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This deck focuses on Reaction Energy Profile, giving you a quick way to review the definitions, rules, and examples that matter most for AP Chemistry.
Study Reaction Energy Profile in AP Chemistry with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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State the effect of concentration increase on reaction rate.
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Increases reaction rate. More reactant molecules increase collision frequency and reaction rate.
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This deck focuses on Reaction Energy Profile, 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: Increases reaction rate. More reactant molecules increase collision frequency and reaction rate.
Answer: Typically joules per mole (J/mol). Energy per mole represents the barrier height for molecular-scale reactions.
Answer: Transition state. This point represents the activated complex at maximum potential energy.
Answer: The activation energy (Ea). Catalysts only affect activation energy, not the overall enthalpy change.
Answer: The enthalpy change (ΔH) of the reaction. This represents the overall heat absorbed or released in the reaction.
Answer: The minimum energy required to initiate a chemical reaction. This energy barrier must be overcome for reactant bonds to break and form products.
Answer: The peak of the energy curve. The transition state occurs at maximum energy where bonds are breaking and forming.
Answer: Correct: 'Catalysts do not change enthalpy.'. Catalysts affect kinetics but leave thermodynamic properties unchanged.
Answer: The minimum energy required to initiate a chemical reaction. This energy barrier must be overcome for reactant bonds to break and form products.
Answer: Correct: 'highest energy.'. The transition state represents the maximum energy point during reaction.
Answer: A transitional structure formed during a reaction. This unstable intermediate exists at the energy maximum during bond reorganization.
Answer: Catalysts lower the activation energy. They provide alternative pathways with lower energy barriers for reactions.
Answer: A transitional structure formed during a reaction. This unstable intermediate exists at the energy maximum during bond reorganization.
Answer: Correct: 'ΔH<0'. Exothermic reactions release energy, requiring negative enthalpy change values.
Answer: An exothermic reaction. Negative ΔH means products are lower in energy, releasing heat.
Answer: Reduced activation energy. Catalysts create alternative pathways requiring less energy to reach products.
Answer: Moles per liter per second (M/s). Rate measures concentration change per unit time in chemical reactions.
Answer: Increases reaction rate. Higher temperatures provide more kinetic energy to overcome activation barriers.
Answer: Energy changes during a reaction. These diagrams show energy transformations from reactants through products.
Answer: A transitional structure formed during a reaction. This unstable intermediate exists at the energy maximum during bond reorganization.
Answer: Affects activation energy. Higher temperatures increase molecular kinetic energy, affecting reaction barriers.
Answer: Increases reaction rate. Smaller particles have greater surface area, increasing collision frequency.
Answer: Increases reaction rate. Higher pressure increases gas molecule density and collision frequency.
Answer: Activation energy (Ea). This energy difference determines how fast the reaction proceeds.
Answer: Exothermic reactions. These reactions release energy, making products lower in energy than reactants.
Answer: An endothermic reaction. Energy absorption occurs when products form at higher energy than reactants.
Answer: Positive ΔH indicates endothermic. Energy flows from surroundings to the system when ΔH>0.
Answer: The peak of the energy curve. The transition state occurs at maximum energy where bonds are breaking and forming.
Answer: Endothermic reaction. Higher product energy means the reaction absorbs heat from surroundings.
Answer: An exothermic reaction. Heat release occurs when products form at lower energy than reactants.
Answer: Activation energy (Ea). This energy difference determines how fast the reaction proceeds.
Answer: Exothermic reactions. These reactions release energy, making products lower in energy than reactants.
Answer: It represents the transition state. The highest point corresponds to the unstable activated complex formation.
Answer: Catalysts lower the activation energy. They provide alternative pathways with lower energy barriers for reactions.
Answer: It represents the transition state. The highest point corresponds to the unstable activated complex formation.
Answer: A catalyst. Catalysts affect reaction rate but not the thermodynamic energy change.
Answer: An exothermic reaction. Negative ΔH means products are lower in energy, releasing heat.
Answer: An endothermic reaction. Positive ΔH means products are higher in energy, absorbing heat.
Answer: ΔH=Energy of products−Energy of reactants. This formula calculates the net energy change from reactants to products.
Answer: Correct: 'Catalyst lowers activation energy.'. Catalysts provide alternative pathways with lower activation energy barriers.
Answer: It represents the transition state. The highest point corresponds to the unstable activated complex formation.
Answer: A catalyst speeds up the reaction. Catalysts increase reaction rates by lowering activation energy barriers.
Answer: The enthalpy change (ΔH) of the reaction. This represents the overall heat absorbed or released in the reaction.
Answer: Correct: 'products have lower energy.'. Exothermic reactions release energy, so products must have lower energy.
Answer: Exothermic reaction. Lower product energy means the reaction releases heat to surroundings.
Answer: No change in equilibrium position. Catalysts speed reactions equally in both directions, maintaining equilibrium.
Answer: Endothermic reactions. These reactions require energy input, making products higher in energy than reactants.
Answer: The enthalpy change (ΔH) of the reaction. This represents the overall heat absorbed or released in the reaction.
Answer: A catalyst speeds up the reaction. Catalysts increase reaction rates by lowering activation energy barriers.
Answer: Exothermic reactions. These reactions release energy, making products lower in energy than reactants.
Answer: Correct: 'ΔH>0'. Endothermic reactions absorb energy, requiring positive enthalpy change values.
Answer: Negative ΔH indicates exothermic. Energy flows from the system to surroundings when ΔH<0.
Answer: The rate is typically denoted as r. Rate measures how fast reactants convert to products over time.
Answer: Negative ΔH indicates exothermic. Energy flows from the system to surroundings when ΔH<0.