What this deck covers
This deck focuses on Endothermic And Exothermic Processes, giving you a quick way to review the definitions, rules, and examples that matter most for AP Chemistry.
Study Endothermic And Exothermic Processes in AP Chemistry with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
0% Complete
Identify an endothermic process in everyday life.
Tap card or press Space to flip
Photosynthesis is an endothermic process. Light energy is absorbed to drive the reaction.
How well did you know it?
Card 1 / 112
Space to flip · ← / → to move · once flipped, → Got it · ← Still learning
This deck focuses on Endothermic And Exothermic Processes, giving you a quick way to review the definitions, rules, and examples that matter most for AP Chemistry.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: Photosynthesis is an endothermic process. Light energy is absorbed to drive the reaction.
Answer: Evaporation of alcohol is endothermic. Phase change requires energy input.
Answer: Freezing water is an exothermic process. Energy is released as molecules form ordered structure.
Answer: △H alone does not determine spontaneity. Gibbs free energy determines spontaneity.
Answer: The heat absorbed or released during a chemical reaction. Energy change when reactants become products.
Answer: The unit is kilojoules per mole (kJ/mol). Standard unit for measuring enthalpy changes.
Answer: Lighting a match is exothermic. Combustion of match head releases energy.
Answer: The heat absorbed or released during a chemical reaction. Energy change when reactants become products.
Answer: Heat is absorbed by the system. System gains energy from surroundings.
Answer: A process that requires continuous external energy input. Thermodynamically unfavorable without energy input.
Answer: △H is negative for exothermic reactions. Energy is released, so enthalpy decreases.
Answer: Lighting a match is exothermic. Combustion of match head releases energy.
Answer: Heat is released by the system. System loses energy to surroundings.
Answer: 1 atm pressure and 298 K temperature. Reference conditions for thermodynamic measurements.
Answer: Energy cannot be created or destroyed, only transformed. Conservation of energy principle in thermodynamics.
Answer: Heat is absorbed by the system. System gains energy from surroundings.
Answer: 1 atm pressure and 298 K temperature. Reference conditions for thermodynamic measurements.
Answer: Photosynthesis is an endothermic process. Light energy is absorbed to drive the reaction.
Answer: Melting is endothermic. Energy is needed to break intermolecular forces.
Answer: The sign of △H is negative. Heat release means negative enthalpy change.
Answer: Rusting of iron is exothermic. Oxidation reactions release energy.
Answer: Rusting of iron is exothermic. Oxidation reactions release energy.
Answer: The system is the part of the universe being studied; surroundings are everything else. Defines boundaries for energy transfer analysis.
Answer: Burning wood is an exothermic process. Combustion releases energy as heat and light.
Answer: △H is positive for endothermic reactions. Energy is absorbed, so enthalpy increases.
Answer: The system is the part of the universe being studied; surroundings are everything else. Defines boundaries for energy transfer analysis.
Answer: The sign of △H is positive. Heat absorption means positive enthalpy change.
Answer: Boiling water is an endothermic process. Energy is required to overcome intermolecular forces.
Answer: The system is the part of the universe being studied; surroundings are everything else. Defines boundaries for energy transfer analysis.
Answer: A process that requires continuous external energy input. Thermodynamically unfavorable without energy input.
Answer: It is an endothermic process. Dissolution breaks ionic bonds, absorbing energy.
Answer: Freezing water is an exothermic process. Energy is released as molecules form ordered structure.
Answer: Burning wood is an exothermic process. Combustion releases energy as heat and light.
Answer: A process that occurs without external energy input. Thermodynamically favorable under given conditions.
Answer: Combustion is an exothermic reaction. Burning reactions always release energy.
Answer: Melting is endothermic. Energy is needed to break intermolecular forces.
Answer: A process that occurs without external energy input. Thermodynamically favorable under given conditions.
Answer: Combustion is an exothermic reaction. Burning reactions always release energy.
Answer: △H=180−100=80 kJ. Products have higher energy than reactants.
Answer: Burning wood is an exothermic process. Combustion releases energy as heat and light.
Answer: A process that requires continuous external energy input. Thermodynamically unfavorable without energy input.
Answer: Baking bread is an endothermic process. Chemical reactions in baking require energy input.
Answer: Energy cannot be created or destroyed, only transformed. Conservation of energy principle in thermodynamics.
Answer: A process that releases heat to its surroundings. Heat flows out of the system to the environment.
Answer: A calorimeter measures the heat of chemical reactions. Device that quantifies energy changes in reactions.
Answer: The sign of △H is negative. Heat release means negative enthalpy change.
Answer: Combustion is an exothermic reaction. Burning reactions always release energy.
Answer: Rusting of iron is exothermic. Oxidation reactions release energy.
Answer: △H=150−200=−50 kJ. Products have lower energy than reactants.
Answer: Freezing water is an exothermic process. Energy is released as molecules form ordered structure.
Answer: Combustion is an exothermic reaction. Burning reactions always release energy.
Answer: A process that requires continuous external energy input. Thermodynamically unfavorable without energy input.
Answer: Enthalpy is the total heat content of a system. It's a state function measuring internal energy.
Answer: It is an endothermic process. Dissolution breaks ionic bonds, absorbing energy.
Answer: A calorimeter measures the heat of chemical reactions. Device that quantifies energy changes in reactions.
Answer: A process that occurs without external energy input. Thermodynamically favorable under given conditions.
Answer: The sign of △H is negative. Heat release means negative enthalpy change.
Answer: 1 atm pressure and 298 K temperature. Reference conditions for thermodynamic measurements.
Answer: Lighting a match is exothermic. Combustion of match head releases energy.
Answer: A calorimeter measures the heat of chemical reactions. Device that quantifies energy changes in reactions.
Answer: Burning wood is an exothermic process. Combustion releases energy as heat and light.
Answer: △H=180−100=80 kJ. Products have higher energy than reactants.
Answer: △H is negative. Energy is released during the reaction.
Answer: Rusting of iron is exothermic. Oxidation reactions release energy.
Answer: △H is negative. Energy is released during the reaction.
Answer: Dissolving NaCl in water is endothermic. Ion separation requires energy input.
Answer: Energy cannot be created or destroyed, only transformed. Conservation of energy principle in thermodynamics.
Answer: A calorimeter measures the heat of chemical reactions. Device that quantifies energy changes in reactions.
Answer: Baking bread is an endothermic process. Chemical reactions in baking require energy input.
Answer: 1 atm pressure and 298 K temperature. Reference conditions for thermodynamic measurements.
Answer: Heat is absorbed by the system. System gains energy from surroundings.
Answer: Lighting a match is exothermic. Combustion of match head releases energy.
Answer: △H is negative. Energy is released during the reaction.
Answer: Boiling water is an endothermic process. Energy is required to overcome intermolecular forces.
Answer: Condensation is exothermic. Energy is released when gas molecules organize.
Answer: △H is positive. Energy is absorbed during the reaction.
Answer: Energy cannot be created or destroyed, only transformed. Conservation of energy principle in thermodynamics.
Answer: Evaporation of alcohol is endothermic. Phase change requires energy input.
Answer: The minimum energy required to initiate a reaction. Energy barrier that must be overcome.
Answer: The minimum energy required to initiate a reaction. Energy barrier that must be overcome.
Answer: The heat absorbed or released during a chemical reaction. Energy change when reactants become products.
Answer: A process that absorbs heat from its surroundings. Heat flows into the system from the environment.
Answer: Heat is absorbed by the system. System gains energy from surroundings.
Answer: △H=180−100=80 kJ. Products have higher energy than reactants.
Answer: △H=180−100=80 kJ. Products have higher energy than reactants.
Answer: The total enthalpy change is the same no matter how the reaction is carried out. Enthalpy is path-independent, only depends on states.
Answer: △H is positive. Energy is absorbed during the reaction.
Answer: △H is negative. Energy is released during the reaction.
Answer: The sign of △H is positive. Heat absorption means positive enthalpy change.
Answer: The minimum energy required to initiate a reaction. Energy barrier that must be overcome.
Answer: Evaporation of alcohol is endothermic. Phase change requires energy input.
Answer: Boiling water is an endothermic process. Energy is required to overcome intermolecular forces.
Answer: Boiling water is an endothermic process. Energy is required to overcome intermolecular forces.
Answer: Condensation is exothermic. Energy is released when gas molecules organize.
Answer: Evaporation of alcohol is endothermic. Phase change requires energy input.
Answer: △H is positive. Energy is absorbed during the reaction.
Answer: The unit is kilojoules per mole (kJ/mol). Standard unit for measuring enthalpy changes.
Answer: The heat absorbed or released during a chemical reaction. Energy change when reactants become products.
Answer: △H=150−200=−50 kJ. Products have lower energy than reactants.
Answer: △H represents the change in enthalpy. It measures energy changes in chemical reactions.