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Bond Energy and Bond Length

A concise Cambridge International AS Level Chemistry revision guide to 3.4.3: the definitions of bond energy and bond length, how the two are linked through bond order, and how to use bond energy values and bond lengths to compare the reactivity of covalent molecules.

AS Level
Topic 3: Chemical Bonding
9701 Papers 1 and 2
Dr. Mohammed Al-Fatah

Written by:
Dr. Mohammed Al-Fatah

Chemistry specialist revision notes for A Level Chemistry.

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Before you start

GCSE Recap: Breaking and Making Bonds

Before you start, check the GCSE rule about the energy needed to break bonds and the energy given out when bonds form.

1

Two Definitions to Learn Word for Word

Cambridge sets both of these as definitions, so learn the exact wording.

TermDefinitionUnits
Bond energyThe energy required to break one mole of a particular covalent bond in the gaseous statekJ mol-1
Bond lengthThe internuclear distance between two covalently bonded atoms, i.e. the distance between the centres of the two nucleinm or pm

Bond energy is always endothermic (a positive value) because energy must be supplied to pull the shared pair away from the two nuclei. For bonds that appear in many different molecules, such as C-H, the data-book value is an average across many compounds; diatomic molecules have an exact value.

Exam sentence: Bond energy is the energy required to break one mole of a particular covalent bond in the gaseous state; bond length is the internuclear distance of two covalently bonded atoms.

Check your understanding

Quick Check: Apply the Definition

Pick the one equation that matches every part of the bond energy definition.

2

Shorter Bonds Are Stronger Bonds

The two quantities move in opposite directions. When more electron density sits between two nuclei, the nuclei are pulled closer together (a shorter bond) and more energy is needed to separate them (a larger bond energy). Two patterns show this clearly.

BondBond length / nmBond energy / kJ mol-1Comment
C-C0.154347One shared pair
C=C0.134612Two shared pairs pull the nuclei closer
C≡C0.120838Three shared pairs: shortest and strongest
Cl-Cl0.199243Small atoms, short bond
Br-Br0.228193Larger atoms, longer and weaker
I-I0.267151Largest atoms, longest and weakest
  • Bond order: between the same two atoms, single bonds are longest and weakest and triple bonds are shortest and strongest.
  • Atomic size: down a group the atoms get bigger, the bonding pair is further from each nucleus, and the bond becomes longer and weaker. Fluorine is the exception: F-F (158 kJ mol-1) is weaker than Cl-Cl because the very short bond brings the lone pairs on the two fluorine atoms close enough to repel strongly.

As bond length increases, bond energy decreases: short bonds are strong bonds.

Key idea: More shared electron pairs, or smaller atoms, mean a shorter and stronger bond. Bond length up, bond energy down.

Check your understanding

Quick Check: Rank Four Bonds by Length

Use the bond energies given to put the four bonds in order of bond length, shortest at the top.

3

Using Bond Energies to Compare Reactivity

A reaction usually begins with a bond breaking, so the molecule with the weaker bond tends to react more readily and at a lower temperature. Bond energies let you predict and explain this.

ComparisonBond energies / kJ mol-1Prediction
N2 against O2N≡N 945, O=O 498Oxygen is far more reactive; the very strong triple bond makes nitrogen almost inert at room temperature
Chloroalkane against iodoalkaneC-Cl 340, C-I 228The iodoalkane is hydrolysed faster because the weaker C-I bond breaks more easily
Hydrogen halidesH-Cl 431, H-Br 366, H-I 299Thermal stability falls from HCl to HI; HI decomposes on gentle heating

Bond energy is not the only factor. Bond polarity and the strength of the bonds formed also matter, so use bond energy to explain the trend you are asked about rather than as a universal rule.

Exam focus: When comparing reactivity, name the bond that breaks, quote both bond energies, and say that the bond with the smaller bond energy breaks more easily.

Check your understanding

Quick Check: The Hydrogen Halides

Drag the words and numbers into place to build the comparison from H-F to H-I.

Check your understanding

Quick Check: Explain Which Bond Breaks

Write a short explanation, then compare it with the mark points and the model answer.

4

Common Exam Mistakes

  • Leaving “gaseous” out of the bond energy definition, or writing “one bond” instead of “one mole of bonds”.
  • Defining bond length as the distance between the atoms’ edges. It is the distance between the two nuclei.
  • Assuming that a double bond is exactly twice as strong as a single bond. C=C is 612 kJ mol-1, not 694.
  • Saying fluorine has the strongest halogen-halogen bond because it is the smallest. The F-F bond is unusually weak because of lone-pair repulsion.
  • Explaining reactivity by bond polarity alone when the question gives bond energies. Use the data you are given.

Exam sentence: Short bond, high bond energy, low reactivity: the molecule with the weaker bond breaks first.

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Copyright and author footprint: This OLS revision page was written for Online Learning System by Dr. Mohammed Al-Fatah. It is designed for A Level Chemistry revision and should not be copied or redistributed without permission.