equilibrium ii 15.6 – using keq 15.7 – le chậtelier’s principle 19.7 20.5

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Equilibrium II 15.6 – Using Keq 15.7 – Le Chậtelier’s Principle 19.7 20.5

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Equilibrium II 15.6 – Using Keq 15.7 – Le Chậtelier’s Principle 19.7 20.5. Calculating Equilibrium Concentrations . The same steps used to calculate equilibrium constants are used to calculate equilibrium concentrations. Generally, we do not have a number for the change in concentration. - PowerPoint PPT Presentation

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Page 1: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Equilibrium II15.6 – Using Keq

15.7 – Le Chậtelier’s Principle19.720.5

Page 2: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Calculating Equilibrium Concentrations

• The same steps used to calculate equilibrium constants are used to calculate equilibrium concentrations.

• Generally, we do not have a number for the change in concentration.

• We need to assume that x mol/L of a species is produced (or used).

• The equilibrium concentrations are given as algebraic expressions.

Page 3: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#1 At 2000oC, the equilibrium constant for the reaction: 2 NO (g) N2 (g) + O2 (g) is Kc = 2.40 103. If the initial concentration of NO is 0.200 M, what are the equilibrium concentrations of NO, N2 and O2?

2 NO(g) N2(g) + O2(g)init 0.200M 0 0change - 2x x xequil. 0.200 – 2x x x

32 2c 2

32

[N ][O ]K = = 2.4 x 10

[NO](x)(x) = 2.4 x 10

(0.200 - 2x)3x = 2.4 x 10

0.200 - 2xx 49.0

0.200 - 2x

x = 49.0(0.200 - 2x) x = 9.80 - 98.0x 99.0x = 9.80

2 2x = 0.0990 M = [N ] = [O ] [NO] = 0.200 - 2(.0990) = 0.002 M

Page 4: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#2 At 100oC, Kc = 0.078 for the reaction: SO2Cl2 SO2 + Cl2.

In an equilibrium mixture of the three gases, the concentrations of SO2Cl2 and SO2 are 0.108 M and 0.052 M, respectively. What is the partial pressure of Cl2 in the equilibrium mixture?

2 2c

2

22

[SO ][Cl ]K =

[SOCl ](0.052)[Cl ]

.078 = [Cl ] 0.16 M (0.108)

nRTPV = nRT --> P = --> P = MRTV

2ClP = (0.16)(0.0821)(373) = 5.0 atm

Page 5: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#3 At 373 K, Kp = 0.416 for the equilibrium: 2 NOBr 2 NO + Br2. If the pressures of NOBr and

NO are equal, what is the equilibrium pressure of Br2?

2

2

2NO Br

p NO NOBr2NOBr

p Br

(P )(P )K = when P = P , they cancel

P

K = P = 0.416 atm

Page 6: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#4 For the reaction: H2 + I2 2 HI Kc = 55.3 at 700 K. In a 2.00 L flask containing an equilibrium mixture of the three gases, there are 0.056 g H2 and 4.36 g I2. What is the mass of HI in the flask?

(b)

2

c2 2

[HI]K = = 55.3 [H ][I ]

2[HI] = 55.3 (.014)(.00858)[HI]=0.081 M

ML

molgg

H 014.00.2

/02.2056.

][ 2

ML

molgg

I 00858.00.2

/25436.4

][ 2

gHImolgLLmol 21)/128)(00.2)(/081.0(

Page 7: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Applications of Equilibrium Constants - Predicting the Direction

of Reaction For a general reaction: aA + bB cC + dDWe define Q, the reaction quotient, as:

Where [A], [B], [C], and [D] are molarities (for substances in solution) or partial pressures (for gases) at any given time.

ba

dc

QBADC

Page 8: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Q is a K expression with non-equilibrium concentration values.

Page 9: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

• Q = Keq only at equilibrium.

• If Q < Keq then the forward reaction must occur to reach equilibrium.– Reactants are consumed, products are formed. – Q increases until it equals Keq.

• If Q > Keq then the reverse reaction must occur to reach equilibrium. – Products are consumed, reactants are formed. – Q decreases until it equals Keq.

Page 10: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#5 At 100oC, the equilibrium constant for the reaction: COCl2 CO + Cl2

has the value Kc = 2.19 10-10. Are the following mixtures of COCl2, CO, and Cl2 at 100oC at equilibrium?

(a) [COCl2] = 2.00 10-3 M [CO] = 3.3 10-6 M [Cl2] = 6.62 10-6 M(b) [COCl2] = 4.50 10-2 M [CO] = 1.1 10-7 M [Cl2] = 2.25 10-6 M(c) [COCl2] = 0.0100 M [CO] = [Cl2] = 1.48 10-6 M

))

-6 -6-8

-3

(3.3 x 10 )(6.62 x 10(a) Q = = 1.1 x 10(2.00 x 10

Q > K, reaction shifts left to attain equilibrium

))

-7 -6-12

-2

(1.1 x 10 )(2.25 x 10(b) Q = = 5.5 x 10(4.50 x 10

Q < K, reaction shifts right to attain equilibrium

)

-6 2-10(1.48 x 10 )(c) Q = = 2.19 x 10

(0.0100 Q = K, reaction is at equilibrium

c]

]-102

2

[CO][Cl K = = 2.19 x 10

[COCl

Page 11: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

15.7 Le Châtelier’s Principle

Le Châtelier’s principle: If a system at equilibrium is disturbed by a change in temperature, a change in pressure, or a change in the concentration of one or more components, the system will shift its equilibrium position in such a way as to counteract the effects of the disturbance.

Page 12: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Change in Reactant or Product Concentration • If a chemical system is at equilibrium and we add or

remove a product or reactant, the reaction will shift so as to reestablish equilibrium.

• For example, consider the Haber process: N2(g) + 3H2(g) 2NH3(g)

If H2 is added while the system is at equilibrium, Q < Keq The system must respond to counteract the added H2 (by

Le Châtelier’s principle).• That is, the system must consume the H2 and produce

products until a new equilibrium is established.• Therefore, [H2] and [N2] will decrease and [NH3]

increase until Q = Keq.

Page 13: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Effects of Volume and Pressure Changes

Page 14: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Effects of Volume and Pressure Changes • If the equilibrium involves gaseous products or reactants,

the concentration of these species will be changed if we change the volume of the container.

• For example, if we decrease the volume of the container, the partial pressures of each gaseous species will increase.

• Le Châtelier’s principle predicts that if pressure is increased, the system will shift to counteract the increase.– the system shifts to remove gases and decrease pressure.

.

Page 15: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

An increase in pressure favors the direction that has fewer moles of gas.

A decrease in pressure favors the direction that has more moles of gas.

In a reaction with the same number of moles of gas in the products and reactants, changing the pressure has no effect on the equilibrium.

No change will occur if we increase the total gas pressure by the addition of a gas that is not involved in the reaction because the partial pressures of the gases will stay constant.

Page 16: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Effect of Temperature Changes Temperature affects the equilibrium constant:

• For an endothermic reaction, heat can be considered a reactant.– Adding heat causes a shift to the right– Removing heat causes a shift to the left

• For an exothermic reaction, heat can be considered a product.– Adding heat causes a shift to the left– Removing heat causes a shift to the right

Page 17: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5
Page 18: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

• At room temperature, an equilibrium mixture (light purple)

• The mixture is placed in a beaker of warm water. – The mixture turns deep blue - shift toward products

- CoCl42–

• The mixture is placed in ice water. – The mixture turns bright pink - shift toward

reactants - Co(H2O)62+.

Page 19: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

The Effect of Catalysts

• A catalyst lowers the activation energy barrier for the reaction.

• Therefore, a catalyst will decrease the time taken to reach equilibrium.

• A catalyst DOES NOT effect the composition of the equilibrium mixture

Page 20: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#6 Consider the following equilibrium, for which ΔH < 0: 2 SO2(g) + O2(g) 2 SO3(g).

How will each of the following changes affect an equilibrium mixture of the three gases?(a) O2(g) is added to the system(b) the reaction mixture is heated(c) the volume of the reaction vessel is doubled(d) a catalyst is added to the mixture(e) the total pressure of the system is increased by adding a noble gas(f) SO3(g) is removed from the system

(a) shifts right(b) shifts left(c) shifts left – increasing volume decreases pressure favors the

side with more moles of gas (d) no effect (e) no effect (f) shifts right

+ heat

Page 21: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#7 How do the following changes affect the value of the equilibrium constant for a gas-phase exothermic reaction:(a) removal of a reactant or product(b) decrease in the volume(c) decrease in the temperature(d) addition of a catalyst

(a) no effect(b) no effect(c) Temperature affects Keq:

exothermic: inverse relationshipendothermic: direct relationship

increase Keq(d) no effect

Page 22: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#8 For the reaction,

PCl5 (g) PCl3 (g) + Cl2 (g) ΔHrxn = +111 kJ.

Fill in the following table:

Change to reaction Reaction shifts Change in K

Add PCl5

Remove Cl2

Add Ar

Decrease P

Increase T

Add a catalyst

Decrease V of container

right none

right none

no shift noneright noneright increases

no shift noneleft none

Page 23: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Review!• Gibbs Free Energy: ΔG

– Combines enthalpy and entropy to tell us whether a reaction will be spontaneous or not

• If ΔG is (+) the reaction is nonspontaneous• If ΔG is (–) the reaction is spontaneous• If ΔG = 0 the system is at equilibrium

Page 24: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

19.7 Free Energy and the Equilibrium Constant• ΔGo applies under standard conditions, but most reactions

don’t happen under standard conditions!• ΔG and Q apply to any conditions.• It is useful to determine whether substances will react

under specific conditions: ΔG = ΔGo + RT lnQ

• At equilibrium, Q = Keq and ΔG = 00 = ΔGo + RT ln Keq

ΔGo = – RT ln Keq

On equation sheet!

On equation sheet!

Page 25: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

ΔGo = – RT ln Keq

From the above we can conclude that at 298K:• If ΔGo is negative, then Keq is greater than 1

(-) ΔG means spontaneous rxn, favors products

• If ΔGo = 0, then Keq = 1

• If ΔGo is positive, then Keq is less than 1

(+) ΔG means nonspontaneous rxn, favors reactants

Page 26: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#9 Explain qualitatively how ΔG changes for each of the following reactions as the partial pressure of O2 is increased

(a) 2 CO(g) + O2(g) 2 CO2(g)(b) 2 H2O2(l) 2 H2O(g) + O2(g)

ΔG = ΔGo + RT lnQ

(a) ΔG becomes smaller (or more negative)(b) ΔG becomes larger (or more positive)

Page 27: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#10 Consider the reaction: 2 NO2(g) N2O4(g). (a) Using data from Appendix C, calculate ΔGo at 298 K. (b) Calculate ΔG at 298 K if the partial pressures of NO2 and

N2O4 are 0.40 atm and 1.60 atm respectively.

(a) ΔGo = ΔGo N2O4 (g) - 2 ΔGo NO2(g) = 98.28 - 2(51.84) = - 5.40 kJ

2 4

2

N O2NO

P(b) G = G + RT ln

P

2

1.60G = - 5.40 kJ + (.008314 x 298)[ln ]0.40

G = 0.3 kJ

Page 28: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#11 Use data from Appendix C to calculate Kp at 298 K for each of the following reactions:(a) H2(g) + I2(g) 2 HI(g)

2 2

0

p

(a) G = 2 G HI(g) - G H (g) - G I (g) = 2(1.30) - 0 - 19.37 = - 16.77 kJ

G RT ln Kp  16.77 (.008314)(298) ln

K 870Kp

Page 29: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

20.6 Effect of Concentration on Cell EMFReview:E is positive – spontaneousE is negative - nonspontaneousE =0 - equilibrium• A voltaic cell is functional until E = 0 at which

point equilibrium has been reached. (The cell is then “dead.”)

• The point at which E = 0 is determined by the concentrations of the species involved in the redox reaction.

Page 30: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

The Nernst Equation• We can calculate the cell potential under nonstandard conditions. • Recall that: ΔG = ΔGo + RT lnQ and ΔG = - nFE• We can substitute in our expression for the free energy change:

- nFE = - nFEo + RT lnQ• Rearranging, we get the Nernst equation:

• The Nernst equation can be simplified by collecting all the constants together and using a temperature of 298 K:

(n is the # of e transferred)

RTE E lnQnF

0.0592E = E° - log Qn

On AP Equation Sheet!

On AP Equation Sheet!

R=8.31

Page 31: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#12 At 298K we have the reaction: Zn(s) + Cu2+(aq) Zn2+(aq) + Cu(s)

[Cu2+] = 5.0 M and [Zn2+] = 0.050M: Q = [Zn+2] / [Cu+2]

(a) Cu+2(aq) + 2e Cu(s) Eo

red = +.34 VZn(s) Zn+2(aq) + 2e Eo

ox = + 0.763V

Eo = + 1.10 V

0.0592E = E° - log Qn

cell 0.0592 0.050E = 1.10V - log = 1.16V

2 5.0

Page 32: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

Cell EMF and Chemical EquilibriumA system is at equilibrium when Q=K and ΔE = 0.

Thus, if we know the Eo, we can calculate the equilibrium constant.

0.05920 = E° - log Kn

nE°log K = 0.0592

0.0592E = E° - log Qn

On AP Equation Sheet!

Page 33: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#13 What is the effect on the emf of the cell which has the overall cell reaction:

Zn(s) + 2 H+1(aq) Zn+2(aq) + H2(g) for each of the following changes?

(a) the pressure of the H2 is increased in the cathode compartment (b) zinc nitrate is added to the anode compartment (c) sodium hydroxide is added to the cathode compartment, decreasing [H+1] (d) the surface area of the anode is doubled.

(a) Q increases, E decreases(b) [Zn+2] increases, Q increases, E decreases(c) [H+1] decreases, Q increases, E decreases(d) No effect – does not appear in the Nernst equation

RTE E lnQnF

Page 34: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#14 A voltaic cell is constructed that uses the following reaction and operates at 298 K:

Zn(s) + Ni+2(aq) Zn+2(aq) + Ni(s)(a) What is the emf of this cell under standard conditions? (b) What is the emf of this cell when [Ni+2] = 3.00 M and [Zn+2] = 0.100 M?

(a) Ni+2(aq) + 2e Ni(s) Eored = - 0.28 V

Zn(s) Zn+2(aq) + 2e Eoox = +

0.763V Ni+2(aq) + Zn(s) Ni(s) + Zn+2(aq) Eo = + 0.48 V

+2

+2

0.0592 [Zn ](b) E = E - logn [Ni ]

0.0592 [0.100] E = 0.48 V - log = 0.53 V2 [3.00]

Page 35: Equilibrium  II 15.6 – Using  Keq 15.7 – Le  Chậtelier’s  Principle 19.7 20.5

#15 Using the standard state reduction potentials listed in Appendix E, calculate the equilibrium constant for the following reaction at 298 K:(a) Zn(s) + Sn+2(aq) Zn+2(aq) + Sn(s)

n E log K = 0.0592

ox red

21

(a) E = E + E = 0.763 + (- 0.136) = 0.627 V ; n = 2

n E 2(0.627) log K = = 0.0592 0.0592

K = 1.5 x 10