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Lecture 10:  G, Q, and K Reading: Zumdahl 10.10, 10.11 Outline –Relating  G to Q –Relating  G to K –The temperature dependence of K.

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Presentation on theme: "Lecture 10:  G, Q, and K Reading: Zumdahl 10.10, 10.11 Outline –Relating  G to Q –Relating  G to K –The temperature dependence of K."— Presentation transcript:

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3 Lecture 10:  G, Q, and K Reading: Zumdahl 10.10, 10.11 Outline –Relating  G to Q –Relating  G to K –The temperature dependence of K

4 Relating  G to Q Recall from Lecture 6:  S = R ln (  final /  initial ) For the expansion of a gas  final  Volume

5 Relating  G to Q (cont.) Given this relationship  S = R ln (V final /V initial )

6 Relating  G to Q (cont.) This equation tells us what the change in entropy will be for a change in concentration away from standard state. Entropy change for process occurring under standard conditions Additional term for change in concentration. (1 atm, 298 K)(P ≠ 1 atm)

7 Relating  G to Q (cont.) How does this relate to  G?

8 Relating  G to Q (cont.) Generalizing to a multicomponent reaction: Where

9 An Example Determine  G rxn at 298 K for: C 2 H 4 (g) + H 2 O(l) C 2 H 5 OH(l) where P C2H4 = 0.5 atm (others at standard state)  G° rxn = -6 kJ/mol (from Lecture 9)

10 An Example (cont.) C 2 H 4 (g) + H 2 O(l) C 2 H 5 OH(l)  G rxn = -6 kJ/mol + (8.314 J/mol.K)(298K)ln(2) = -4.3 kJ/mol

11  G and K The Reaction Quotient (Q) corresponds to a situation where the concentrations of reactants and products are not those at equilibrium. At equilibrium, we have K. What is the relationship between  G and K?

12  G and K (cont.) At equilibrium,  G rxn = 0 0K 0 =  G° rxn +RTln(K)  G° rxn = -RTln(K)

13  G and K (cont.) Let’s look at the interaction between  G° and K  G° rxn = -RTln(K) If  G° < 0 then  > 1 Products are favored over reactants

14  G and K (cont.) Let’s look at the interaction between  G° and K  G° rxn = -RTln(K) If  G° = 0 then  = 1 Products and reactants are equally favored

15  G and K (cont.) Let’s look at the interaction between  G° and K  G° rxn = -RTln(K) If  G° > 0 then  < 1 Reactants are favored over products

16 An Example For the following reaction at 298 K: HBrO(aq) + H 2 O(l) BrO - (aq) + H 3 O + (aq) K a = 2.3 x 10 -9 What is  G° rxn ?  G° rxn = -RTln(K) = -RTln(2.3 x 10 -9 ) = 49.3 kJ/mol

17 An Example (cont.) What is  G rxn when pH = 5, [BrO - ] = 0.1 M, and [HBrO] = 0.2 M ? HBrO(aq) + H 2 O(l) BrO - (aq) + H 3 O + (aq)

18 An Example (cont.) Then: = 49.3 kJ/mol + (8.314 J/mol.K)(298 K)ln(5 x 10 -6 ) = 19.1 kJ/mol  G rxn <  G° rxn “shifting” reaction towards products

19 Temperature Dependence of K We now have two definitions for  G°  G° rxn = -RTln(K)=  H° - T  S° Rearranging (dividing by -RT) y = m x + b Plot of ln(K) vs 1/T is a straight line

20 T Dependence of K (cont.) If we measure K as a function of T, we can determine  H° by determining the slope of the line slope intercept

21 T Dependence of K (cont.) Once we know the T dependence of K, we can predict K at another temperature: - the van’t Hoff equation.

22 An Example For the following reaction : CO(g) + 2H 2 (g) CH 3 OH(l)  G° = -29 kJ/mol What is K at 340 K? First, what is K eq when T = 298 K?  G° rxn = -RTln(K) = -29 kJ/mol ln(K 298 ) = (-29 kJ/mol) -(8.314 J/mol.K)(298K) = 11.7 K 298 = 1.2 x 10 5

23 An Example (cont.) Next, to use the van’t Hoff Eq., we need  H° CO(g) + 2H 2 (g) CH 3 OH(l)  H f °(CO(g)) = -110.5 kJ/mol  H f °(H 2 (g)) = 0  H f °(CH 3 OH(l)) = -239 kJ/mol  H° rxn =  H° f (products) -  H° f (reactants) =  H° f (CH 3 OH(l)) -  H° f (CO(g)) = -239 kJ - (-110.5 kJ) = -128.5 kJ

24 An Example (cont.) With  H°, we’re ready for the van’t Hoff Eq. K 340 = 2.0 x 10 2 Why is K reduced? Reaction is Exothermic. Increase T, Shift Eq. To React. K eq will then decrease

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