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A-Level Chemistry ยท Topic 2

Bonding, structure and intermolecular forces: every key term you need (+ practice quiz)

16 flashcard terms for A-Level Chemistry Topic 2, written to match the course framework. Study them here, then drill them as interactive flashcards, or test yourself with the 8-question quiz โ€” free, no account needed.

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Ionic bonding
Electrostatic attraction between oppositely charged ions in a giant lattice. Gives high melting points and conductivity only when molten or aqueous.
Dative covalent bond
A covalent bond where both electrons come from the same atom. Shown by an arrow, as in the ammonium ion.
Metallic bonding
Attraction between a lattice of positive ions and delocalised electrons. Explains conductivity, malleability and high melting points.
Electronegativity
An atom's ability to attract the electron pair in a covalent bond. Increases across a period and decreases down a group.
Permanent dipole
Arises when bonded atoms differ in electronegativity, producing partial charges and a polar molecule if the dipoles do not cancel.
Van der Waals forces
Induced dipole-dipole attractions from instantaneous fluctuations in electron density. Strength rises with molecular size and surface contact.
Hydrogen bonding
Strong dipole attraction where hydrogen is bonded to nitrogen, oxygen or fluorine. Explains water's anomalously high boiling point.
Ice density anomaly
Hydrogen bonds hold water molecules in an open lattice on freezing, so ice is less dense than liquid water and floats.
Electron pair repulsion theory
Electron pairs around a central atom repel to the maximum separation. Lone pairs repel more strongly, closing bond angles by about 2.5 degrees each.
Tetrahedral shape
Four bonding pairs and no lone pairs, giving bond angles of 109.5 degrees โ€” as in methane.
Octahedral shape
Six bonding pairs at 90 degrees to each other, typical of many transition metal complexes.
Giant covalent structure
A lattice of atoms joined by strong covalent bonds throughout, as in diamond and silicon dioxide. Very high melting points, generally insoluble.
Graphite conductivity
Each carbon bonds to three others, leaving one delocalised electron per atom free to move along the layers.
Simple molecular lattice
Discrete molecules held by weak intermolecular forces. Low melting points, because only those forces break on melting โ€” not covalent bonds.
Bond polarity vs molecular polarity
A molecule with polar bonds can still be non-polar overall if the dipoles are symmetrical and cancel, as in carbon dioxide.
Solubility and polarity
Polar solutes dissolve in polar solvents and non-polar in non-polar, because only then can solute-solvent interactions replace those broken.
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