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Chapter 17B Reaction Energy Entropy & Free Energy
West Valley High School General Chemistry Mr. Mata
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Standard 8a Students will know how enthalpy, entropy, and free energy are related.
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Essential Questions What factors influence the enthalpy, entropy, and free energy?
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Hess’ Law Enthalpy of Reaction
ΔHrxn = Hproducts – Hreactants - ΔH = exothermic + ΔH = endothermic
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ΔS = Sproducts – Sreactants
Entropy, ΔS Entropy measure of relative disorder. Thermodynamics tells us the universe moves towards disorder (entropy). ΔS = Sproducts – Sreactants
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Entropy, ΔS Entropy helps predict whether a reaction will be spontaneous. Solids have very low entropy Gases have very high entropy Solutions also have high entropy
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Entropy Values Reaction entropy; 2KClO3(s) 2KCl(s) + 3O2(g)
2 solids 2 solids + 3 gases Entropy increases in this reaction.
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Negative Enthalpy (-ΔH) Positive Entropy (+ΔS)
Entropy Values A positive ΔS = increase in entropy A negative ΔS = decrease in entropy Do not confuse entropy and enthalpy! Moving towards spontaneity: Negative Enthalpy (-ΔH) Positive Entropy (+ΔS)
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Gibb’s Free Energy Measure of system energy change.
Gibbs Free Energy, ΔG Named after American chemist, J. Willard Gibbs, who developed an equation to relate enthalpy & entropy.
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ΔG = ΔH -TΔS Free Energy, ΔG
Free energy, ΔG, allows us to assign a value to an entire reaction. The basic equation is: ΔG = ΔH -TΔS
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Gibbs Free Energy, ΔG A negative Gibbs Energy (-ΔG):
Spontaneous, Product favored A positive Gibbs Energy (+ΔG): Nonspontaneous, Reactant favored
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In conclusion… Enthalpy, ΔH Entropy, ΔS Gibbs Free Energy, ΔG
- ΔH = exothermic (heat out) + ΔH = endothermic (heat in) Entropy, ΔS - ΔS = decrease in entropy (stable) + ΔS = increase in entropy (unstable) Gibbs Free Energy, ΔG - ΔG = spontaneous + ΔG = nonspontaneous
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Chapter 17 SUTW Prompt Describe how we calculate enthalpy, entropy, and free energy for chemical reactions. Complete a sentence paragraph using the SUTW paragraph format. Hilight using green, yellow, and pink. Due Date: Monday, March 26, 2018 at beginning of your regular class period.
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