Chemical Bonding
Learn and apply Chemical Bonding in the published Chemistry course sequence.
Learning goals
- show understanding that all chemical bonds are electrostatic in nature and describe: — ionic bond as the electrostatic attraction between oppositely charged ions
- show understanding that all chemical bonds are electrostatic in nature and describe: — covalent bond as the electrostatic attraction between a shared pair of electrons and positively charged nuclei
- show understanding that all chemical bonds are electrostatic in nature and describe: — metallic bond as the electrostatic attraction between a lattice of positive ions and delocalised electrons
- describe, including the use of ‘dot-and-cross’ diagrams, — ionic bonding as in sodium chloride and magnesium oxide
- describe, including the use of ‘dot-and-cross’ diagrams, — covalent bonding as in hydrogen; oxygen; nitrogen; chlorine; hydrogen chloride; carbon dioxide; methane; ethene
- describe, including the use of ‘dot-and-cross’ diagrams, — co-ordinate (dative covalent) bonding, as in formation of the ammonium ion and in the Al2Cl6 molecule
- describe covalent bonding in terms of orbital overlap (limited to s and p orbitals only), giving σ and π bonds (see also Section 9)
- explain the shapes of, and bond angles in, molecules such as BF3 (trigonal planar); CO2 (linear); CH4 (tetrahedral); NH3 (trigonal pyramidal); H2O (bent); SF6 (octahedral) by using the Valence Shell Electron Pair Repulsion theory
- predict the shapes of, and bond angles in, molecules analogous to those specified in (d)
- explain and deduce bond polarity using the concept of electronegativity [quantitative treatment of electronegativity is not required]
- deduce the polarity of a molecule using bond polarity and its molecular shape (analogous to those specified in (d))
- describe the following forces of attraction (electrostatic in nature): — intermolecular forces, based on permanent and induced dipoles, as in liquid and gaseous CHCl3, Br2 and the noble gases
- describe the following forces of attraction (electrostatic in nature): — hydrogen bonding, using ammonia and water as examples of molecules containing –NH and –OH groups
- outline the importance of intermolecular forces to the liquefaction of gases when subjected to high pressure and/or low temperature
- outline the importance of hydrogen bonding to the physical properties of substances, including ice and water
- explain the terms bond energy and bond length for covalent bonds
- compare the reactivities of covalent bonds in terms of bond energy, bond length and bond polarity
- describe, in simple terms, the lattice structure of a crystalline solid which is: — ionic, as in sodium chloride and magnesium oxide
- describe, in simple terms, the lattice structure of a crystalline solid which is: — simple molecular, as in iodine
- describe, in simple terms, the lattice structure of a crystalline solid which is: — giant molecular, as in graphite and diamond
- describe, in simple terms, the lattice structure of a crystalline solid which is: — hydrogen-bonded, as in ice
- describe, in simple terms, the lattice structure of a crystalline solid which is: — metallic, as in copper [the concept of the ‘unit cell’ is not required]
- describe, interpret and/or predict the effect of different types of structure and bonding on the physical properties of substances
- suggest the type of structure and bonding present in a substance from given information
H1 Chemical Bonding learning outcomes
Chemical bonding connects electron behaviour to shape, intermolecular attraction and bulk properties. Build every explanation through particles and structure → electrostatic attraction → observed property.
Follow the seven lessons in order for first learning. For revision, decide whether you need more help with a definition, a shape or polarity decision, or a structure–property explanation. H1 8873 also requires gas-liquefaction reasoning in the intermolecular-forces lesson.
What You’ll Learn
- Describe ionic, covalent, dative covalent and metallic bonding as electrostatic attractions, using dot-and-cross diagrams where required.
- Relate orbital overlap to σ and π bonds, and connect bond energy, bond length and electronegativity to bond polarity.
- Predict molecular shape and bond angle from electron-pair repulsion, including the stronger repulsion of lone pairs.
- Combine bond dipoles with molecular shape to decide whether a molecule is polar.
- Compare London forces, permanent dipole–dipole attractions and hydrogen bonding, then apply them to boiling and gas liquefaction.
- Relate simple molecular, giant ionic, giant covalent and metallic structures to melting point, solubility and electrical conductivity.
Lessons (Recommended Order)
The sequence moves from bonding models to molecular geometry, intermolecular behaviour and finally whole-solid properties.
Ionic and Covalent Bonding Models
Define ionic, covalent and metallic attraction precisely and construct the required dot-and-cross representations.
Dative Bonding and Common Examples
Track electron-pair donation in ammonium ions and aluminium chloride without treating the formed bond as a different species.
Sigma and Pi Bonds: Orbital Overlap
Relate head-on and sideways orbital overlap to sigma and pi bonding.
Bond Energy, Bond Length and Bond Polarity
Connect bond energy, length and electronegativity to bond and molecular polarity.
Molecular Shapes and Bond Angles
Predict required shapes and angles using electron-region repulsion, including lone-pair effects.
Intermolecular Forces and Properties
Compare induced and permanent dipoles, hydrogen bonding, water and ice; H1 also applies these ideas to gas liquefaction.
Solids: Structure and Physical Properties
Explain lattice properties and deduce bonding and structure from combined physical evidence.
Quick Reference
| Idea | Exam-ready reminder |
|---|---|
| Ionic bond | electrostatic attraction between oppositely charged ions in a giant lattice |
| Covalent bond | electrostatic attraction between a shared pair of electrons and the nuclei of the bonded atoms |
| Dative covalent bond | a shared pair of electrons supplied by one atom; after formation, treat it like any other covalent bond |
| Double bond | one σ bond and one π bond |
| Repulsion order | lone pair–lone pair > lone pair–bond pair > bond pair–bond pair |
| Molecular polarity | combine bond polarity with molecular shape; equal bond dipoles can cancel |
| Boiling | overcomes intermolecular attractions, not the covalent bonds within each molecule |
| Structure–property answer | state structure and particles → identify attraction or mobile carrier → explain the observed property |
| Liquefaction | cooling lowers kinetic energy; pressure reduces particle separation |
Name the particles and structure, identify the attraction or mobile charge carrier, then state why that feature produces the observed property.
Practice and Check Your Understanding
Chemical Bonding Topic Practice
Course-specific 8873 questions across bonding, shape, polarity, forces and structures.
Chemical Bonding: Check Your Understanding
Check each link in your explanation, read the feedback, then try a fresh question independently.
Practise
Work through questions with marking and feedback as you learn.
About 10 minutes
Time is up, but your answers have not been submitted yet. Check your connection and try again.
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
History is stored only in this browser.
No completed attempts are saved yet.
Beyond the syllabus: optional enrichment that does not count towards your progress.
Practise after feedback
After a check, practise the skills it showed you need to work on.
About 10 minutes
Time is up, but your answers have not been submitted yet. Check your connection and try again.
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
History is stored only in this browser.
No completed attempts are saved yet.
Beyond the syllabus: optional enrichment that does not count towards your progress.
Check what I know
Start here to see which parts you already know.
About 8 minutes
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Answer 10 short questions. It shows what to work on next and doesn't count towards mastery.
Recent attempts
History is stored only in this browser.
No completed attempts are saved yet.
Beyond the syllabus: optional enrichment that does not count towards your progress.
Check my progress
When you feel ready, answer on your own to show what you can do.
About 10 minutes
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Answer 13 questions. You'll see your score, the answers and explanations at the end. Your result can count towards your course progress.
Recent attempts
History is stored only in this browser.
No completed attempts are saved yet.
Beyond the syllabus: optional enrichment that does not count towards your progress.
Check again
After practising what your progress check showed, check those skills again.
About 10 minutes
Time is up, but your answers have not been submitted yet. Check your connection and try again.
Answer 13 questions. You'll see your score, the answers and explanations at the end. Your result can count towards your course progress.
Recent attempts
History is stored only in this browser.
No completed attempts are saved yet.
Beyond the syllabus: optional enrichment that does not count towards your progress.
Review
Come back later to see whether your learning has lasted.
About 10 minutes
Time is up, but your answers have not been submitted yet. Check your connection and try again.
Answer 13 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.
Recent attempts
History is stored only in this browser.
No completed attempts are saved yet.
Beyond the syllabus: optional enrichment that does not count towards your progress.