Polymers: long molecules and attractions between chains
| English | 中文 | Pinyin |
|---|---|---|
| polymer chain/ˈpɒlɪmə tʃeɪn/ | 聚合物链 | jù hé wù liàn |
| covalent backbone/ˈkəʊvələnt ˈbækbəʊn/ | 共价主链 | gòng jià zhǔ liàn |
What would explain this observation?
- A polymer diagram can show only a few repeat units even though each real molecule contains many. The drawn fragment is not evidence that the material is a giant covalent network in all directions.
- Start with a prediction. State the quantities or features you would compare, then decide what evidence could distinguish two explanations.
Build the model
- Polymers have very large molecules made from repeated units. Atoms within each polymer molecule are joined by strong covalent bonds. Attractions between these large molecules are relatively strong compared with those between typical small molecules, so the polymers in this GCSE model are solids at room temperature. A bracketed repeat unit with n large indicates a long molecule continuing beyond the drawn segment.
- polymer chain 聚合物链: A long polymer molecule containing many repeated units; covalent backbone 共价主链: The sequence of atoms joined by covalent bonds along a polymer molecule.
Which diagram feature supports identifying a polymer?
Distinguish bonds along a chain from attractions between separate chains. The size of polymer molecules gives many opportunities for intermolecular attraction. A simplified chain picture helps explain the solid material, but real polymer properties also depend on chain arrangement and other structural features. Do not replace intermolecular attractions with a claim that every neighbouring chain is necessarily joined by covalent bonds.
Match each technical term to its precise meaning.
Use the definitions to distinguish related quantities and processes.
Choose evidence that can test it
- Distinguish bonds along a chain from attractions between separate chains. The size of polymer molecules gives many opportunities for intermolecular attraction. A simplified chain picture helps explain the solid material, but real polymer properties also depend on chain arrangement and other structural features. Do not replace intermolecular attractions with a claim that every neighbouring chain is necessarily joined by covalent bonds.
- Compare a small molecular diagram, several long chain fragments and a covalent network. Identify repeated units, chain boundaries and the type of connection shown. Use prepared polymer samples or teacher-provided images, not unapproved heating or burning tests. The [–CH₂–CH₂–]ₙ model shows poly(ethene); the two bonds through the brackets show continuation of the chain.
Which two habits make the investigation or model in this case more defensible?
Compare a small molecular diagram, several long chain fragments and a covalent network. Identify repeated units, chain boundaries and the type of connection shown. Use prepared polymer samples or teacher-provided images, not unapproved heating or burning tests. The [–CH₂–CH₂–]ₙ model shows poly(ethene); the two bonds through the brackets show continuation of the chain.
Work from known quantities
- State the known values and their units. Choose the relation because its assumptions fit this case, then rearrange before substitution.
- Known: two model poly(ethene) chains each contain eighty C₂H₄ repeat units. The pictured repeat-unit content is 2×80×2=320 carbon atoms and 2×80×4=640 hydrogen atoms, with chain ends omitted. That large count does not mean carbon atoms in one chain are covalently connected to every atom in the other chain.
Two model chains each contain 25 C₂H₄ repeat units. How many carbon atoms are in the stated units altogether? Use the same sequence: known quantities → model → relation → substitution → unit and interpretation.
Two model chains each contain 25 C₂H₄ repeat units. How many carbon atoms are in the stated units altogether?
The result is 100 atoms. Known: two model poly(ethene) chains each contain eighty C₂H₄ repeat units. The pictured repeat-unit content is 2×80×2=320 carbon atoms and 2×80×4=640 hydrogen atoms, with chain ends omitted. That large count does not mean carbon atoms in one chain are covalently connected to every atom in the other chain.
Check the conclusion and its limits
- The label n is not an atom symbol. Polymer molecules can be long while the material contains many separate chains. A drawn dotted attraction between chains is different from a line representing a covalent backbone bond. This lesson’s simple solid-polymer model does not claim all polymer materials have identical softening temperatures.
- Return to the original observation. Explain what the result supports, which conditions it assumes, and one way to test a competing explanation.
Every polymer chain is necessarily covalently bonded to all neighbouring chains. This claim is false: The label n is not an atom symbol. Polymer molecules can be long while the material contains many separate chains. A drawn dotted attraction between chains is different from a line representing a covalent backbone bond. This lesson’s simple solid-polymer model does not claim all polymer materials have identical softening temperatures.
Polymers: long molecules and attractions between chains: Distinguish bonds along a chain from attractions between separate chains. The size of polymer molecules gives many opportunities for intermolecular attraction. A simplified chain picture helps explain the solid material, but real polymer properties also depend on chain arrangement and other structural features. Do not replace intermolecular attractions with a claim that every neighbouring chain is necessarily joined by covalent bonds.
Every polymer chain is necessarily covalently bonded to all neighbouring chains.
The label n is not an atom symbol. Polymer molecules can be long while the material contains many separate chains. A drawn dotted attraction between chains is different from a line representing a covalent backbone bond. This lesson’s simple solid-polymer model does not claim all polymer materials have identical softening temperatures.
A long polymer molecule containing many repeated units: write the technical term.
polymer chain means A long polymer molecule containing many repeated units.