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Wednesday, March 19 th : “A” Day Thursday, March 20 th : “B” Day Agenda. Homework questions/problems? Section 14.1 Quiz Begin Section 14.2: “Systems at Equilibrium” Homework: Practice pg. 504: #1, 2 Practice pg. 506: #1, 2 Concept Review: “Systems at Equilibrium”: #1-14
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Wednesday, March 19th: “A” DayThursday, March 20th: “B” DayAgenda • Homework questions/problems? • Section 14.1 Quiz • Begin Section 14.2: “Systems at Equilibrium” • Homework: • Practice pg. 504: #1, 2 • Practice pg. 506: #1, 2 • Concept Review: “Systems at Equilibrium”: #1-14 We will finish section 14.2 next time…
Homework Questions/Problems? • Section 14.1 review • Pg. 501: #1-5
Quiz14.1: “Reversible Reactions and Equilibrium” • You may use your book and your notes to complete the quiz… Good Luck! (Pick up the notes for today when you turn in your quiz)
The Equilibrium Constant, Keq • There is a mathematical relationship between product and reactant concentrations at equilibrium. • Equilibrium constant, Keq: a number that relates the concentrations of starting materials and products of a reversible chemical reaction to one another at a given temperature.
The Equilibrium Constant, Keq • Equilibrium constants: • do NOT have any units • depend on temperature • apply only to systems in equilibrium • must be found experimentally or from tables
** Rules for determining Keq ** • Write a balanced chemical equation. • Make sure that the reaction is at equilibrium before you write a chemical equation. • Write an equilibrium expression. • To write the expression, put the product concentrations in the numerator and the reactant concentrations in the denominator. • The concentration of any solid or a pure liquid that takes part in the reaction is left out. • For a reaction occurring in aqueous solution, water is omitted.
**Rules for determining Keq ** • Complete the equilibrium expression • Raise each substance’s concentration to the power equal to the substance’s coefficient in the balanced chemical equation.
The Equilibrium Constant, Keq • Limestone caverns form as rainwater, slightly acidified by H3O+, dissolves calcium carbonate. • The reverse reaction also takes place, depositing calcium carbonate and forming stalactites and stalagmites. CaCO3(s) + 2 H3O+(aq) Ca2+(aq) + CO2(g) + 3 H2O(l) • When the rates of the forward and reverse reactions become equal, the reaction reaches chemical equilibrium.
The Equilibrium Constant, Keq • Write the equilibrium constant expression for limestone reacting with acidified water at 25°C according to the balanced equation: • CaCO3(s) + 2 H3O+(aq) Ca2+(aq) + CO2(g) + 3 H2O(l) • (left out) (left out) • Keq = [Ca2+] [CO2] • [H3O+]2 • Keq for this reaction at 25˚C is 1.4 X 10 -9 • The [ ] means “concentration” in M, moles/liter. • Equilibrium constants do not have any units and apply only to systems at equilibrium.
Calculating Keq from Concentrations of Reactants and Products ( Sample Problem) • Calculate Keq for the following reaction: Br2 (g) 2 Br (g) At equilibrium [Br2] = 0.99 M, [Br] = 0.020 M • Write Equilibrium expression: [Br] 2 [Br2] • Plug in values = (0.020) 2and Solve… 0.99 Keq = 4.0 X 10-4
Calculating Keqfrom Concentrations of Reactants and Products Sample Problem A, pg. 504 • An aqueous solution of carbonic acid reacts to reach equilibrium as described below:: The solution contains the following concentrations: - carbonic acid, 3.3 × 10−2 mol/L - bicarbonate ion, 1.19 × 10−4 mol/L - hydronium ion, 1.19 × 10−4 mol/L • Determine the Keq
Sample Problem A, pg. 504, cont. 3.3 X 10-2 M 1.19 X 10-4M 1.19 X 10-4M K eq = [HCO3-] [H3O+] [H2CO3] • Plug in values: K eq = (1.19 X 10-4) (1.19 X 10-4 ) (3.3 X 10-2) = 1.42 X 10-8 3.3 X 10-2 Keq = 4.3 X 10-7
** Keq Shows if the Reaction is Favorable ** • If Keq is small, reaction favors reactants. This is called an “unfavorable” reaction. • If Keq is large, reaction favors products. This is called a “favorable” reaction. • If Keq=1, products and reactants are equal.
Keq Shows if the Reaction is Favorable • The synthesis of ammonia is very favorable at 25°C and has a large Keq value.
Keq Shows if the Reaction is Favorable • However, the reaction of oxygen and nitrogen to give nitrogen monoxide is not favorable at 25°C. K eq = [NO]2= 4.5 X 10-31at 25˚C [N2] [O2] • It’s a good thing that this reaction is not favorable or we would have trouble breathing!
Calculating Concentrations ofProducts and Reactants from Keq; Sample Problem B, pg. 506 • Keqfor the equilibrium below is 1.8 × 10−5at a temperature of 25°C. Calculate [NH4+] when [NH3] = 6.82 × 10−3 • Write equilibrium expression: K eq = [NH4+] [OH-] [NH3] • NH4+ and OH- ions are produced in equal numbers, so [NH4+] = [OH-] = X 1.8 X 10-5= ___X2 ___ 6.82 X 10-3 [NH4+] = 3.5 X 10-4
Calculating Concentrations ofProducts and Reactants from Keq; Additional Example • Find [H2] equilibrium at 700K when [CH3OH] = 0.25, [CO] = 0.0098, Keq = 290 CO (g) + 2 H2 (g) CH3OH (g) • Write equilibrium expression: Keq = [CH3OH] [CO] [H2]2 • Plug in values: 290 = 0.25__ (.0098)[H2]2 • Cross multiply: 2.8 [H2]2 = 0.25 Divide each side by 2.8: [H2]2 = .089 [H2] = 0.30
Homework • Practice pg. 504: #1, 2 • Practice pg. 506: #1, 2 • Concept Review: “Systems at Equilibrium”: #1-14 • Use your time wisely….the concept review will be due before you know it! We will finish section 14.2 next time…
