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| WK | LSN | TOPIC | SUB-TOPIC | OBJECTIVES | T/L ACTIVITIES | T/L AIDS | REFERENCE | REMARKS |
|---|---|---|---|---|---|---|---|---|
| 2 | 1-2 |
GAS LAWS
|
Boyle's Law - Introduction and Experimental Investigation
Boyle's Law - Mathematical Expression and Graphical Representation Boyle's Law - Numerical Problems and Applications Charles's Law - Introduction and Temperature Scales Charles's Law - Experimental Investigation and Mathematical Expression Charles's Law - Numerical Problems and Applications |
By the end of the
lesson, the learner
should be able to:
State Boyle's law Explain Boyle's law using kinetic theory of matter Investigate the relationship between pressure and volume of a fixed mass of gas Plot graphs to illustrate Boyle's law Solve numerical problems involving Boyle's law Convert between different pressure units Apply Boyle's law to real-life situations Calculate volumes and pressures using P₁V₁ = P₂V₂ |
Teacher demonstration: Use bicycle pump to show volume-pressure relationship. Students observe force needed to compress gas. Q/A: Review kinetic theory. Class experiment: Investigate pressure-volume relationship using syringes. Record observations in table format. Discuss observations using kinetic theory.
Worked examples: Demonstrate step-by-step problem solving. Supervised practice: Students solve problems involving pressure and volume calculations. Convert units (mmHg, atm, Pa). Discuss applications in tire inflation, aerosol cans. Assignment: Additional practice problems. |
Bicycle pump, Syringes, Gas jars, Chart showing volume-pressure relationship
Graph papers, Scientific calculators, Chart showing mathematical expressions Scientific calculators, Worked example charts, Unit conversion tables Round-bottomed flask, Narrow glass tube, Colored water, Rubber bung, Hot and cold water baths Glass apparatus, Thermometers, Graph papers, Water baths at different temperatures Scientific calculators, Temperature conversion charts, Application examples |
KLB Secondary Chemistry Form 3, Pages 1-3
KLB Secondary Chemistry Form 3, Pages 4-5 |
|
| 2 | 3 |
GAS LAWS
|
Combined Gas Law and Standard Conditions
Introduction to Diffusion - Experimental Investigation Rates of Diffusion - Comparative Study Graham's Law of Diffusion - Theory and Mathematical Expression |
By the end of the
lesson, the learner
should be able to:
Derive the combined gas law equation Apply PV/T = constant in problem solving Define standard temperature and pressure (s.t.p) Define room temperature and pressure (r.t.p) |
Q/A: Combine Boyle's and Charles's laws. Teacher exposition: Derive P₁V₁/T₁ = P₂V₂/T₂. Define s.t.p (273K, 760mmHg) and r.t.p (298K, 760mmHg). Worked examples: Problems involving changes in all three variables. Supervised practice: Complex gas law calculations.
|
Scientific calculators, Combined law derivation charts, Standard conditions reference table
KMnO₄ crystals, Bromine liquid, Gas jars, Combustion tube, Litmus papers, Stopwatch Glass tube (25cm), Cotton wool, Concentrated NH₃ and HCl, Stopwatch, Ruler, Safety equipment Graham's law charts, Molecular mass tables, Mathematical derivation displays |
KLB Secondary Chemistry Form 3, Pages 12-14
|
|
| 2 | 4 |
GAS LAWS
THE MOLE |
Graham's Law - Numerical Applications and Problem Solving
Relative Mass - Introduction and Experimental Investigation |
By the end of the
lesson, the learner
should be able to:
Solve numerical problems using Graham's law Calculate relative rates of diffusion Determine molecular masses from diffusion data Compare diffusion times for equal volumes of gases |
Worked examples: Calculate relative diffusion rates using √(M₂/M₁). Problems involving time comparisons for equal volumes. Calculate unknown molecular masses from rate data. Supervised practice: Various Graham's law calculations. Real-life applications: gas separation, gas masks.
|
Scientific calculators, Worked example charts, Molecular mass reference tables
Different sized nails ( 5-15cm), Beam balance, Fruits of different masses, Reference charts |
KLB Secondary Chemistry Form 3, Pages 20-22
|
|
| 2 | 5 |
THE MOLE
|
Avogadro's Constant and the Mole Concept
Interconversion of Mass and Moles for Elements |
By the end of the
lesson, the learner
should be able to:
Define Avogadro's constant and its value Explain the concept of a mole as a counting unit Relate molar mass to relative atomic mass Calculate number of atoms in given masses of elements |
Experiment: Determine number of nails with mass equal to relative mass in grams. Teacher exposition: Introduce Avogadro's constant (6.023 × 10²³). Discussion: Mole as counting unit like dozen. Worked examples: Calculate moles from mass and vice versa.
|
Beam balance, Various sized nails, Scientific calculators, Avogadro's constant charts
Scientific calculators, Periodic table, Worked example charts, Formula triangles |
KLB Secondary Chemistry Form 3, Pages 27-30
|
|
| 3 | 1-2 |
THE MOLE
|
Molecules and Moles - Diatomic Elements
Empirical Formula - Experimental Determination Empirical Formula - Reduction Method Empirical Formula - Percentage Composition Method Molecular Formula - Determination from Empirical Formula |
By the end of the
lesson, the learner
should be able to:
Distinguish between atoms and molecules Define relative molecular mass Calculate moles of molecules from given mass Determine number of atoms in molecular compounds Calculate empirical formula from percentage composition Convert percentages to moles Determine simplest whole number ratios Apply method to various compounds |
Discussion: Elements existing as molecules (O₂, H₂, N₂, Cl₂). Teacher exposition: Difference between atomic and molecular mass. Worked examples: Calculate moles of molecular elements. Problem solving: Number of atoms in molecular compounds.
Worked examples: Calculate empirical formula from percentage data. Method: percentage → mass → moles → ratio. Practice problems: Various compounds with different compositions. Discussion: When to multiply ratios to get whole numbers. |
Molecular models, Charts showing diatomic elements, Scientific calculators
Crucible and lid, Magnesium ribbon, Bunsen burner, Beam balance, Tongs, Safety equipment Combustion tube, Porcelain boat, Copper(II) oxide, Laboratory gas, Beam balance, Bunsen burner Scientific calculators, Percentage composition charts, Worked example displays Scientific calculators, Molecular mass charts, Worked example displays |
KLB Secondary Chemistry Form 3, Pages 29-30
KLB Secondary Chemistry Form 3, Pages 37-38 |
|
| 3 | 3 |
THE MOLE
|
Molecular Formula - Combustion Analysis
Concentration and Molarity of Solutions |
By the end of the
lesson, the learner
should be able to:
Determine molecular formula from combustion data Calculate moles of products in combustion Relate product moles to reactant composition Apply combustion analysis to hydrocarbons |
Worked examples: Hydrocarbon combustion producing CO₂ and H₂O. Calculate moles of C and H from product masses. Determine empirical formula, then molecular formula. Practice: Various combustion analysis problems.
|
Scientific calculators, Combustion analysis charts, Molecular models of hydrocarbons
Scientific calculators, Molarity charts, Various salt samples for demonstration |
KLB Secondary Chemistry Form 3, Pages 40-41
|
|
| 3 | 4 |
THE MOLE
|
Preparation of Molar Solutions
Dilution of Solutions Stoichiometry - Experimental Determination of Equations |
By the end of the
lesson, the learner
should be able to:
Describe procedure for preparing molar solutions Use volumetric flasks correctly Calculate masses needed for specific molarities Prepare standard solutions accurately |
Experiment: Prepare 1M, 0.5M, and 0.25M NaOH solutions in different volumes. Use volumetric flasks of 1000cm³, 500cm³, and 250cm³. Calculate required masses. Demonstrate proper dissolution and dilution techniques.
|
Volumetric flasks (250, 500, 1000cm³), Sodium hydroxide pellets, Beam balance, Wash bottles, Beakers
Volumetric flasks, Hydrochloric acid (2M), Measuring cylinders, Pipettes, Safety equipment Iron filings, Copper(II) sulphate solution, Beam balance, Beakers, Filter equipment |
KLB Secondary Chemistry Form 3, Pages 43-46
|
|
| 3 | 5 |
THE MOLE
|
Stoichiometry - Precipitation Reactions
Stoichiometry - Gas Evolution 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
Conical flask, Thistle funnel, Plastic bags, Rubber bands, Sodium carbonate, HCl solution |
KLB Secondary Chemistry Form 3, Pages 53-56
|
|
| 4 | 1-2 |
THE MOLE
|
Volumetric Analysis - Introduction and Apparatus
Titration - Acid-Base Neutralization Titration - Diprotic Acids Standardization of Solutions Back Titration Method |
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 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 |
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.
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. |
Pipettes (10, 20, 25cm³), Burettes (50cm³), Pipette fillers, Conical flasks, Various solutions
Burettes, Pipettes, 0.1M NaOH, 0.1M HCl, Phenolphthalein indicator, Conical flasks Burettes, Pipettes, 0.1M H₂SO₄, 0.1M NaOH, Phenolphthalein, Basicity reference chart Anhydrous Na₂CO₃, Approximately 0.1M HCl, Methyl orange, Volumetric flasks, Analytical balance Metal carbonate sample, 0.5M HCl, 0M NaOH, Phenolphthalein, Conical flasks |
KLB Secondary Chemistry Form 3, Pages 58-59
KLB Secondary Chemistry Form 3, Pages 62-65 |
|
| 4 | 3 |
THE MOLE
|
Redox Titrations - Principles
Redox Titrations - KMnO₄ Standardization |
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
Iron(II) ammonium sulfate, KMnO₄ solution, Dilute H₂SO₄, Pipettes, Burettes |
KLB Secondary Chemistry Form 3, Pages 68-70
|
|
| 4 | 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 |
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
Gas syringes (50cm³), Various gases, Analytical balance, Gas supply apparatus |
KLB Secondary Chemistry Form 3, Pages 72-73
|
|
| 4 | 5 |
THE MOLE
ORGANIC CHEMISTRY I |
Combining Volumes of Gases - Experimental Investigation
Gas Laws and Chemical Equations Introduction to Organic Chemistry and Hydrocarbons |
By the end of the
lesson, the learner
should be able to:
Investigate Gay-Lussac's law experimentally Measure combining volumes of reacting gases Determine simple whole number ratios Write equations from volume relationships |
Experiment: React NH₃ and HCl gases in measured volumes. Observe formation of NH₄Cl solid. Measure residual gas volumes. Determine combining ratios. Apply to other gas reactions.
|
Gas syringes, Dry NH₃ generator, Dry HCl generator, Glass connecting tubes, Clips
Scientific calculators, Gas law charts, Volume ratio examples Carbon models, Hydrocarbon structure charts, Molecular model kits |
KLB Secondary Chemistry Form 3, Pages 75-77
|
|
| 5 | 1-2 |
ORGANIC CHEMISTRY I
|
Sources of Alkanes - Natural Gas, Biogas, and Crude Oil
Fractional Distillation of Crude Oil Cracking of Alkanes - Thermal and Catalytic Methods Alkane Series and Homologous Series Concept |
By the end of the
lesson, the learner
should be able to:
Identify natural sources of alkanes Describe composition of natural gas and biogas Explain crude oil as major source of alkanes Describe biogas digester and its operation Define cracking of alkanes Distinguish between thermal and catalytic cracking Write equations for cracking reactions Explain industrial importance of cracking |
Discussion: Natural gas composition (80% methane). Explanation: Biogas formation from organic waste decomposition. Teacher demonstration: Biogas digester model/diagram. Q/A: Environmental benefits of biogas production.
Teacher exposition: Definition and purpose of cracking. Discussion: Thermal vs catalytic cracking conditions. Worked examples: Cracking equations producing smaller alkanes, alkenes, and hydrogen. Q/A: Industrial applications and hydrogen production. |
Biogas digester model/diagram, Natural gas composition charts, Organic waste samples
Crude oil sample, Boiling tubes, High-temperature thermometer, Sand/porcelain chips, Bunsen burner, Test tubes Cracking process diagrams, Chemical equation charts, Catalyst samples for demonstration Alkane series chart, Molecular formula worksheets, Periodic table |
KLB Secondary Chemistry Form 3, Pages 86-87
KLB Secondary Chemistry Form 3, Pages 89-90 |
|
| 5 | 3 |
ORGANIC CHEMISTRY I
|
Nomenclature of Alkanes - Straight Chain and Branched
Isomerism in Alkanes - Structural Isomers Laboratory Preparation of Methane |
By the end of the
lesson, the learner
should be able to:
Name straight-chain alkanes using IUPAC rules Identify parent chains in branched alkanes Name branched alkanes with substituent groups Apply systematic naming rules correctly |
Teacher demonstration: Step-by-step naming of branched alkanes. Rules application: Longest chain identification, numbering from nearest branch, substituent naming. Practice exercises: Various branched alkane structures. Group work: Name complex branched alkanes.
|
Structural formula charts, IUPAC naming rules poster, Molecular model kits
Molecular model kits, Isomerism charts, Structural formula worksheets Sodium ethanoate, Soda lime, Round-bottomed flask, Gas collection apparatus, Bromine water, Wooden splints |
KLB Secondary Chemistry Form 3, Pages 90-92
|
|
| 5 | 4 |
ORGANIC CHEMISTRY I
|
Laboratory Preparation of Ethane
Physical Properties of Alkanes |
By the end of the
lesson, the learner
should be able to:
Prepare ethane using sodium propanoate and soda lime Compare preparation methods of methane and ethane Test properties of ethane gas Write general equation for alkane preparation |
Experiment: Prepare ethane from sodium propanoate and soda lime. Compare with methane preparation method. Carry out similar tests as for methane. Discussion: General pattern for alkane preparation from sodium alkanoates.
|
Sodium propanoate, Soda lime, Gas collection apparatus, Testing materials
Physical properties data tables, Graph paper, Calculators, Solubility demonstration materials |
KLB Secondary Chemistry Form 3, Pages 94-96
|
|
| 5 | 5 |
ORGANIC CHEMISTRY I
|
Chemical Properties of Alkanes - Combustion and Substitution
Uses of Alkanes in Industry and Daily Life |
By the end of the
lesson, the learner
should be able to:
Write equations for complete and incomplete combustion Explain substitution reactions with halogens Describe conditions for halogenation reactions Name halogenated alkane products |
Worked examples: Combustion equations for various alkanes. Teacher demonstration: Methane + bromine in sunlight (or simulation). Discussion: Free radical mechanism in substitution. Practice: Write equations for chlorination of methane.
|
Molecular models, Halogenation reaction charts, Chemical equation worksheets
Industrial application charts, Product samples, Environmental impact materials |
KLB Secondary Chemistry Form 3, Pages 97-98
|
|
| 6 | 1-2 |
ORGANIC CHEMISTRY I
|
Introduction to Alkenes and Functional Groups
Nomenclature of Alkenes Isomerism in Alkenes - Branching and Positional Laboratory Preparation of Ethene Alternative Preparation of Ethene and Physical Properties |
By the end of the
lesson, the learner
should be able to:
Define alkenes and unsaturation Identify the C=C functional group Write general formula for alkenes (CₙH₂ₙ) Compare alkenes with alkanes Prepare ethene by dehydration of ethanol Describe role of concentrated sulfuric acid Set up apparatus safely for ethene preparation Test physical and chemical properties of ethene |
Teacher exposition: Alkenes definition and unsaturation concept. Introduction: C=C double bond as functional group. Table study: First 6 members of alkene series. Comparison: Alkenes vs alkanes - formulas and structures.
Experiment: Dehydration of ethanol using concentrated H₂SO₄ at 170°C. Use sand bath for controlled heating. Pass gas through NaOH to remove impurities. Tests: Bromine water, acidified KMnO₄, combustion. Safety precautions with concentrated acid. |
Alkene series charts, Molecular models showing double bonds, Functional group posters
IUPAC naming charts for alkenes, Structural formula worksheets, Molecular model kits Molecular model kits, Isomerism worksheets, Geometric isomer models Ethanol, Concentrated H₂SO₄, Round-bottomed flask, Sand bath, Gas collection apparatus, Testing solutions Aluminum oxide catalyst, Glass wool, Alternative apparatus setup, Physical properties charts |
KLB Secondary Chemistry Form 3, Pages 100-101
KLB Secondary Chemistry Form 3, Pages 102-104 |
|
| 6 | 3 |
ORGANIC CHEMISTRY I
|
Chemical Properties of Alkenes - Addition Reactions
Oxidation Reactions of Alkenes and Polymerization |
By the end of the
lesson, the learner
should be able to:
Explain addition reactions due to C=C double bond Write equations for halogenation of alkenes Describe hydrogenation and hydrohalogenation Explain addition mechanism |
Teacher exposition: Addition reactions definition and mechanism. Worked examples: Ethene + Cl₂, Br₂, HBr, H₂. Discussion: Markovnikov's rule for unsymmetrical addition. Practice: Various addition reaction equations.
|
Addition reaction charts, Mechanism diagrams, Chemical equation worksheets
Oxidizing agents for demonstration, Polymer samples, Polymerization charts, Monomer-polymer models |
KLB Secondary Chemistry Form 3, Pages 105-107
|
|
| 6 | 4 |
ORGANIC CHEMISTRY I
|
Tests for Alkenes and Uses
Introduction to Alkynes and Triple Bond Nomenclature and Isomerism in Alkynes |
By the end of the
lesson, the learner
should be able to:
Perform chemical tests to identify alkenes Use bromine water and KMnO₄ as test reagents List industrial and domestic uses of alkenes Explain importance in plastic manufacture |
Practical session: Test known alkenes with bromine water and acidified KMnO₄. Observe rapid decolorization compared to alkanes. Discussion: Uses in plastics, ethanol production, fruit ripening, detergents. Assignment: Research alkene applications.
|
Test alkenes, Bromine water, Acidified KMnO₄, Plastic samples, Uses reference charts
Alkyne series charts, Triple bond molecular models, Unsaturation comparison charts IUPAC naming rules for alkynes, Structural formula worksheets, Molecular model kits |
KLB Secondary Chemistry Form 3, Pages 108-109
|
|
| 6 | 5 |
ORGANIC CHEMISTRY I
|
Laboratory Preparation of Ethyne
Physical and Chemical Properties of Alkynes |
By the end of the
lesson, the learner
should be able to:
Prepare ethyne from calcium carbide and water Set up gas collection apparatus safely Test physical and chemical properties of ethyne Write equation for ethyne preparation |
Experiment: Calcium carbide + water reaction. Use sand layer for heat absorption. Collect ethyne over water. Tests: Color, smell, combustion, bromine water, acidified KMnO₄. Safety: Dry apparatus, controlled water addition.
|
Calcium carbide, Sand, Flat-bottomed flask, Dropping funnel, Gas collection apparatus, Testing solutions
Physical properties charts, Comparison tables, Combustion equation examples |
KLB Secondary Chemistry Form 3, Pages 111-112
|
|
| 7 | 1-2 |
ORGANIC CHEMISTRY I
NITROGEN AND ITS COMPOUNDS |
Addition Reactions of Alkynes and Chemical Tests
Uses of Alkynes and Industrial Applications Introduction to Nitrogen - Properties and Occurrence 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:
Write equations for halogenation of alkynes Describe hydrogenation and hydrohalogenation Compare reaction rates: alkynes vs alkenes Perform chemical tests for alkynes 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 |
Worked examples: Two-step addition reactions of ethyne with Br₂, Cl₂, H₂. Discussion: Faster reaction rates in alkynes compared to alkenes. Practical session: Test alkynes with oxidizing agents. Comparison: Rate of decolorization vs alkenes.
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. |
Addition reaction charts, Chemical equation worksheets, Test solutions, Stopwatch for rate comparison
Industrial application charts, Welding equipment demonstration/video, Synthetic fiber samples Periodic table charts, Atmospheric composition diagrams, Molecular models showing N≡N triple bond 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 113-115
KLB Secondary Chemistry Form 3, Pages 119 |
|
| 7 | 3 |
NITROGEN AND ITS COMPOUNDS
|
Properties and Uses of Nitrogen Gas
Nitrogen(I) Oxide - Preparation and Properties |
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
Ammonium nitrate, Test tubes, Gas collection apparatus, Copper turnings, Sulfur, Glowing splints |
KLB Secondary Chemistry Form 3, Pages 121-123
|
|
| 7 | 4 |
NITROGEN AND ITS COMPOUNDS
|
Nitrogen(II) Oxide - Preparation and Properties
Nitrogen(IV) 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
Copper turnings, Concentrated nitric acid, Lead(II) nitrate, Gas collection apparatus, U-tube with ice, Testing materials |
KLB Secondary Chemistry Form 3, Pages 125-127
|
|
| 7 | 5 |
NITROGEN AND ITS COMPOUNDS
|
Comparison of Nitrogen Oxides and Environmental Effects
Laboratory Preparation of Ammonia Preparation of Aqueous Ammonia and Solubility |
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
Calcium hydroxide, Ammonium chloride, Round-bottomed flask, Calcium oxide, HCl solution, Glass rod, Litmus paper Ammonia generation apparatus, Funnel, Universal indicator, Fountain apparatus, pH meter/paper |
KLB Secondary Chemistry Form 3, Pages 123-131
|
|
| 8 |
Midtermbreak,1 Exams |
|||||||
| 9 | 1-2 |
NITROGEN AND ITS COMPOUNDS
|
Reactions of Aqueous Ammonia with Metal Ions
Chemical Properties of Ammonia - Reactions with Acids and Combustion Industrial Manufacture of Ammonia - The Haber Process Uses of Ammonia and Introduction to Nitrogenous Fertilizers |
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 Describe raw materials and their sources Explain optimum conditions for ammonia synthesis Draw flow diagram of Haber process Explain economic considerations and catalyst use |
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⁺.
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. |
Various metal salt solutions, Aqueous ammonia, Test tubes, Droppers, Observation recording tables
Various dilute acids, Methyl orange, Oxygen supply, Platinum wire, Copper(II) oxide, Combustion apparatus, U-tube for collection Haber process flow charts, Industrial diagrams, Catalyst samples, Economic analysis sheets Fertilizer samples, Percentage calculation worksheets, Use application charts, Calculator |
KLB Secondary Chemistry Form 3, Pages 136-138
KLB Secondary Chemistry Form 3, Pages 140-141 |
|
| 9 | 3 |
NITROGEN AND ITS COMPOUNDS
|
Nitrogenous Fertilizers - Types and Calculations
Laboratory Preparation of Nitric(V) Acid Industrial Manufacture 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 |
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
Potassium nitrate, Concentrated sulfuric acid, All-glass apparatus, Condenser, Retort stand, Safety equipment Industrial process flow charts, Catalyst samples, Process condition charts, Efficiency calculation sheets |
KLB Secondary Chemistry Form 3, Pages 141-144
|
|
| 9 | 4 |
NITROGEN AND ITS COMPOUNDS
|
Reactions of Dilute Nitric(V) Acid with Metals
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 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
Various carbonates and hydroxides, Dilute nitric acid, Lime water, Universal indicator, Test tubes |
KLB Secondary Chemistry Form 3, Pages 147-150
|
|
| 9 | 5 |
NITROGEN AND ITS COMPOUNDS
|
Reactions of Concentrated Nitric(V) Acid - Oxidizing Properties
Uses of Nitric(V) Acid and Introduction to Nitrates |
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
Industrial use charts, Nitrate salt samples, Preparation method diagrams, Safety data sheets |
KLB Secondary Chemistry Form 3, Pages 150-151
|
|
| 10 | 1-2 |
NITROGEN AND ITS COMPOUNDS
|
Action of Heat on Nitrates - Decomposition Patterns
Test for Nitrates - Brown Ring Test Environmental Pollution by Nitrogen Compounds Pollution Control and Environmental Solutions Comprehensive Problem Solving - Nitrogen Chemistry |
By the end of the
lesson, the learner
should be able to:
Test thermal decomposition of different nitrates Classify decomposition patterns based on metal reactivity Identify products formed on heating Write equations for decomposition reactions Analyze methods to reduce nitrogen pollution Design pollution control strategies Evaluate effectiveness of current measures Propose new solutions for environmental protection |
Experiment: Heat KNO₃, NaNO₃, Zn(NO₃)₂, Cu(NO₃)₂, NH₄NO₃ separately. Test gases with glowing splint. Observe residues. Classification: Group I nitrates → nitrite + O₂; Group II → oxide + NO₂ + O₂; NH₄NO₃ → N₂O + H₂O.
Discussion and analysis: Catalytic converters in vehicles, sewage treatment, lime addition to soils/lakes, proper fertilizer application, industrial gas recycling. Group activity: Design pollution control strategy for local area. Evaluation of current measures. |
Various nitrate salts, Test tubes, Bunsen burner, Gas collection apparatus, Glowing splints, Observation recording sheets
Sodium nitrate, Fresh FeSO₄ solution, Concentrated H₂SO₄, Copper turnings, Test tubes, Unknown nitrate samples Environmental pollution charts, Acid rain effect photos, Vehicle emission diagrams, Control measure illustrations Case studies, Pollution control technology information, Group activity worksheets, Local environmental data Scientific calculators, Comprehensive problem sets, Industrial data sheets, Experimental result tables |
KLB Secondary Chemistry Form 3, Pages 151-153
KLB Secondary Chemistry Form 3, Pages 154-157 |
|
| 10 | 3 |
NITROGEN AND ITS COMPOUNDS
|
Laboratory Practical Assessment - Nitrogen Compounds
Industrial Applications and Economic Importance |
By the end of the
lesson, the learner
should be able to:
Demonstrate practical skills in nitrogen chemistry Perform qualitative analysis of nitrogen compounds Apply safety procedures correctly Interpret experimental observations accurately |
Practical examination: Identify unknown nitrogen compounds using chemical tests. Prepare specified nitrogen compounds. Demonstrate proper laboratory techniques. Safety assessment. Written report on observations and conclusions.
|
Unknown nitrogen compounds, All laboratory chemicals and apparatus used in chapter, Safety equipment, Assessment rubrics
Economic data sheets, Industry case studies, Agricultural statistics, Cost-benefit analysis templates |
KLB Secondary Chemistry Form 3, Pages 119-157
|
|
| 10 | 4 |
NITROGEN AND ITS COMPOUNDS
SULPHUR AND ITS COMPOUNDS SULPHUR AND ITS COMPOUNDS SULPHUR AND ITS COMPOUNDS SULPHUR AND ITS COMPOUNDS |
Chapter Review and Integration
Extraction of Sulphur Allotropes of Sulphur Physical Properties of Sulphur - Solubility Physical Properties of Sulphur - Effect of Heat |
By the end of the
lesson, the learner
should be able to:
Synthesize all nitrogen chemistry concepts Compare preparation methods for nitrogen compounds Relate structure to properties and reactivity Connect laboratory and industrial processes |
Comprehensive review: Concept mapping of all nitrogen compounds and their relationships. Comparison tables: Preparation methods, properties, uses. Flow chart: Nitrogen cycle in industry and environment. Integration exercises connecting all topics.
|
Concept mapping materials, Comparison charts, Flow diagram templates, Integration worksheets
Charts showing periodic table, Diagram of Frasch process, Samples of sulphur compounds (pyrites, gypsum) Powdered sulphur, Carbon(IV) sulphide, Evaporating dish, Glass rod, Hand lens, Boiling tubes, Filter paper, Beakers Powdered sulphur, Water, Benzene, Methylbenzene, Carbon(IV) sulphide, Test tubes, Charts showing molecular structure Powdered sulphur, Test tubes, Bunsen burner, Cold surface for condensation, Thermometer, Safety equipment |
KLB Secondary Chemistry Form 3, Pages 119-157
|
|
| 10 | 5 |
SULPHUR AND ITS COMPOUNDS
|
Chemical Properties of Sulphur - Reactions with Elements
Chemical Properties of Sulphur - Reactions with Acids Uses of Sulphur and Introduction to Oxides Preparation of Sulphur(IV) Oxide Physical and Chemical Properties of Sulphur(IV) Oxide |
By the end of the
lesson, the learner
should be able to:
Investigate the reaction of sulphur with oxygen. Investigate the reaction of sulphur with metals. Write balanced equations for reactions of sulphur. Explain the formation of sulphides. |
Practical work: Experiment 3(a) - Burning sulphur in oxygen using deflagrating spoon. Testing with moist litmus paper. Practical work: Heating mixtures of sulphur with iron powder and copper powder. Observation: Exothermic reactions and color changes. Writing equations: Fe + S → FeS, 2Cu + S → Cu2S.
|
Sulphur, Iron powder, Copper powder, Oxygen gas jar, Deflagrating spoon, Moist litmus papers, Test tubes, Bunsen burner
Sulphur powder, Concentrated HNO3, Concentrated H2SO4, Concentrated HCl, Barium chloride solution, Test tubes, Fume cupboard access Charts showing uses of sulphur, Samples of vulcanized rubber, Fungicides, Industrial photographs, Textbook diagrams Sodium sulphite, Dilute HCl, Round-bottomed flask, Delivery tubes, Gas jars, Concentrated H2SO4 for drying, Acidified potassium chromate(VI) paper SO2 gas from previous preparation, Litmus papers, Universal indicator, 0.1M NaOH solution, Water, Test tubes, Safety equipment |
KLB Secondary Chemistry Form 4, Pages 165-167
|
|
| 11 | 1-2 |
SULPHUR AND ITS COMPOUNDS
|
Bleaching Action of Sulphur(IV) Oxide
Reducing Action of Sulphur(IV) Oxide Oxidising Action of Sulphur(IV) Oxide Test for Sulphate and Sulphite Ions & Uses of SO2 |
By the end of the
lesson, the learner
should be able to:
Investigate the bleaching properties of SO Compare SO2 bleaching with chlorine bleaching. Explain the mechanism of SO2 bleaching. Relate bleaching to paper manufacturing. Investigate SO2 as an oxidizing agent. Demonstrate reaction with stronger reducing agents. Explain the dual nature of SO Write equations for oxidation reactions by SO |
Practical work: Experiment 6 - Placing colored flower petals in SO2 gas. Observation: Temporary bleaching effect. Discussion: SO2 + H2O → H2SO3, reduction of organic dyes. Comparison: Permanent vs temporary bleaching. Application: Paper industry bleaching processes.
Practical work: Experiment 8 - Lowering burning magnesium into SO2 gas. Observation: Continued burning, white fumes of MgO, yellow specks of sulphur. Reaction with hydrogen sulphide gas (demonstration). Discussion: SO2 decomposition providing oxygen. Writing equations: 2Mg + SO2 → 2MgO + S. |
Colored flower petals (red/blue), SO2 gas jars, Hand lens for observation, Charts comparing bleaching agents
SO2 gas, Acidified K2Cr2O7, Acidified KMnO4, Bromine water, Iron(III) chloride solution, Concentrated HNO3, Test tubes SO2 gas jars, Magnesium ribbon, Deflagrating spoon, Hydrogen sulphide gas, Water droppers, Safety equipment Sodium sulphate solution, Sodium sulphite solution, Barium chloride solution, Dilute HCl, Test tubes, Charts showing industrial uses |
KLB Secondary Chemistry Form 4, Pages 173
KLB Secondary Chemistry Form 4, Pages 176-177 |
|
| 11 | 3 |
SULPHUR AND ITS COMPOUNDS
|
Large-scale Manufacture of Sulphuric(VI) Acid - Contact Process
Properties of Concentrated Sulphuric(VI) Acid - Dehydrating Properties Properties of Concentrated Sulphuric(VI) Acid - Oxidizing Properties |
By the end of the
lesson, the learner
should be able to:
Describe the contact process for manufacturing H2SO Identify raw materials and conditions used. Explain the role of catalyst in the process. Draw flow diagrams of the contact process. |
Study of flow diagram: Figure 12 - Contact process. Discussion: Raw materials (sulphur, air), burning sulphur to SO Purification: Electrostatic precipitation, drying with H2SO Catalytic chamber: V2O5 catalyst at 450°C, 2-3 atmospheres. Formation of oleum: H2S2O7. Safety and environmental considerations.
|
Flow chart diagrams, Charts showing industrial plant, Samples of catalyst (V2O5), Photographs of Thika chemical plant, Calculator for percentage calculations
Concentrated H2SO4, Copper(II) sulphate crystals, Sucrose, Ethanol, KMnO4 solution, Test tubes, Beakers, Safety equipment, Fume cupboard Copper foil, Zinc granules, Charcoal powder, Concentrated H2SO4, Acidified K2Cr2O7 paper, Lime water, Test tubes, Bunsen burner |
KLB Secondary Chemistry Form 4, Pages 179-181
|
|
| 11 | 4 |
SULPHUR AND ITS COMPOUNDS
|
Properties of Concentrated Sulphuric(VI) Acid - Displacement Reactions
Reactions of Dilute Sulphuric(VI) Acid - With Metals |
By the end of the
lesson, the learner
should be able to:
Investigate acid displacement reactions. Demonstrate formation of volatile acids. Test the evolved gases for identification. Write equations for displacement reactions. |
Practical work: Experiment 10 (continued) - Reactions with potassium nitrate and sodium chloride. Testing evolved gases with moist blue litmus, concentrated ammonia. Observations: Brown fumes (NO2), white fumes (HCl). Discussion: Less volatile acid displacing more volatile acids. Industrial applications.
|
Potassium nitrate crystals, Sodium chloride crystals, Concentrated H2SO4, Moist blue litmus paper, Concentrated ammonia, Test tubes, Bunsen burner
Magnesium ribbon, Zinc granules, Copper turnings, Dilute H2SO4, Test tubes, Burning splints, Reactivity series chart |
KLB Secondary Chemistry Form 4, Pages 184
|
|
| 11 | 5 |
SULPHUR AND ITS COMPOUNDS
|
Reactions of Dilute Sulphuric(VI) Acid - With Carbonates
Reactions of Dilute Sulphuric(VI) Acid - With Oxides and Hydroxides |
By the end of the
lesson, the learner
should be able to:
Investigate reactions of dilute H2SO4 with carbonates. Test for carbon dioxide evolution. Explain why some reactions stop prematurely. Compare reactions of different metal carbonates. |
Practical work: Experiment 12 - Reactions with sodium carbonate, zinc carbonate, calcium carbonate, copper(II) carbonate. Testing evolved gas with lime water. Recording observations in Table 1 Discussion: Formation of insoluble calcium sulphate coating. Effervescence and CO2 identification.
|
Sodium carbonate, Zinc carbonate, Calcium carbonate, Copper(II) carbonate, Dilute H2SO4, Lime water, Test tubes
Metal oxides (MgO, ZnO, CuO, PbO), NaOH solution, 2M H2SO4, Test tubes, Bunsen burner for warming |
KLB Secondary Chemistry Form 4, Pages 185-186
|
|
| 12 | 1-2 |
SULPHUR AND ITS COMPOUNDS
CHLORINE AND ITS COMPOUNDS |
Hydrogen Sulphide - Preparation and Physical Properties
Chemical Properties of Hydrogen Sulphide Pollution Effects and Summary Introduction and Preparation of Chlorine Physical Properties of Chlorine Chemical Properties of Chlorine - Reaction with Water Chemical Properties of Chlorine - Reaction with Metals |
By the end of the
lesson, the learner
should be able to:
Describe laboratory preparation of hydrogen sulphide. Set up apparatus for H2S preparation. State the physical properties of H2S. Explain the toxicity and safety precautions. Define chlorine and state its position in the periodic table. Describe the occurrence of chlorine in nature. Describe laboratory preparation of chlorine gas. Write balanced equations for chlorine preparation. |
Demonstration: Figure 13 apparatus setup for H2S preparation. Reaction: FeS + 2HCl → FeCl2 + H2S. Collection over warm water due to solubility. Drying: Using anhydrous CaCl2 (not H2SO4). Properties: Colorless, rotten egg smell, poisonous, denser than air. Safety precautions in handling.
Q/A: Review Group VII elements and electron configuration of chlorine ( 8.7). Discussion: Occurrence as sodium chloride in sea water and rock salt. Practical work: Experiment 6.1 - Preparation using MnO2 + concentrated HCl. Setup apparatus as in Figure 6. Safety precautions for handling chlorine gas. |
Iron(II) sulphide, Dilute HCl, Apparatus for gas generation, Anhydrous CaCl2, Gas jars, Safety equipment, Fume cupboard
H2S gas, Bromine water, Iron(III) chloride, KMnO4, K2Cr2O7, Metal salt solutions, Test tubes, Droppers Charts showing pollution effects, Photographs of acid rain damage, Environmental data, Summary charts of reactions, Industrial pollution control diagrams Manganese(IV) oxide, Concentrated HCl, Gas collection apparatus, Water, Concentrated H2SO4, Blue litmus paper, Gas jars Preserved chlorine gas, Water trough, Gas jars, Observation tables, Safety equipment Chlorine gas, Distilled water, Blue and red litmus papers, Colored flower petals, Gas jars, Boiling tubes Magnesium ribbon, Iron wire, Chlorine gas, Deflagrating spoon, Combustion tube, Anhydrous CaCl2, Gas jars |
KLB Secondary Chemistry Form 4, Pages 187-188
KLB Secondary Chemistry Form 4, Pages 195-196 |
|
| 12 | 3 |
CHLORINE AND ITS COMPOUNDS
|
Chemical Properties of Chlorine - Reaction with Non-metals
Oxidising Properties of Chlorine Reaction of Chlorine with Alkali Solutions Oxidising Properties - Displacement Reactions Test for Chloride Ions |
By the end of the
lesson, the learner
should be able to:
Investigate reactions of chlorine with non-metals. Demonstrate reaction with phosphorus and hydrogen. Write equations for non-metal chloride formation. Explain the vigorous nature of these reactions. |
Practical work: Experiment 6.5 - Warming red phosphorus and lowering into chlorine. Demonstration: Burning hydrogen jet in chlorine. Observations: White fumes of phosphorus chlorides, hydrogen chloride formation. Writing equations: P4 + 6Cl2 → 4PCl3, H2 + Cl2 → 2HCl. Discussion: Formation of covalent chlorides.
|
Red phosphorus, Hydrogen gas, Chlorine gas, Deflagrating spoon, Gas jars, Bunsen burner, Safety equipment
Sodium sulphite solution, Barium nitrate, Lead nitrate, Hydrogen sulphide gas, Aqueous ammonia, Chlorine gas, Test tubes Sodium hydroxide solutions (dilute cold, concentrated hot), Chlorine gas, Beakers, Bunsen burner, Thermometer Potassium bromide solution, Potassium iodide solution, Chlorine gas, Test tubes, Observation charts Sodium chloride, Concentrated H2SO4, Lead(II) nitrate solution, Aqueous ammonia, Glass rod, Test tubes, Bunsen burner |
KLB Secondary Chemistry Form 4, Pages 201
|
|
| 12 | 4 |
CHLORINE AND ITS COMPOUNDS
|
Uses of Chlorine and its Compounds
Hydrogen Chloride - Laboratory Preparation |
By the end of the
lesson, the learner
should be able to:
List the industrial uses of chlorine. Explain the use of chlorine in water treatment. Describe manufacture of chlorine compounds. Relate properties to uses of chlorine. |
Discussion: Industrial applications - HCl manufacture, bleaching agents for cotton and paper industries, water treatment and sewage plants. Study Figure 6.3(a) - bleaching chemicals. Applications: Chloroform (anaesthetic), solvents (trichloroethane), CFCs, PVC plastics, pesticides (DDT), germicides and fungicides. Q/A: Relating chemical properties to practical applications.
|
Charts showing industrial uses, Samples of bleaching agents, PVC materials, Photographs of water treatment plants, Industrial application diagrams
Rock salt (NaCl), Concentrated H2SO4, Gas collection apparatus, Ammonia solution, Litmus papers, Water trough, Gas jars |
KLB Secondary Chemistry Form 4, Pages 205-207
|
|
| 12 | 5 |
CHLORINE AND ITS COMPOUNDS
|
Chemical Properties of Hydrogen Chloride
Large-scale Manufacture of Hydrochloric Acid Uses of Hydrochloric Acid Environmental Pollution by Chlorine Compounds and Summary |
By the end of the
lesson, the learner
should be able to:
Prepare aqueous hydrogen chloride (hydrochloric acid). Investigate acid properties of HCl solution. Test reactions with metals, bases, and carbonates. Compare HCl in water vs organic solvents. |
Practical work: Experiment 6.11 - Preparation of aqueous HCl using apparatus in Figure 6. Testing with metals (Zn, Fe, Mg, Cu), NaOH, carbonates, lead nitrate. Recording observations in Table 6.7. Testing HCl in methylbenzene - no acid properties. Discussion: Ionization in water vs molecular existence in organic solvents. Writing equations for acid reactions.
|
Distilled water, Filter funnel, Metals (Zn, Fe, Mg, Cu), NaOH solution, Carbonates, Lead nitrate, Methylbenzene, Indicators
Flow diagrams, Industrial photographs, Glass beads samples, Charts showing electrolysis processes, Safety equipment models Samples of rusted and cleaned metals, Photographic materials, pH control charts, Industrial application videos, Water treatment diagrams Environmental pollution charts, Ozone layer diagrams, DDT restriction documents, PVC waste samples, NEMA guidelines, Summary charts of reactions |
KLB Secondary Chemistry Form 4, Pages 208-211
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