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This deck focuses on Enthalpy Of Formation, giving you a quick way to review the definitions, rules, and examples that matter most for AP Chemistry.
Study Enthalpy Of Formation 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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What is the standard enthalpy of formation for oxygen gas, O2(g)?
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0 kJ/mol. Diatomic oxygen is an element in its standard state.
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This deck focuses on Enthalpy Of Formation, 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: 0 kJ/mol. Diatomic oxygen is an element in its standard state.
Answer: -238.7 kJ/mol. Standard reference value for methanol formation enthalpy.
Answer: -45.9 kJ/mol. Standard reference value for ammonia formation enthalpy.
Answer: -110.5 kJ/mol. Standard reference value for CO formation enthalpy.
Answer: 0 kJ/mol. Diatomic hydrogen is an element in its standard state.
Answer: -285.8 kJ/mol. Standard enthalpy of formation for liquid water.
Answer: -92.3 kJ/mol. Standard reference value for gaseous HCl formation enthalpy.
Answer: -187.8 kJ/mol. Standard reference value for H₂O₂ formation enthalpy.
Answer: Breaking bonds. Bond breaking requires energy input (endothermic).
Answer: Negative. Exothermic reactions release heat (negative ΔH).
Answer: kJ/mol. Energy per mole of substance formed.
Answer: -285.8 kJ/mol. Standard reference value for liquid water formation enthalpy.
Answer: -393.5 kJ/mol. Formation reaction equals the formation enthalpy directly.
Answer: ΔHreaction=ΣΔHf°(products)−ΣΔHf°(reactants). Sum product enthalpies, subtract reactant enthalpies.
Answer: Typically more negative. Stable compounds release more energy upon formation.
Answer: To calculate enthalpy changes of reactions using known formation enthalpies. Formation enthalpies enable indirect enthalpy calculations.
Answer: -277.38 kJ/mol. Standard reference value for ethanol formation enthalpy.
Answer: -411 kJ/mol. Standard reference value for NaCl formation enthalpy.
Answer: 1 atm pressure, 25°C (298 K). Standard temperature and pressure conditions for thermodynamics.
Answer: -91.8 kJ/mol. Formation of 2 moles: 2×(−45.9)=−91.8 kJ.
Answer: 0 kJ/mol. Elements in their standard state are the reference point (zero).
Answer: Heat change when 1 mole of a compound forms from elements in standard states. The fundamental definition of ΔHf°.
Answer: N2(g). Nitrogen gas is an element in its standard state.
Answer: -74.8 kJ/mol. Standard reference value for methane formation enthalpy.
Answer: -92.3 kJ/mol. Standard reference value for HCl gas formation enthalpy.
Answer: 90.3 kJ/mol. Standard reference value for NO formation enthalpy.
Answer: -824.2 kJ/mol. Standard reference value for iron oxide formation enthalpy.
Answer: -167.2 kJ/mol. Aqueous HCl has different enthalpy than gas phase.
Answer: -1273 kJ/mol. Standard reference value for glucose formation enthalpy.
Answer: 49.0 kJ/mol. Standard reference value for benzene formation enthalpy.
Answer: 33.2 kJ/mol. Standard reference value for NO₂ formation enthalpy.
Answer: -296.8 kJ/mol. Standard reference value for SO₂ formation enthalpy.
Answer: -393.5 kJ/mol. Standard reference value for CO₂ formation enthalpy.
Answer: -571.6 kJ/mol. Formation of 2 moles: 2×(−285.8)=−571.6 kJ.
Answer: 82.05 kJ/mol. Standard reference value for N₂O formation enthalpy.