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Control of Chemical Reactions. Thermodynamic Control of Reactions Enthalpy Bond Energies – Forming stronger bonds favors reactions. – Molecules with strong.

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Presentation on theme: "Control of Chemical Reactions. Thermodynamic Control of Reactions Enthalpy Bond Energies – Forming stronger bonds favors reactions. – Molecules with strong."— Presentation transcript:

1 Control of Chemical Reactions

2 Thermodynamic Control of Reactions Enthalpy Bond Energies – Forming stronger bonds favors reactions. – Molecules with strong bonds are more stable. Entropy Randomness – Reactions that increase random- ness are favored. – Forming gases favors reactions.

3 The Laws of Thermodynamics 1st Law: Energy is Conserved 2 nd Law: Any “spontaneous” process leads to an increase in entropy of the universe.

4 Entropy A measure of randomness. Units of J/K.

5 Trends in entropy

6 Entropy Change For the System If the system gets more random,  S is positive. (Favors the reaction) If the system gets more ordered,  S is negative. (Disfavors the reaction)

7 Calculating  S Special Case: Phase Changes Heat of fusion (melting) of ice is 6000 J/mol. What is the entropy change for melting ice at 0 o C?

8 Calculating  S All other reactions C 3 H 8 (g) + 5 O 2 (g)  3 CO 2 (g) + 4 H 2 O(l)

9 Calculate entropy change for formation of rain: H 2 O(g)  H 2 O(l)

10 What types of reactions lead to increased entropy?

11

12 Entropy vs. Enthalpy Control of Reactions Second law of thermodynamics:  S universe =  S system +  S surroundings

13 Question: How can rain form? H 2 O(g)  H 2 O(l)  S = -188.89 J/K

14 Calculate  S universe for H 2 O(l)  H 2 O(g) at: 90 o C 110 o C

15 Putting  S,  H and Temperature Together Gibb’s Free Energy:  G =  H - T  S When  G is negative, reaction is favored. When  G is positive, reaction is disfavored.

16 2 Fe 2 O 3 (s) + 3 C(s)  4 Fe(s) + 3 CO 2 (g)  H = +468 kJ  S = +561 J/K  G =  H - T  S What is  G at 25 o C and at 1000 o C?

17 Enthalpy vs. Entropy Control of Reactions  G =  H - T  S At high temperatures: At low temperatures:

18 Temperature Domains and Reaction Favorability  H + - +  S -

19 2 Fe 2 O 3 (s) + 3 C(s)  4 Fe(s) + 3 CO 2 (g)  H = +468 kJ  S = +561 J/K In what temperature range will this reaction be favored? High or low? What temperature?

20 Free Energy vs. Temperature Curves

21 Free Energy of Formation: Only used at 25 o C 2 BaO(s) + C(s)  2 Ba(s) + CO 2 (g)

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