Burettes, Ethanol, Rulers
|
KLB Secondary Chemistry Form 3, Pages 53-56
|
|
| 2 | 2 |
THE MOLE
|
Stoichiometry - Precipitation Reactions
|
By the end of the
lesson, the learner
should be able to:
Investigate stoichiometry of precipitation reactions Determine mole ratios from volume measurements Write ionic equations for precipitation Analyze limiting and excess reagents |
Experiment: Pb(NO₃)₂ + KI precipitation reaction. Use different volumes to determine stoichiometry. Measure precipitate heights. Plot graphs to find reaction ratios. Identify limiting reagents.
|
Test tubes, Lead(II) nitrate solution, Potassium iodide solution, Burettes, Ethanol, Rulers
|
KLB Secondary Chemistry Form 3, Pages 53-56
|
|
| 2 | 3-4 |
THE MOLE
|
Stoichiometry - Gas Evolution Reactions
Volumetric Analysis - Introduction and Apparatus |
By the end of the
lesson, the learner
should be able to:
Determine stoichiometry of gas-producing reactions Collect and measure gas volumes Calculate mole ratios involving gases Write equations for acid-carbonate reactions Define volumetric analysis and titration Identify and use titration apparatus correctly Explain functions of pipettes and burettes Demonstrate proper reading techniques |
Experiment: HCl + Na₂CO₃ reaction. Collect CO₂ gas in plastic bag. Measure gas mass and calculate moles. Determine mole ratios of reactants and products. Write balanced equation.
Practical session: Familiarization with pipettes and burettes. Practice filling and reading burettes accurately. Learn proper meniscus reading. Use pipette fillers safely. Rinse apparatus with appropriate solutions. |
Conical flask, Thistle funnel, Plastic bags, Rubber bands, Sodium carbonate, HCl solution
Pipettes (10, 20, 25cm³), Burettes (50cm³), Pipette fillers, Conical flasks, Various solutions |
KLB Secondary Chemistry Form 3, Pages 56-58
KLB Secondary Chemistry Form 3, Pages 58-59 |
|
| 2 | 5 |
THE MOLE
|
Volumetric Analysis - Introduction and Apparatus
|
By the end of the
lesson, the learner
should be able to:
Define volumetric analysis and titration Identify and use titration apparatus correctly Explain functions of pipettes and burettes Demonstrate proper reading techniques |
Practical session: Familiarization with pipettes and burettes. Practice filling and reading burettes accurately. Learn proper meniscus reading. Use pipette fillers safely. Rinse apparatus with appropriate solutions.
|
Pipettes (10, 20, 25cm³), Burettes (50cm³), Pipette fillers, Conical flasks, Various solutions
|
KLB Secondary Chemistry Form 3, Pages 58-59
|
|
| 3 | 1 |
THE MOLE
|
Titration - Acid-Base Neutralization
|
By the end of the
lesson, the learner
should be able to:
Perform acid-base titrations accurately Use indicators to determine end points Record titration data properly Calculate average titres from multiple readings |
Experiment: Titrate 25cm³ of 0.1M NaOH with 0.1M HCl using phenolphthalein. Repeat three times for consistency. Record data in tabular form. Calculate average titre. Discuss accuracy and precision.
|
Burettes, Pipettes, 0.1M NaOH, 0.1M HCl, Phenolphthalein indicator, Conical flasks
|
KLB Secondary Chemistry Form 3, Pages 59-62
|
|
| 3 | 2 |
THE MOLE
|
Titration - Diprotic Acids
|
By the end of the
lesson, the learner
should be able to:
Investigate titrations involving diprotic acids Determine basicity of acids from titration data Compare volumes needed for mono- and diprotic acids Write equations for diprotic acid reactions |
Experiment: Titrate 25cm³ of 0.1M NaOH with 0.1M H₂SO₄. Compare volume used with previous HCl titration. Calculate mole ratios. Explain concept of basicity. Introduce dibasic and tribasic acids.
|
Burettes, Pipettes, 0.1M H₂SO₄, 0.1M NaOH, Phenolphthalein, Basicity reference chart
|
KLB Secondary Chemistry Form 3, Pages 62-65
|
|
| 3 |
Cat 1 |
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| 4 | 1 |
THE MOLE
|
Standardization of Solutions
|
By the end of the
lesson, the learner
should be able to:
Define standardization process Standardize HCl using Na₂CO₃ as primary standard Calculate accurate concentrations from titration data Understand importance of primary standards |
Experiment: Prepare approximately 0.1M HCl and standardize using accurately weighed Na₂CO₃. Use methyl orange indicator. Calculate exact molarity from titration results. Discuss primary standard requirements.
|
Anhydrous Na₂CO₃, Approximately 0.1M HCl, Methyl orange, Volumetric flasks, Analytical balance
|
KLB Secondary Chemistry Form 3, Pages 65-67
|
|
| 4 | 2 |
THE MOLE
|
Standardization of Solutions
|
By the end of the
lesson, the learner
should be able to:
Define standardization process Standardize HCl using Na₂CO₃ as primary standard Calculate accurate concentrations from titration data Understand importance of primary standards |
Experiment: Prepare approximately 0.1M HCl and standardize using accurately weighed Na₂CO₃. Use methyl orange indicator. Calculate exact molarity from titration results. Discuss primary standard requirements.
|
Anhydrous Na₂CO₃, Approximately 0.1M HCl, Methyl orange, Volumetric flasks, Analytical balance
|
KLB Secondary Chemistry Form 3, Pages 65-67
|
|
| 4 | 3-4 |
THE MOLE
|
Back Titration Method
Redox Titrations - Principles |
By the end of the
lesson, the learner
should be able to:
Understand principle of back titration Apply back titration to determine composition Calculate concentrations using back titration data Determine atomic masses from back titration Explain principles of redox titrations Identify color changes in redox reactions Understand self-indicating nature of some redox reactions Write ionic equations for redox processes |
Experiment: Determine atomic mass of divalent metal in MCO₃. Add excess HCl to carbonate, then titrate excess with NaOH. Calculate moles of acid that reacted with carbonate. Determine metal's atomic mass.
Teacher exposition: Redox titration principles. Demonstrate color changes: MnO₄⁻ (purple) → Mn²⁺ (colorless), Cr₂O₇²⁻ (orange) → Cr³⁺ (green). Discussion: Self-indicating reactions. Write half-equations and overall ionic equations. |
Metal carbonate sample, 0.5M HCl, 0M NaOH, Phenolphthalein, Conical flasks
Potassium manganate(VII), Potassium dichromate(VI), Iron(II) solutions, Color change charts |
KLB Secondary Chemistry Form 3, Pages 67-70
KLB Secondary Chemistry Form 3, Pages 68-70 |
|
| 4 | 5 |
THE MOLE
|
Redox Titrations - Principles
|
By the end of the
lesson, the learner
should be able to:
Explain principles of redox titrations Identify color changes in redox reactions Understand self-indicating nature of some redox reactions Write ionic equations for redox processes |
Teacher exposition: Redox titration principles. Demonstrate color changes: MnO₄⁻ (purple) → Mn²⁺ (colorless), Cr₂O₇²⁻ (orange) → Cr³⁺ (green). Discussion: Self-indicating reactions. Write half-equations and overall ionic equations.
|
Potassium manganate(VII), Potassium dichromate(VI), Iron(II) solutions, Color change charts
|
KLB Secondary Chemistry Form 3, Pages 68-70
|
|
| 5 | 1 |
THE MOLE
|
Redox Titrations - KMnO₄ Standardization
|
By the end of the
lesson, the learner
should be able to:
Standardize KMnO₄ solution using iron(II) salt Calculate molarity from redox titration data Apply 1:5 mole ratio in calculations Prepare solutions for redox titrations |
Experiment: Standardize KMnO₄ using FeSO₄(NH₄)₂SO₄·6H₂O. Dissolve iron salt in boiled, cooled water. Titrate with KMnO₄ until persistent pink color. Calculate molarity using 5:1 mole ratio.
|
Iron(II) ammonium sulfate, KMnO₄ solution, Dilute H₂SO₄, Pipettes, Burettes
|
KLB Secondary Chemistry Form 3, Pages 70-72
|
|
| 5 | 2 |
THE MOLE
|
Water of Crystallization Determination
|
By the end of the
lesson, the learner
should be able to:
Determine water of crystallization in hydrated salts Use redox titration to find formula of hydrated salt Calculate value of 'n' in crystallization formulas Apply analytical data to determine complete formulas |
Experiment: Determine 'n' in FeSO₄(NH₄)₂SO₄·nH₂O. Dissolve known mass in acid, titrate with standardized KMnO₄. Calculate moles of iron(II), hence complete formula. Compare theoretical and experimental values.
|
Hydrated iron(II) salt, Standardized KMnO₄, Dilute H₂SO₄, Analytical balance
|
KLB Secondary Chemistry Form 3, Pages 72-73
|
|
| 5 | 3-4 |
THE MOLE
|
Water of Crystallization Determination
Atomicity and Molar Gas Volume |
By the end of the
lesson, the learner
should be able to:
Determine water of crystallization in hydrated salts Use redox titration to find formula of hydrated salt Calculate value of 'n' in crystallization formulas Apply analytical data to determine complete formulas Define atomicity of gaseous elements Classify gases as monoatomic, diatomic, or triatomic Determine molar gas volume experimentally Calculate gas densities and molar masses |
Experiment: Determine 'n' in FeSO₄(NH₄)₂SO₄·nH₂O. Dissolve known mass in acid, titrate with standardized KMnO₄. Calculate moles of iron(II), hence complete formula. Compare theoretical and experimental values.
Experiment: Measure volumes and masses of different gases (O₂, CO₂, Cl₂). Calculate densities and molar masses. Determine volume occupied by one mole. Compare values at different conditions. |
Hydrated iron(II) salt, Standardized KMnO₄, Dilute H₂SO₄, Analytical balance
Gas syringes (50cm³), Various gases, Analytical balance, Gas supply apparatus |
KLB Secondary Chemistry Form 3, Pages 72-73
KLB Secondary Chemistry Form 3, Pages 73-75 |
|
| 5 | 5 |
THE MOLE
|
Gas Laws and Chemical Equations
|
By the end of the
lesson, the learner
should be able to:
Apply Avogadro's law to chemical reactions Use volume ratios to determine chemical equations Calculate product volumes from reactant volumes Solve problems involving gas stoichiometry |
Worked examples: Use Gay-Lussac's law to determine equations. Calculate volumes of products from given reactant volumes. Apply Avogadro's law to find number of molecules. Practice: Complex gas stoichiometry problems.
|
Scientific calculators, Gas law charts, Volume ratio examples
|
KLB Secondary Chemistry Form 3, Pages 77-79
|
|
| 6 | 1 |
NITROGEN AND ITS COMPOUNDS
|
Introduction to Nitrogen - Properties and Occurrence
|
By the end of the
lesson, the learner
should be able to:
Describe position of nitrogen in the periodic table State electron configuration of nitrogen Identify natural occurrence of nitrogen Explain why nitrogen exists as diatomic molecules |
Teacher exposition: Nitrogen as Group V element, atomic number 7, electron arrangement Discussion: 78% of atmosphere is nitrogen. Q/A: Combined nitrogen in compounds - nitrates, proteins. Explanation: N≡N triple bond strength.
|
Periodic table charts, Atmospheric composition diagrams, Molecular models showing N≡N triple bond
|
KLB Secondary Chemistry Form 3, Pages 119
|
|
| 6 | 2 |
NITROGEN AND ITS COMPOUNDS
|
Introduction to Nitrogen - Properties and Occurrence
|
By the end of the
lesson, the learner
should be able to:
Describe position of nitrogen in the periodic table State electron configuration of nitrogen Identify natural occurrence of nitrogen Explain why nitrogen exists as diatomic molecules |
Teacher exposition: Nitrogen as Group V element, atomic number 7, electron arrangement Discussion: 78% of atmosphere is nitrogen. Q/A: Combined nitrogen in compounds - nitrates, proteins. Explanation: N≡N triple bond strength.
|
Periodic table charts, Atmospheric composition diagrams, Molecular models showing N≡N triple bond
|
KLB Secondary Chemistry Form 3, Pages 119
|
|
| 6 | 3-4 |
NITROGEN AND ITS COMPOUNDS
|
Isolation of Nitrogen from Air - Industrial and Laboratory Methods
Laboratory Preparation of Nitrogen Gas |
By the end of the
lesson, the learner
should be able to:
Describe isolation of nitrogen from air Explain fractional distillation of liquid air Set up apparatus for laboratory isolation Identify impurities removed during isolation Prepare nitrogen gas from ammonium compounds Use sodium nitrite and ammonium chloride method Test physical and chemical properties of nitrogen Write equations for nitrogen preparation |
Experiment: Laboratory isolation using aspirator. Pass air through KOH solution to remove CO₂, then over heated copper to remove oxygen. Teacher demonstration: Fractional distillation principles. Flow chart study: Industrial nitrogen production steps.
Experiment: Mix sodium nitrite (7g) and ammonium chloride ( 5g) with water. Heat gently and collect gas over water. Tests: Color, smell, burning splint, litmus paper, lime water, burning Mg and S. Safety precautions during heating. |
Aspirator, KOH solution, Copper turnings, Heating apparatus, Fractional distillation flow chart
Sodium nitrite, Ammonium chloride, Round-bottomed flask, Gas collection apparatus, Test reagents, Deflagrating spoon |
KLB Secondary Chemistry Form 3, Pages 119-121
KLB Secondary Chemistry Form 3, Pages 121-123 |
|
| 6 | 5 |
NITROGEN AND ITS COMPOUNDS
|
Laboratory Preparation of Nitrogen Gas
|
By the end of the
lesson, the learner
should be able to:
Prepare nitrogen gas from ammonium compounds Use sodium nitrite and ammonium chloride method Test physical and chemical properties of nitrogen Write equations for nitrogen preparation |
Experiment: Mix sodium nitrite (7g) and ammonium chloride ( 5g) with water. Heat gently and collect gas over water. Tests: Color, smell, burning splint, litmus paper, lime water, burning Mg and S. Safety precautions during heating.
|
Sodium nitrite, Ammonium chloride, Round-bottomed flask, Gas collection apparatus, Test reagents, Deflagrating spoon
|
KLB Secondary Chemistry Form 3, Pages 121-123
|
|
| 7 | 1 |
NITROGEN AND ITS COMPOUNDS
|
Properties and Uses of Nitrogen Gas
|
By the end of the
lesson, the learner
should be able to:
Describe physical properties of nitrogen Explain chemical inertness of nitrogen Describe reactions at high temperatures List industrial uses of nitrogen |
Analysis of test results: Colorless, odorless, does not burn or support combustion. Discussion: Triple bond strength and chemical inertness. High temperature reactions with metals forming nitrides. Uses: Haber process, light bulbs, refrigerant, inert atmosphere.
|
Property summary charts, Uses of nitrogen displays, Industrial application diagrams
|
KLB Secondary Chemistry Form 3, Pages 121-123
|
|
| 7 | 2 |
NITROGEN AND ITS COMPOUNDS
|
Nitrogen(I) Oxide - Preparation and Properties
|
By the end of the
lesson, the learner
should be able to:
Prepare nitrogen(I) oxide from ammonium nitrate Test physical and chemical properties Explain decomposition and oxidizing properties Describe uses of nitrogen(I) oxide |
Experiment: Heat ammonium nitrate carefully in test tube. Collect gas over warm water. Tests: Color, smell, glowing splint test, reaction with heated copper and sulfur. Safety: Stop heating while some solid remains to avoid explosion.
|
Ammonium nitrate, Test tubes, Gas collection apparatus, Copper turnings, Sulfur, Glowing splints
|
KLB Secondary Chemistry Form 3, Pages 123-125
|
|
| 7 |
Mid term exams |
|||||||
| 8 | 1 |
NITROGEN AND ITS COMPOUNDS
|
Nitrogen(II) Oxide - Preparation and Properties
|
By the end of the
lesson, the learner
should be able to:
Prepare nitrogen(II) oxide from copper and dilute nitric acid Observe colorless gas and brown fumes formation Test reactions with air and iron(II) sulfate Explain oxidation in air to NO₂ |
Experiment: Add dilute HNO₃ to copper turnings. Observe brown fumes formation then disappearance. Tests: Effect on litmus, burning splint, FeSO₄ complex formation. Discussion: NO oxidation to NO₂ in air.
|
Copper turnings, Dilute nitric acid, Gas collection apparatus, Iron(II) sulfate solution, Test reagents
|
KLB Secondary Chemistry Form 3, Pages 125-127
|
|
| 8 | 2 |
NITROGEN AND ITS COMPOUNDS
|
Nitrogen(II) Oxide - Preparation and Properties
|
By the end of the
lesson, the learner
should be able to:
Prepare nitrogen(II) oxide from copper and dilute nitric acid Observe colorless gas and brown fumes formation Test reactions with air and iron(II) sulfate Explain oxidation in air to NO₂ |
Experiment: Add dilute HNO₃ to copper turnings. Observe brown fumes formation then disappearance. Tests: Effect on litmus, burning splint, FeSO₄ complex formation. Discussion: NO oxidation to NO₂ in air.
|
Copper turnings, Dilute nitric acid, Gas collection apparatus, Iron(II) sulfate solution, Test reagents
|
KLB Secondary Chemistry Form 3, Pages 125-127
|
|
| 8 | 3-4 |
NITROGEN AND ITS COMPOUNDS
|
Nitrogen(IV) Oxide - Preparation and Properties
Comparison of Nitrogen Oxides and Environmental Effects |
By the end of the
lesson, the learner
should be able to:
Prepare nitrogen(IV) oxide from copper and concentrated nitric acid Prepare from thermal decomposition of nitrates Test properties including equilibrium with N₂O₄ Describe reactions and uses Compare preparation methods of nitrogen oxides Distinguish between different nitrogen oxides Explain formation in vehicle engines Describe environmental pollution effects |
Experiment: Add concentrated HNO₃ to copper turnings. Collect red-brown gas by downward delivery. Alternative: Heat lead(II) nitrate with cooling U-tube. Tests: Solubility, effect on litmus, burning elements, cooling/heating effects.
Comparative study: Properties table of N₂O, NO, NO₂. Discussion: Formation in internal combustion engines. Environmental effects: Acid rain formation, smog, health problems. Worked examples: Distinguishing tests for each oxide. |
Copper turnings, Concentrated nitric acid, Lead(II) nitrate, Gas collection apparatus, U-tube with ice, Testing materials
Comparison charts, Environmental impact diagrams, Vehicle emission illustrations |
KLB Secondary Chemistry Form 3, Pages 127-131
KLB Secondary Chemistry Form 3, Pages 123-131 |
|
| 8 | 5 |
NITROGEN AND ITS COMPOUNDS
|
Comparison of Nitrogen Oxides and Environmental Effects
|
By the end of the
lesson, the learner
should be able to:
Compare preparation methods of nitrogen oxides Distinguish between different nitrogen oxides Explain formation in vehicle engines Describe environmental pollution effects |
Comparative study: Properties table of N₂O, NO, NO₂. Discussion: Formation in internal combustion engines. Environmental effects: Acid rain formation, smog, health problems. Worked examples: Distinguishing tests for each oxide.
|
Comparison charts, Environmental impact diagrams, Vehicle emission illustrations
|
KLB Secondary Chemistry Form 3, Pages 123-131
|
|
| 9 | 1 |
NITROGEN AND ITS COMPOUNDS
|
Laboratory Preparation of Ammonia
|
By the end of the
lesson, the learner
should be able to:
Prepare ammonia from ammonium salts and alkalis Set up apparatus with proper gas collection Test characteristic properties of ammonia Explain displacement reaction principle |
Experiment: Heat mixture of calcium hydroxide and ammonium chloride. Collect gas by upward delivery using calcium oxide as drying agent. Tests: Color, smell, combustion, HCl fumes test, litmus paper. Safety: Slanted flask position.
|
Calcium hydroxide, Ammonium chloride, Round-bottomed flask, Calcium oxide, HCl solution, Glass rod, Litmus paper
|
KLB Secondary Chemistry Form 3, Pages 131-134
|
|
| 9 | 2 |
NITROGEN AND ITS COMPOUNDS
|
Preparation of Aqueous Ammonia and Solubility
|
By the end of the
lesson, the learner
should be able to:
Prepare aqueous ammonia solution Demonstrate high solubility using fountain experiment Explain alkaline properties of aqueous ammonia Write equations for ammonia in water |
Experiment: Dissolve ammonia in water using inverted funnel method. Fountain experiment: Show partial vacuum formation due to high solubility. Tests: Effect on universal indicator, pH measurement. Theory: NH₃ + H₂O equilibrium.
|
Ammonia generation apparatus, Funnel, Universal indicator, Fountain apparatus, pH meter/paper
|
KLB Secondary Chemistry Form 3, Pages 134-136
|
|
| 9 |
Midterm break |
|||||||
| 10 | 1 |
NITROGEN AND ITS COMPOUNDS
|
Reactions of Aqueous Ammonia with Metal Ions
|
By the end of the
lesson, the learner
should be able to:
Test reactions of aqueous ammonia with various metal ions Observe precipitate formation and dissolution Explain complex ion formation Use reactions for metal ion identification |
Experiment: Add aqueous ammonia dropwise to solutions of Ca²⁺, Mg²⁺, Al³⁺, Zn²⁺, Fe²⁺, Fe³⁺, Pb²⁺, Cu²⁺. Record observations with few drops vs excess ammonia. Identify complex ion formation with Zn²⁺ and Cu²⁺.
|
Various metal salt solutions, Aqueous ammonia, Test tubes, Droppers, Observation recording tables
|
KLB Secondary Chemistry Form 3, Pages 136-138
|
|
| 10 | 2 |
NITROGEN AND ITS COMPOUNDS
|
Reactions of Aqueous Ammonia with Metal Ions
|
By the end of the
lesson, the learner
should be able to:
Test reactions of aqueous ammonia with various metal ions Observe precipitate formation and dissolution Explain complex ion formation Use reactions for metal ion identification |
Experiment: Add aqueous ammonia dropwise to solutions of Ca²⁺, Mg²⁺, Al³⁺, Zn²⁺, Fe²⁺, Fe³⁺, Pb²⁺, Cu²⁺. Record observations with few drops vs excess ammonia. Identify complex ion formation with Zn²⁺ and Cu²⁺.
|
Various metal salt solutions, Aqueous ammonia, Test tubes, Droppers, Observation recording tables
|
KLB Secondary Chemistry Form 3, Pages 136-138
|
|
| 10 | 3-4 |
NITROGEN AND ITS COMPOUNDS
|
Chemical Properties of Ammonia - Reactions with Acids and Combustion
|
By the end of the
lesson, the learner
should be able to:
Test neutralization reactions with acids Investigate combustion of ammonia Examine catalytic oxidation with platinum Study reducing properties with metal oxides |
Experiments: (a) Neutralize H₂SO₄, HCl, HNO₃ with aqueous ammonia using indicators. (b) Attempt combustion in air and oxygen. (c) Catalytic oxidation with heated platinum wire. (d) Reduction of CuO by ammonia. Record all observations.
|
Various dilute acids, Methyl orange, Oxygen supply, Platinum wire, Copper(II) oxide, Combustion apparatus, U-tube for collection
|
KLB Secondary Chemistry Form 3, Pages 138-140
|
|
| 10 | 5 |
NITROGEN AND ITS COMPOUNDS
|
Industrial Manufacture of Ammonia - The Haber Process
|
By the end of the
lesson, the learner
should be able to:
Describe raw materials and their sources Explain optimum conditions for ammonia synthesis Draw flow diagram of Haber process Explain economic considerations and catalyst use |
Teacher exposition: N₂ from air, H₂ from natural gas/cracking. Process conditions: 500°C, 200 atm, iron catalyst. Flow diagram study: Purification, compression, catalytic chamber, separation, recycling. Economic factors: Compromise between yield and rate.
|
Haber process flow charts, Industrial diagrams, Catalyst samples, Economic analysis sheets
|
KLB Secondary Chemistry Form 3, Pages 140-141
|
|
| 11 | 1 |
NITROGEN AND ITS COMPOUNDS
|
Uses of Ammonia and Introduction to Nitrogenous Fertilizers
|
By the end of the
lesson, the learner
should be able to:
List major uses of ammonia Explain importance as fertilizer Calculate nitrogen percentages in fertilizers Compare different nitrogenous fertilizers |
Discussion: Uses - fertilizer, refrigerant, cleaning agent, hydrazine production. Introduction to fertilizers: Ammonium sulfate, ammonium nitrate, ammonium phosphate, urea, CAN. Calculations: Percentage nitrogen content in each fertilizer type.
|
Fertilizer samples, Percentage calculation worksheets, Use application charts, Calculator
|
KLB Secondary Chemistry Form 3, Pages 141-144
|
|
| 11 | 2 |
NITROGEN AND ITS COMPOUNDS
|
Nitrogenous Fertilizers - Types and Calculations
|
By the end of the
lesson, the learner
should be able to:
Calculate percentage nitrogen in various fertilizers Compare fertilizer effectiveness Prepare simple nitrogenous fertilizers Discuss environmental considerations |
Worked examples: Calculate % N in (NH₄)₂SO₄, NH₄NO₃, (NH₄)₃PO₄, CO(NH₂)₂, CAN. Comparison: Urea has highest nitrogen content. Practical: Prepare ammonium sulfate from ammonia and sulfuric acid. Environmental impact discussion.
|
Various fertilizer formulas, Scientific calculators, Laboratory preparation materials, Environmental impact data
|
KLB Secondary Chemistry Form 3, Pages 141-144
|
|
| 11 | 3-4 |
NITROGEN AND ITS COMPOUNDS
|
Nitrogenous Fertilizers - Types and Calculations
Laboratory Preparation of Nitric(V) Acid |
By the end of the
lesson, the learner
should be able to:
Calculate percentage nitrogen in various fertilizers Compare fertilizer effectiveness Prepare simple nitrogenous fertilizers Discuss environmental considerations Prepare nitric acid from nitrate and concentrated sulfuric acid Set up all-glass apparatus safely Explain brown fumes and yellow color Purify nitric acid by air bubbling |
Worked examples: Calculate % N in (NH₄)₂SO₄, NH₄NO₃, (NH₄)₃PO₄, CO(NH₂)₂, CAN. Comparison: Urea has highest nitrogen content. Practical: Prepare ammonium sulfate from ammonia and sulfuric acid. Environmental impact discussion.
Experiment: Heat mixture of KNO₃ and concentrated H₂SO₄ in all-glass apparatus. Collect yellow nitric acid. Explain brown fumes (NO₂) and yellow color. Bubble air through to remove dissolved NO₂. Safety: Gentle heating, fume cupboard. |
Various fertilizer formulas, Scientific calculators, Laboratory preparation materials, Environmental impact data
Potassium nitrate, Concentrated sulfuric acid, All-glass apparatus, Condenser, Retort stand, Safety equipment |
KLB Secondary Chemistry Form 3, Pages 141-144
KLB Secondary Chemistry Form 3, Pages 144-145 |
|
| 11 | 5 |
NITROGEN AND ITS COMPOUNDS
|
Industrial Manufacture of Nitric(V) Acid
|
By the end of the
lesson, the learner
should be able to:
Describe catalytic oxidation process Explain raw materials and conditions Draw flow diagram of industrial process Calculate theoretical yields and efficiency |
Teacher exposition: Ostwald process - NH₃ oxidation with Pt-Rh catalyst at 900°C. Flow diagram: Oxidation chamber, cooling, absorption tower. Equations: NH₃ → NO → NO₂ → HNO₃. Economic factors: Catalyst cost, heat recovery.
|
Industrial process flow charts, Catalyst samples, Process condition charts, Efficiency calculation sheets
|
KLB Secondary Chemistry Form 3, Pages 145-147
|
|
| 12 | 1 |
NITROGEN AND ITS COMPOUNDS
|
Reactions of Dilute Nitric(V) Acid with Metals
|
By the end of the
lesson, the learner
should be able to:
Test reactions with various metals Explain absence of hydrogen gas production Observe formation of nitrogen oxides Write equations for metal-acid reactions |
Experiment: Add dilute HNO₃ to Mg, Zn, Cu. Test gases produced with burning splint. Observe that no H₂ is produced (except with Mg in very dilute acid). Explain oxidation of any H₂ formed to water. Record observations and write equations.
|
Various metals (Mg, Zn, Cu), Dilute nitric acid, Test tubes, Gas testing apparatus, Burning splints
|
KLB Secondary Chemistry Form 3, Pages 147-150
|
|
| 12 | 2 |
NITROGEN AND ITS COMPOUNDS
|
Reactions of Dilute Nitric(V) Acid with Metals
|
By the end of the
lesson, the learner
should be able to:
Test reactions with various metals Explain absence of hydrogen gas production Observe formation of nitrogen oxides Write equations for metal-acid reactions |
Experiment: Add dilute HNO₃ to Mg, Zn, Cu. Test gases produced with burning splint. Observe that no H₂ is produced (except with Mg in very dilute acid). Explain oxidation of any H₂ formed to water. Record observations and write equations.
|
Various metals (Mg, Zn, Cu), Dilute nitric acid, Test tubes, Gas testing apparatus, Burning splints
|
KLB Secondary Chemistry Form 3, Pages 147-150
|
|
| 12 | 3-4 |
NITROGEN AND ITS COMPOUNDS
|
Reactions of Dilute Nitric(V) Acid with Carbonates and Hydroxides
|
By the end of the
lesson, the learner
should be able to:
Test reactions with carbonates and hydrogen carbonates Test neutralization with metal hydroxides and oxides Identify products formed Write balanced chemical equations |
Experiments: (a) Add dilute HNO₃ to Na₂CO₃, CaCO₃, ZnCO₃, CuCO₃, NaHCO₃. Test gas evolved with lime water. (b) Neutralize NaOH, CaO, CuO, PbO with dilute HNO₃. Record color changes and write equations.
|
Various carbonates and hydroxides, Dilute nitric acid, Lime water, Universal indicator, Test tubes
|
KLB Secondary Chemistry Form 3, Pages 147-150
|
|
| 12 | 5 |
NITROGEN AND ITS COMPOUNDS
|
Reactions of Concentrated Nitric(V) Acid - Oxidizing Properties
|
By the end of the
lesson, the learner
should be able to:
Demonstrate strong oxidizing properties Test reactions with FeSO₄, sulfur, and copper Observe formation of nitrogen dioxide Explain electron transfer in oxidation |
Experiments: (a) Add concentrated HNO₃ to acidified FeSO₄ - observe color change. (b) Add to sulfur - observe reaction. (c) Add to copper turnings - observe vigorous reaction and brown fumes. Explain oxidizing power and reduction to NO₂.
|
Concentrated nitric acid, Iron(II) sulfate, Sulfur powder, Copper turnings, Test tubes, Fume cupboard access
|
KLB Secondary Chemistry Form 3, Pages 150-151
|
|
| 13-14 |
End of term exams and marking |
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