STUDENT SPACE · TOPIC 2

Bond energies

Calculate enthalpy changes from bonds broken and bonds formed.

The essentials

  • Breaking bonds absorbs energy. Making bonds releases energy.
  • Calculate the energy needed to break bonds and subtract the energy released when bonds form. Balance the equation before counting.
  • H–H = 436, Cl–Cl = 242 and H–Cl = 431 kJ mol⁻¹.

Key vocabulary

EnglishChinese
bond breaking断键
bond making成键
bond energy键能
energy released释放的能量

Quick practice

Try each question before opening its hint or answer. Use paper for calculations and diagrams.

Question 1

How many N–H bonds are broken when 2NH₃ decomposes?

Need a hint for Question 1?

Write two separate totals: energy in for breaking and energy out for making.

Check Question 1

Six.

Question 2

For H₂ + Br₂ → 2HBr, use H–H 436, Br–Br 193 and H–Br 366 kJ mol⁻¹ to calculate ΔH.

Need a hint for Question 2?

Add energies of bonds broken, then subtract energies of bonds formed.

Check Question 2

ΔH = 436 + 193 − 2(366) = −103 kJ mol⁻¹.

Question 3

Explain why an endothermic reaction can still involve energy release when bonds form.

Need a hint for Question 3?

Compare the total energy absorbed with the total released.

Check Question 3

Bond formation releases energy, but bond breaking absorbs more, so the net transfer is into the system.

Use Lesson 2 in your worksheet for written practice. Your teacher will discuss those answers in class.

← All Chapter 9 topics