AP Chemistry enthalpy study guide

Essential study guide for understanding enthalpy in AP Chemistry, covering key terms, definitions, and concepts.

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What is enthalpy?

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A measure of total energy of a thermodynamic system, often symbolized as H\displaystyle H.

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Quiz(17 vragen)

Vraag 1 van 17

1. What does a negative enthalpy change indicate?

Termen in deze set(21)

What is enthalpy?

A measure of total energy of a thermodynamic system, often symbolized as H\displaystyle H.

Define exothermic reaction.

A reaction that releases heat, resulting in a temperature increase in the surroundings.

Define endothermic reaction.

A reaction that absorbs heat from the surroundings, causing a temperature decrease.

What is the formula for change in enthalpy?

ΔH=HproductsHreactants\displaystyle \Delta H = H_{products} - H_{reactants}.

True or false: Enthalpy is an extensive property.

True, because it depends on the amount of substance present.

Difference between ΔHf\displaystyle \Delta H_{f}^\circ and ΔHc\displaystyle \Delta H_{c}^\circ.

ΔHf\displaystyle \Delta H_{f}^\circ is the heat of formation; ΔHc\displaystyle \Delta H_{c}^\circ is the heat of combustion.

Units of enthalpy.

Commonly expressed in kilojoules per mole (kJ/mol\displaystyle kJ/mol).

What is Hess's Law?

The total enthalpy change for a reaction is the sum of the enthalpy changes for individual steps.

Fill in the blank: Standard enthalpy of formation for elements in their standard state is __________.

0 kJ/mol.

Key feature of bond enthalpy.

The energy required to break one mole of a specific bond in a gaseous substance.

Heat capacity vs. enthalpy.

Heat capacity measures energy required to change temperature; enthalpy measures total energy.

Calculate ΔH\displaystyle \Delta H for the reaction: A+BC+D\displaystyle A + B \rightarrow C + D.

ΔH=HproductsHreactants\displaystyle \Delta H = \sum H_{products} - \sum H_{reactants}.

True or false: ΔH\displaystyle \Delta H is always positive for exothermic reactions.

False, because ΔH\displaystyle \Delta H is negative for exothermic reactions.

What is the significance of negative ΔH\displaystyle \Delta H?

Indicates a reaction is exothermic, releasing heat.

Identify the sign of ΔH\displaystyle \Delta H in an endothermic reaction.

Positive, since heat is absorbed.

What does the term 'enthalpy change' refer to?

The difference in enthalpy between products and reactants.

How does pressure affect enthalpy?

Changes in pressure can affect enthalpy, especially in gases.

Define calorimetry.

The science of measuring the heat of chemical reactions or physical changes.

What is an isothermal process?

A process that occurs at constant temperature, leading to specific enthalpy changes.

Bond enthalpy vs. enthalpy of formation.

Bond enthalpy is for breaking bonds; enthalpy of formation is for forming compounds.

What is the relationship between enthalpy and temperature?

Enthalpy changes with temperature; higher temperature can increase enthalpy.

Vragen in deze set(17)

1. What does a negative enthalpy change indicate?

A.Exothermic reaction
B.Endothermic reaction
C.No reaction
D.Reversible reaction

2. Which of the following processes is endothermic?

A.Burning wood
B.Dissolving salt in water
C.Combustion of methane
D.Respiration

3. Which statement about Hess's Law is true?

A.It applies only to gases
B.It states enthalpy is independent of path
C.It requires constant volume
D.It can only be applied to solid reactions

4. What is the standard enthalpy change of formation for any element in its standard state?

A.1 kJ/mol
B.0 kJ/mol
C.-1 kJ/mol
D.100 kJ/mol

5. Which of the following is NOT a characteristic of enthalpy?

A.Extensive property
B.Measured in joules
C.Represents total energy
D.Independent of temperature

6. In an isothermal process, what remains constant?

A.Pressure
B.Volume
C.Temperature
D.Enthalpy

7. Calculate the enthalpy change: Hproducts=300kJ\displaystyle H_{products} = 300 kJ, Hreactants=200kJ\displaystyle H_{reactants} = 200 kJ.

A.100 kJ
B.500 kJ
C.300 kJ
D.200 kJ

8. Which reaction is likely to have a large positive enthalpy change?

A.Combustion of gasoline
B.Photosynthesis
C.Respiration
D.Explosion of TNT

9. What is the bond enthalpy of a bond?

A.Energy to form a bond
B.Energy to break a bond
C.Heat released during formation
D.Total energy of a molecule

10. Which of the following affects enthalpy changes during a reaction?

A.Type of bonds broken
B.Concentration of reactants
C.Temperature
D.All of the above

11. What is the heat capacity of a substance?

A.Energy needed to change its state
B.Energy needed to raise temperature
C.Total enthalpy change
D.Enthalpy per mole

12. True or false: The enthalpy of a system decreases during an exothermic reaction.

A.True
B.False
C.Depends on conditions
D.Not enough information

13. What occurs during an endothermic phase change?

A.Heat is released
B.Temperature decreases
C.Heat is absorbed
D.Enthalpy remains constant

14. What is typically true for bond enthalpies in a reaction?

A.Equal for all reactions
B.Higher for gaseous reactants
C.Lower for solid reactants
D.Dependent on conditions

15. Which reaction is characterized by a large negative enthalpy change?

A.Photosynthesis
B.Respiration
C.Dissolving ammonium nitrate
D.Decomposition of water

16. The specific heat capacity of water is approximately:

A.1 kJ/kg·K
B.4.18 kJ/kg·K
C.0.5 kJ/kg·K
D.2.09 kJ/kg·K

17. What does a calorimeter measure?

A.Pressure changes
B.Temperature only
C.Heat transfer
D.Volume changes

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