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State the meaning of the term enthalpy change - AQA - A-Level Chemistry - Question 1 - 2021 - Paper 1

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State the meaning of the term enthalpy change. This question is about enthalpy changes for calcium chloride and magnesium chloride. Figure 1 shows an incomplete Bo... show full transcript

Worked Solution & Example Answer:State the meaning of the term enthalpy change - AQA - A-Level Chemistry - Question 1 - 2021 - Paper 1

Step 1

State the meaning of the term enthalpy change.

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Answer

Enthalpy change refers to the heat energy change that occurs in a system at constant pressure during a chemical or physical process.

Step 2

Complete Figure 1 by writing the formulas, including state symbols, of the appropriate species on each of the three blank lines.

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Answer

  1. extCa2+(g) ext{Ca}^{2+}(g)
  2. extCl2(g) ext{Cl}_2(g)
  3. extCaCl2(s) ext{CaCl}_2(s)

Step 3

Use Figure 1 and the data in Table 1 to calculate a value for the enthalpy of lattice dissociation of calcium chloride.

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Answer

From the Born-Haber cycle, the enthalpy of lattice dissociation can be calculated using Hess's law:

extEnthalpyoflatticedissociation=extEnthalpyofformation+extEnthalpyofatomizationofCa+extFirstionizationenergyofCa+extSecondionizationenergyofCa+extEnthalpyofatomizationofCl+extElectronaffinityofCl ext{Enthalpy of lattice dissociation} = ext{Enthalpy of formation} + ext{Enthalpy of atomization of Ca} + ext{First ionization energy of Ca} + ext{Second ionization energy of Ca} + ext{Enthalpy of atomization of Cl} + ext{Electron affinity of Cl}

Calculating:

=795+193+590+1150+121364=5extkJmol1= -795 + 193 + 590 + 1150 + 121 - 364 = -5 ext{ kJ mol}^{-1}

Step 4

Give an equation, including state symbols, to represent the process that occurs when the enthalpy of solution of magnesium chloride is measured.

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Answer

extMgCl2(s)+extH2O(l)ightarrowextMg2+(aq)+2extCl(aq) ext{MgCl}_2(s) + ext{H}_2O(l) ightarrow ext{Mg}^{2+}(aq) + 2 ext{Cl}^-(aq)

Step 5

Use your answer to Question 01.4 and the data in Table 2 to calculate a value for the enthalpy of solution of magnesium chloride.

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Answer

Using the equation:

extEnthalpyofsolution=extEnthalpyofhydrationofMg2++extEnthalpyofhydrationofClextEnthalpyoflatticedissociation ext{Enthalpy of solution} = ext{Enthalpy of hydration of Mg}^{2+} + ext{Enthalpy of hydration of Cl} - ext{Enthalpy of lattice dissociation}

Substituting the values:

=1920+(2imes364)2493=19207282493=4141extkJmol1= -1920 + (2 imes -364) - 2493 = -1920 - 728 - 2493 = -4141 ext{ kJ mol}^{-1}

Step 6

Suggest why the enthalpy of hydration of Ca²⁺(g) is less exothermic than that of Mg²⁺(g).

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Answer

The enthalpy of hydration of Ca²⁺(g) is less exothermic due to its larger ionic radius compared to Mg²⁺, resulting in a weaker attraction to water molecules and thus less energy released upon hydration.

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