Lesson 13A.3
13A.3 Enthalpy of solution and energy cycles Quiz: Pearson Edexcel Chemistry, Unit 13
20 questions
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Lesson 13A.3, Enthalpy of solution and energy cycles: 20 multiple choice questions for the Pearson Edexcel Chemistry (9CH0), Unit 13: Energetics II, written with Revision Ninja.
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The 20 questions
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What is the enthalpy of solution?
- The enthalpy change when one mole of solute is vaporised from a concentrated solution at its boiling point
- The enthalpy change when one mole of an ionic solid dissolves in water to form an infinitely dilute solution
- The enthalpy change when one mole of water is hydrated by the ions released from one mole of an ionic solid
- The energy change when one mole of gaseous ions forms a solid lattice, the reverse of lattice dissociation
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What is the enthalpy of hydration of an ion?
- The energy needed to break the lattice of one mole of ionic solid into gaseous ions in the gas phase
- The enthalpy change when one mole of gaseous ions dissolves in water to form aqueous ions
- The enthalpy change when one mole of a solid ionic compound dissolves in water to give hydrated ions
- The enthalpy change when one mole of water is formed from gaseous hydrogen and oxygen ions in solution
-
What is the sign of an enthalpy of hydration?
- Always zero for small ions
- Positive for cations and negative for anions
- Always exothermic (negative)
- Always endothermic, because water molecules must be separated
-
Which ion has the more negative enthalpy of hydration?
- Mg2+, because it has a higher charge density than Na+
- Cl-, because anions always hydrate more than cations
- Na+, because it is larger
- Ca2+, because it has a larger radius than Mg2+
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What factors determine the magnitude of an ion's enthalpy of hydration?
- Only the temperature at which the solution is made
- The ionic mass only, because heavier ions are hydrated more strongly
- The number of electrons in the outer shell only
- The ionic charge and ionic radius, through the charge density of the ion
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Which expression correctly relates the enthalpy of solution to the lattice energy and hydration enthalpies?
- dsolH = dhydH(cation) - dhydH(anion) - LE
- dsolH = LE + dhydH(cation) + dhydH(anion)
- dsolH = LE - dhydH(cation) - dhydH(anion)
- dsolH = dhydH(cation) + dhydH(anion) - LE
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Why does a small, highly charged ion have a more negative enthalpy of hydration?
- It has a high charge density
- It has fewer electrons, so it hydrates less readily
- It only dissolves in ethanol, not in water
- It has a lower charge, so it attracts fewer water molecules
-
Using a lattice energy of -700 kJ mol-1 and a total hydration enthalpy of -650 kJ mol-1, what is the enthalpy of solution?
- +1350 kJ mol-1
- +650 kJ mol-1
- +50 kJ mol-1
- -50 kJ mol-1
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Using a lattice energy of -820 kJ mol-1 and a total hydration enthalpy of -850 kJ mol-1, what is the enthalpy of solution?
- +1670 kJ mol-1
- -30 kJ mol-1
- +30 kJ mol-1
- -1670 kJ mol-1
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The enthalpy of solution of a salt is +12 kJ mol-1 and its lattice energy is -760 kJ mol-1. What is the total hydration enthalpy?
- +772 kJ mol-1
- -748 kJ mol-1
- +748 kJ mol-1
- -772 kJ mol-1
-
Why can a salt with a positive enthalpy of solution still dissolve?
- It dissolves because the solution becomes more ordered than the solid
- It does not dissolve enthalpically
- It dissolves because the lattice energy is positive
- It dissolves because the hydration enthalpy must be zero
-
A salt has dsolH = +80 kJ mol-1. Which statement is true of its dissolution?
- It dissolves only if the lattice energy is zero, so that no energy is needed to separate the ions
- It is exothermic, so the solution warms as it dissolves and the enthalpy term favours dissolution strongly
- It is endothermic, so the enthalpy term opposes dissolution and entropy must drive it
- It cannot dissolve at any temperature because dsolH is positive, which makes the process always unfavourable
-
When ammonium nitrate dissolves in water and the solution becomes colder, what is the sign of the enthalpy of solution?
- Negative, so the process is exothermic
- Negative, and larger in magnitude than the lattice energy
- Positive, so the process is endothermic
- Zero, so no heat is exchanged
-
Using a lattice energy of -2258 kJ mol-1 and a total hydration enthalpy of -2308 kJ mol-1 for CaCl2, what is the enthalpy of solution?
- -50 kJ mol-1
- -4566 kJ mol-1
- +4566 kJ mol-1
- +50 kJ mol-1
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In the enthalpy of solution cycle, what is the first step applied to the solid?
- Forming dissolved ions in solution with no energy change
- Forming hydrated ions directly from the solid
- Breaking the lattice to form gaseous ions
- Forming gaseous atoms from the element
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What is the enthalpy of solution of KBr, given lattice energy -671 kJ mol-1, hydration enthalpy of K+ = -322 kJ mol-1 and of Br- = -334 kJ mol-1?
- +15 kJ mol-1
- -15 kJ mol-1
- -993 kJ mol-1
- +993 kJ mol-1
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A solid has lattice energy -1000 kJ mol-1 and total hydration enthalpy -900 kJ mol-1. A student says it will dissolve readily because dsolH is negative. Which evaluation is best?
- Correct, because a negative hydration enthalpy always makes dissolution favourable
- Incorrect, because dsolH = +100 kJ mol-1 is endothermic, so the enthalpy term opposes dissolution
- Incorrect, because the lattice energy must be positive for a solid to dissolve
- Correct, because hydration energy is always larger than the lattice energy
-
A salt has measured dsolH = -35 kJ mol-1 and lattice energy -1200 kJ mol-1. What is its total hydration enthalpy?
- -1235 kJ mol-1
- +1235 kJ mol-1
- +1165 kJ mol-1
- -1165 kJ mol-1
-
Why must an enthalpy of solution cycle use gaseous ions as its intermediate state?
- Because lattice energies and hydration enthalpies are both defined in terms of gaseous ions
- Because hydration enthalpies are defined for solids rather than ions
- Because water cannot dissolve any species that is not gaseous
- Because gaseous ions are the only species that can be measured in solution
-
A student says the enthalpy of solution is always more negative than the lattice energy. Which evaluation is best?
- True, because hydration enthalpies are always positive, so the sum is always more negative than the lattice energy
- False, because dsolH is always zero for any ionic solid
- False, because dsolH = -LE + dhydH(total), which can be positive if hydration is less exothermic than the lattice energy
- False, because dsolH is always zero for any ionic solid when the solution is made at 298 K
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