Here are the essential concepts you must grasp in order to answer the question correctly.
Enthalpy (ΔH)
Enthalpy is a measure of the total energy of a thermodynamic system, often associated with heat transfer during a reaction at constant pressure. A negative ΔH indicates that the reaction is exothermic, meaning it releases heat to the surroundings. This can influence the spontaneity of a reaction, as exothermic reactions tend to favor product formation.
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Entropy (ΔS)
Entropy is a measure of the disorder or randomness in a system. A negative ΔS indicates that the reaction leads to a decrease in disorder, meaning the products are more ordered than the reactants. Understanding entropy is crucial for predicting the spontaneity of reactions, as systems tend to evolve towards higher entropy.
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Gibbs Free Energy (ΔG)
Gibbs Free Energy combines enthalpy and entropy to determine the spontaneity of a reaction at constant temperature and pressure. The relationship is given by the equation ΔG = ΔH - TΔS. A negative ΔG indicates that a reaction is spontaneous, while a positive ΔG suggests non-spontaneity. In this case, the signs of ΔH and ΔS will help assess the overall spontaneity.
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