1 / 42

Intersection 9: Equilibrium

Intersection 9: Equilibrium. 10/31/06 Reading: 14.1-14.2 (p671-679); 14.3-14.5 (p682-694); 14.6 Changing Concentrations of Reactants or Product (p694-696); Changing Temperature (p698-701.). Gateway Chemistry 130/125/126 Section 600. 6 – 8 PM Thursday Nov. 30th.

aquarius
Télécharger la présentation

Intersection 9: Equilibrium

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript

  1. Intersection 9: Equilibrium 10/31/06 Reading: 14.1-14.2 (p671-679); 14.3-14.5 (p682-694); 14.6 Changing Concentrations of Reactants or Product (p694-696); Changing Temperature (p698-701.)

  2. Gateway Chemistry 130/125/126 Section 600 6 – 8 PM Thursday Nov. 30th A Gateway to Scientific Ethics • Scientists Employ the Scientific Method to Explore the Physical World. • What are the ethical considerations associated with being a scientist? • How do they relate to the use of the Scientific Method? • Are there ethical considerations beyond the Scientific Method? • We will employ a case-study approach to examining these questions including a prominent case of fraud from Lucent Technologies as well • as the classic Millikan-Ehrenhaft debate. Dinner Provided Please RSVP by email to Prof Banaszak Holl (mbanasza@umich.edu) Gateway evenings are optional and will not affect your course grade

  3. MSF • Thank you! • What we can’t change: • Exam time • Class lecture time • Will be you prepared for your next chemistry class: • Chem 130 concepts • No answer keys • How we hope to improve the course • Grading rubrics for remaining projects (ex. Proposal) • Try to preview topics and do more practice/homework problems in lecture • Give GSIs some more time for problem solving in studio

  4. Outline • Equilibrium defined • Equilibrium constant • ICE • Shifting equilibrium • Equilibrium Law • LeChâtelier’s principle • Practice problems

  5. A Reactions that Don’t Go to Completion • Generally, we assume that reactions “go to completion”…as much of the reactants are used up as possible; there may be a limiting reagent and thus reactants may be left over • We assume that the reaction can only go in the forward direction. • A rate of (forward) reaction can be measured.

  6. A What's a rate of reaction? For a simple reactions A B, rate = k[A]. Most reactions slow down as they proceed and as the concentration/s of the reactant/s decreases (the rate approaches zero.)

  7. A Problem 1 2L of a 0.1M solution of magnesium chloride and 1 L of a 0.5 M solution of silver nitrate are mixed together. • Write out the balanced net ionic equation • What is the limiting reagent? • How many grams of silver chloride will you make?

  8. A A New Scenario: Equilibrium A reaction in equilibrium is going forward and backward at the same rate. All reactants and products are present and actively interchanging

  9. A Forward and Reverse Rates Reactions in equilibrium have both a significant forward and reverse rate of reaction. A  B Forward reaction:  A → B Reverse reaction:  B → A When equilibrium is reached, the rates of the forward and reverse reaction are equal AND are NOT equal to 0.

  10. A An Equilibrium Model http://www.chm.davidson.edu/ronutt/che115/EquKin/EquKin.htm 2A  B B  2A When has the reaction reached equilibrium? (How can you tell?) Is the forward reaction (2A  B) still taking place? Is the reverse reaction (B  2A) still taking place?

  11. M At equilibrium we have the following equality: kfwd[A] = krev[B] forward rate = reverse rate Rearranging this equation yields: Keq = kfwd/krev = [B]/[A] Keq is the equilibrium constant Equilibrium Constant • A  B Forward Rate = kfwd [A] • B  A Reverse Rate = krev[B]

  12. M What does Keq tell you? • A ↔ B Keq = • For low values of Keq, do you expect there to be a higher concentration of products or reactants at equilibrium?

  13. M Keq for more complex reactions aA + xX ↔ bB + yY [B]b[Y]y [A]a[X]x Keq =

  14. M Writing Equilibrium Constants *First, balance the equation. 1) NO(g) + Cl2(g) ↔ NOCl(g) 2) H2(g) + I2(g) ↔ HI(g) 3)# CaCO3(s) ↔ CaO(s) + CO2(g) # In any equilibrium expression, the concentration of a pure liquid (e.g water) or pure solid is considered a constant (1).

  15. M Equilibrium Constant Family Keq -a generic equilibrium constantKc -an equilibrium constant calculated using equilibrium concentrations in M (mol/L)Kp - associated with gaseous equilibria; found using equilibrium pressures (atm) Pressure is directly proportional to concentration (PV = nRT or P = (n/V)RT).

  16. A Determining Keq How would you determine the equilibrium constant? 2NO2 (g)  ↔   N2O4 (g)    ΔH = -24.02 KJ/mol (red-brown) (colorless)  Suppose that 0.55 moles of NO2 are placed in an empty 5.00 L flask which is subsequently heated to 407 K.  By measuring the intensity of the color of red-brown NO2, it can be determined that its concentration at equilibrium is 0.10 mol/L.   What is the expression for Keq? What is the value of Keq at 407 K? Keq = [N2O4]/[NO2]2

  17. A Put the Reaction on ICE 0.55 moles/5 L 0 moles/L - 2x + x 0.10 mol/L 0.005 mol/L 0.11 mol/L – 2x = 0.10 mol/L x = 0.005 mol/L Keq = [N2O4]/[NO2]2 = 0.5

  18. A Temperature Does temperature matter? 2NO2 (g)  ↔   N2O4 (g)    ΔH = -24.02 KJ/mol (red-brown) (colorless)  Keq(407K) = 0.5

  19. M ICE applied In the future, you can look up the equilibrium constants in Table 14.1 p685 as well as the Appendices) * What if you want to know equilibrium concentrations? H2 (g)  +  I2 (g) ↔ 2 HI(g)   Keq = 2.5 x 101 Two moles of hydrogen and 2 moles of iodine are added to a 4 L container; what are the concentrations of all reactants and products at equilibrium?

  20. M Keq = 2.5 x 101 -x -x +2x 0.5 - x 0.5 - x +2x Keq = 25 = [HI]2 = [2x]2 [H2][I2] [0.5-x][0.5-x] x = 0.8, 0.4

  21. M Problem 2: Making Ammonia Desired for fertilizing (belief that without ammonia, wouldn’t be able to feed world.) N2(g) + 3 H2(g)↔ 2 NH3(g) Kc = 3.5 x108 (25oC) • What is the Kc if the reaction were written for the production of 1 mole of ammonia? 1/2 N2(g) + 3/2 H2(g)↔ NH3(g) • If 10 moles of nitrogen and 10 moles of hydrogen are placed in a 1 L flask, how many moles of ammonia can you make? How many moles of starting material would be left over?

  22. A Disturbing Equilibrium • Sir Isaac Newton claimed that a ball at rest would remain at rest unless disturbed.  You might be tempted to apply this logic to equilibrium and get:   A reaction at equilibrium will remain at equilibrium unless disturbed; consequently, the reaction will shift so as to come back to equilibrium.

  23. A Can the Equilibrium Constant be Changed? 2NO2 (g)  ↔   N2O4 (g)    ΔH = -24.02 KJ/mol (red-brown) (colorless) 

  24. A Evaluating Changes in Equilibrium Method 1: LeChâtelier's Principle if a system at equilibrium is disturbed or stressed by a change in temperature, pressure or concentration of one of the components, it will shift its equilibrium so as to oppose the stress. How does LeChâtelier's Principleexplain the demonstration that you just saw?

  25. A Can Equilibrium be Changed? Use LeChâtelier's Principleto predict what you will see: Fe(NO3)3 + KSCN ↔ Fe(SCN)+2 + KNO3DH < 0 red

  26. M Evaluating Changes in Equilibrium Method 2: Equilibrium Law (Q) aA + xX ↔ bB + yY • Keq is used at equilibrium to represent the ratio of reactants to products for a give reaction. Keq = [B]b[Y]y [A]a[X]x • Q, the reaction quotient, is used for this ratio under any conditions at any point in time, not just equilibrium. Q = [B]b[Y]y [A]a[X]x • At equilibrium, Keq and Q are EQUAL. • According to the equilibrium law, the system will proceed to bring Q and Keq equal to each other.

  27. M Q vs. Keq • In general, how would the reaction proceed to result in a decreased Q? • What if an increased Q were the desired result?

  28. M Applying the Equilibrium Law • What is the equilibrium expression for this reaction? • Keq was determined to be 6.42x10-5 at 25oC. • At equilibrium is this reaction product favored or reactant favored? H2O(l) + C6H5CO2H (aq)↔ C6H5CO2-(aq) + H3O+(aq)

  29. M H2O(l) + C6H5CO2H ↔ C6H5CO2- + H3O+(aq) 2.00 moles of C6H5CO2-, 1.00 mole of H3O+ and 3.00 moles of C6H5CO2H are placed in 1 liter of water. What is the value of Q under these conditions? Compare Q with Keq (6.42 x10-5). Will the reaction proceed to form more C6H5CO2-(aq) and H3O+ (aq) or more C6H5CO2H(aq) or not change at all?

  30. M LeChâtelier trumps Q One instance where Le Châtelier's principle provides us with information that the equilibrium law cannot is in the case of changing temperature.   Suppose we have the following reaction, CaCO3(s) ↔ CaO(s) + CO2(g)     ΔH > 0 What happens if you increase the temperature?

  31. M Q trumps LeChâtelier CaCO3(s) ↔ CaO(s) + CO2(g)     ΔH > 0 Using each method, explain what will happen to the concentration of CO2 if solid lime (CaCO3) is added to the system?

  32. S2(g) and C(graphite) when placed together in a closed system form an equilibrium with CS2(g).   C(graphite) + S2(g)   ↔ CS2(g) Suppose that the equilibrium constant for this reaction is 4.0.   Draw a qualitative graph that shows how the concentration of each gas changes with time if the system initially consists of pure S2(g) and graphite. A Problem 3a

  33. Draw a picture representing the molecules present under initial conditions and when the reaction reaches equilibrium. Will the amount of graphite in the system be the same, more, or less at equilibrium than it was initially?  Why? A Problem 3b C(graphite) + S2(g)   ↔ CS2(g)

  34. A Problem 3c C(graphite) + S2(g)   ↔ CS2(g) Draw a second graph showing what happens if the system initially contains pure CS2(g) and graphite.   Draw a picture representing the molecules present under initial conditions and when the reaction reaches equilibrium. Will the amount of graphite have changed in this scenario? If so, how?

  35. At room temperature, the equilibrium constant for the reaction: 2NO(g)↔ N2(g) + O2(g) is 1.4 x1030 Is this reaction product-favored or reactant-favored? In the atmosphere at room temperature, the concentration of N2 is 0.33 mol/L, and the concentration of O2 is about 25% of that value. Calculate the equilibrium concentration of NO in the atmosphere. M Problem 4

  36. CO(g) + H2O(g)↔CO2(g) + H2(g) Kc = 4.00 at 500 K. A mixture of 1.00 mol CO and 1.00 mol H2Ois allowed to come to equilibrium in a flask of volume 0.5 L at 500K, Calculate the final concentrations of all four species: CO, H2O, CO2 and H2 What would be the equilibrium concentrations if an additional 1.00 mol of each CO and H2O were added? M Problem 5

  37. A Equilibrium Representation (Friday 11/10) Your group will create a visual representation of a dynamic equilibrium. The medium is completely up to you (animation, skit, artwork, song, etc.), and creativity is encouraged. • The representative system that is in a stable dynamic equilibrium. • A stress to the system and how it would respond according to Le Châtelier's principle. You will tell the class the system what species (chemical or otherwise) that are present etc., but the class will have to infer the stress placed on the system by its response to that stress.

More Related