Polymers And Organic Chemistry

Learn and apply Polymers And Organic Chemistry in the published Chemistry course sequence.

  • GCE A-Level H1 Chemistry 8873-2027
Learning goals
  • interpret, and use the nomenclature, general formulae and structural formulae (including displayed formulae) of the following classes of compounds: — hydrocarbons (alkanes, alkenes and benzene)
  • interpret, and use the nomenclature, general formulae and structural formulae (including displayed formulae) of the following classes of compounds: — halogenoalkanes
  • interpret, and use the nomenclature, general formulae and structural formulae (including displayed formulae) of the following classes of compounds: — alcohols (including primary, secondary and tertiary)
  • interpret, and use the nomenclature, general formulae and structural formulae (including displayed formulae) of the following classes of compounds: — aldehydes and ketones
  • interpret, and use the nomenclature, general formulae and structural formulae (including displayed formulae) of the following classes of compounds: — carboxylic acids
  • interpret, and use the nomenclature, general formulae and structural formulae (including displayed formulae) of the following classes of compounds: — esters
  • interpret, and use the nomenclature, general formulae and structural formulae (including displayed formulae) of the following classes of compounds: — amines
  • interpret, and use the nomenclature, general formulae and structural formulae (including displayed formulae) of the following classes of compounds: — amides
  • interpret, and use the nomenclature, general formulae and structural formulae (including displayed formulae) of the following classes of compounds: — amino acids
  • interpret, and use the following terminology associated with organic reactions: — functional group
  • interpret, and use the following terminology associated with organic reactions: — addition, substitution, elimination
  • interpret, and use the following terminology associated with organic reactions: — condensation, hydrolysis
  • interpret, and use the following terminology associated with organic reactions: — oxidation and reduction [in equations for organic redox reactions, the symbols [O] and [H] are acceptable]
  • describe constitutional (structural) isomerism
  • describe cis-trans isomerism in alkenes, and explain its origin in terms of restricted rotation due to the presence of π bonds [use of E, Z nomenclature is not required]
  • deduce the possible isomers for an organic molecule of known molecular formula
  • — describe the shapes of the ethane, ethene and benzene molecules
  • — explain the shapes of, and bond angles, in the ethane, ethene and benzene molecules in relation to σ and π carbon-carbon bonds [knowledge of hybridisation is not required]
  • — predict the shapes of, and bond angles in, molecules analogous to those specified in (f)(ii)
  • describe the chemistry of the following classes of compounds: — alkanes (exemplified by ethane) as being generally unreactive except in terms of combustion and substitution by chlorine in the presence of ultraviolet light at room temperature
  • describe the chemistry of the following classes of compounds: — alkenes (exemplified by ethene) in terms of combustion and addition reactions with bromine (in CCl4) and hydrogen (using Ni catalyst)
  • describe the chemistry of the following classes of compounds: — halogenoalkanes (exemplified by bromoethane) in terms of substitution reaction to alcohols (using NaOH(aq), heat) and elimination reactions to alkenes (using NaOH in ethanol and heat)
  • describe the chemistry of the following classes of compounds: — alcohols (exemplified by ethanol) in terms of combustion, oxidation to carboxylic acids (using acidified K2Cr2O7 or acidified KMnO4 and heat) and elimination to alkenes (using concentrated H3PO4 catalyst and heat)
  • describe the chemistry of the following classes of compounds: — aldehydes (exemplified by ethanal) and ketones (exemplified by propanone) in terms of their reduction to primary and secondary alcohols respectively (using LiAlH4, or using H2(g), Ni catalyst) and oxidation of aldehydes to carboxylic acids (using acidified K2Cr2O7 or acidified KMnO4 and heat)
  • describe the chemistry of the following classes of compounds: — carboxylic acids (exemplified by ethanoic acid) in terms of: - reaction with alkalis and carbonates to form salts, - condensation with alcohols to form esters (in the presence of concentrated H2SO4 catalyst), and with amines (exemplified by ethylamine) to form amides (in the presence of dicyclohexylcarbodiimide, DCC) [knowledge of structure of DCC is not required]
  • describe the chemistry of the following classes of compounds: — esters (exemplified by ethyl ethanoate) and amides (exemplified by ethanamide) in terms of hydrolysis with aqueous acid (or aqueous alkali) and heat [detailed conditions involving specific temperature and pressure values are not required]
  • describe the chemistry of the following classes of compounds: — amines (exemplified by ethylamine) with aqueous acid to form salts
  • recognise polymers as macromolecules built up from monomers, with average relative molecular mass of at least 1000 or at least 100 repeat units
  • classify and explain the difference between addition and condensation polymers
  • describe proteins as examples of condensation polymers made up of α-amino acids as monomers, forming peptide (amide) bonds
  • describe the hydrolysis of proteins using aqueous acid (or aqueous alkali) and heat
  • describe the specific bonds or interactions that stabilise the three-dimensional structure of a protein: hydrogen bonding, intermolecular forces and ionic linkages [knowledge of the specific levels of structure of proteins, including a-helix and β-pleated sheet, is not required.]
  • explain denaturation of proteins by extremes of temperature and pH changes, in terms of disruption of the bonds or interactions that hold the three-dimensional structure of the proteins (see also LO 7(i))
  • apply knowledge of the loss and formation of three-dimensional structure to interpret real-world phenomena such as heating of egg whites and addition of vinegar to milk [candidates are not required to identify the proteins in the substances.]
  • classify and explain the difference between thermoplastic (linear, as exemplified by poly(ethene)) and thermosetting (cross-linked, as exemplified by poly(diallyl phthalate)) polymers with reference to structure, bonding and the following properties: — softening behaviour, including capacity to be recycled
  • classify and explain the difference between thermoplastic (linear, as exemplified by poly(ethene)) and thermosetting (cross-linked, as exemplified by poly(diallyl phthalate)) polymers with reference to structure, bonding and the following properties: — rigidity
  • classify and explain the difference between thermoplastic (linear, as exemplified by poly(ethene)) and thermosetting (cross-linked, as exemplified by poly(diallyl phthalate)) polymers with reference to structure, bonding and the following properties: — strength
  • describe and explain the types of structure and bonding in relation to the properties and uses as exemplified by the following: — low density poly(ethene) (LDPE) in plastic bag and high density poly(ethene) (HDPE) in plastic bottles in relation to LDPE being softer and more flexible, and HDPE being harder and stiffer
  • describe and explain the types of structure and bonding in relation to the properties and uses as exemplified by the following: — polyester and polyamide as fabric in relation to polyester (exemplified by poly(ethylene terephthalate) (PET)) as a fabric that is slightly less prone to creasing than polyamide (exemplified by nylon 6,6)
  • describe and explain the types of structure and bonding in relation to the properties and uses as exemplified by the following: — poly(vinyl alcohol) (PVA) as a water-soluble polymer in eye drops and poly(vinyl chloride) (PVC) as a water-resistant polymer used in raincoats
  • describe and explain the types of structure and bonding in relation to the properties and uses as exemplified by the following: — poly(propene) (PP) container instead of one made from poly(ethylene terephthalate) (PET) to store strongly alkaline cleaning solutions due to hydrolysis of PET
  • predict physical properties of polymer from its structure
  • recognise that poly(alkenes) are chemically inert and can therefore be difficult to biodegrade (see also 9(g)(i))
  • recognise that polyesters and polyamides are generally biodegradable by hydrolysis (see also 9(g)(vii))
  • recognise that materials are a finite resource and the importance of recycling plastics, considering the economic, environmental and social factors.

What You’ll Learn

  • Read displayed, structural and skeletal formulae; name the required organic compounds; and distinguish constitutional from cis–trans isomerism.
  • Explain the shapes and bond angles of ethane, ethene and benzene from their σ and π carbon–carbon bonds, and trace cis–trans isomerism to the restricted rotation a π bond causes.
  • Predict the specified reactions of hydrocarbons, halogenoalkanes, alcohols, carbonyl compounds, carboxylic acids and their derivatives from functional group, reagent and condition.
  • Explain addition and condensation polymerisation, protein structure, hydrolysis and denaturation.
  • Connect molecular structure to material properties, selection, recycling and environmental impact.
This is the H1 route

This sequence follows H1 Chemistry (8873). It develops reaction prediction and structure–property reasoning without importing H2 curly-arrow mechanisms, E/Z notation, optical isomerism or the wider H2 functional-group depth. H3 Chemistry (9813) is a separate syllabus, not a successor course.

Prerequisites

Before starting, practise identifying the functional group that changes, counting every carbon atom in a skeletal formula and checking that a proposed product conserves atoms. Those three habits prevent most route-building errors.

Quick Reference

TaskReliable reasoning chainBoundary check
predict an organic productfunctional group → reagent → condition → bond change → productno curly-arrow mechanism unless the question supplies one
test cis–trans isomerismfind C = C → inspect both groups on each alkene carboneach alkene carbon needs two different groups
derive an addition-polymer repeat unitopen C = C → retain substituents → bracket the repeating fragmentno small molecule is eliminated
derive a condensation polymerlocate two functional groups on each monomer → form ester or amide linksshow the small molecule eliminated
explain protein denaturationidentify disrupted intermolecular or ionic interactions → connect to shape and functionpeptide bonds are not normally hydrolysed
select a polymerchain structure → intermolecular forces/cross-links → property → usename the structural evidence
evaluate disposalidentify polymer and contamination → compare reuse, recycling, energy recovery and disposalweigh trade-offs, not slogans

For multi-step organic questions, record each intermediate before choosing the next reagent. For materials questions, make every property claim traceable to a structural feature.

Hub Quiz and Structured Practice

Use practice to choose your next step

Start with the H1 Polymers and Organic Chemistry topic quiz to test recall across all nine lessons. Then sit the timed H1 Paper 2 mock for linked reaction, polymer and evidence questions.

Classify each error as representation, reaction choice, condition, repeat-unit construction, structure–property link or evaluation. Revisit the matching lesson through its topic selector, then answer a fresh question without notes.

Practise

Work through questions with marking and feedback as you learn.

About 10 minutes

Questions are picked at random each time you start. You'll see the answer after each question. It's for practice only and doesn't count towards mastery.

Recent attempts

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Practise after feedback

After a check, practise the skills it showed you need to work on.

About 10 minutes

Questions are picked at random each time you start. You'll see the answer after each question. It's for practice only and doesn't count towards mastery.

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Check what I know

Start here to see which parts you already know.

About 8 minutes

Answer 10 short questions. It shows what to work on next and doesn't count towards mastery.

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No completed attempts are saved yet.

Check my progress

When you feel ready, answer on your own to show what you can do.

About 10 minutes

Answer 10 questions. You'll see your score, the answers and explanations at the end. Your result can count towards your course progress.

Recent attempts

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No completed attempts are saved yet.

Check again

After practising what your progress check showed, check those skills again.

About 10 minutes

Answer 10 questions. You'll see your score, the answers and explanations at the end. Your result can count towards your course progress.

Recent attempts

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No completed attempts are saved yet.

Review

Come back later to see whether your learning has lasted.

About 10 minutes

Answer 10 questions. You'll see your score, the answers and explanations at the end. A scheduled review counts towards your course progress only when it is due.

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Final revision cycle

For a strong final revision cycle:

  1. rebuild the H1 organic reaction map from functional groups rather than memorised page order;
  2. translate one monomer/repeat-unit pair in both directions;
  3. explain one protein or polymer property from molecular structure;
  4. evaluate one sustainability choice using at least two benefits and two limitations.

Then connect the topic to H1 Energetics and H1 Reaction Kinetics when a question asks why a process is feasible, fast enough or industrially appropriate.