Equilibrium unit test
A test on this unit alone, marked as a percentage and a letter grade — for the test your class is actually sitting, rather than for May. Answer everything, then submit once: seeing the answer to question 3 before attempting question 4 makes the final percentage meaningless.
Dynamic equilibrium
Effect of volume change
Q vs K reasoning on a graph
Relating K for reversed and scaled reactions
Magnitude of K
Equilibrium constant K
Le Châtelier's principle
Small-x approximation
Common ion effect
ICE table
Kc and Kp relationship
Reaction quotient Q
Short answer 1. Define or explain: Solubility product Ksp
3 ptsShort answer 2. Define or explain: pH effect on solubility
3 ptsShort answer 3. Define or explain: Effect of temperature on K
3 ptsShort answer 4. Define or explain: Effect of a catalyst on equilibrium
3 ptsFree response
10 ptsAt 500 K, 1.00 mol of PCl₅ is placed in an evacuated rigid 2.00 L flask and allowed to reach equilibrium: PCl₅(g) ⇌ PCl₃(g) + Cl₂(g). At equilibrium, [Cl₂] = 0.150 M. (a) Construct an ICE table and determine the equilibrium concentration of each species. (b) Calculate Kc at 500 K. (c) Calculate Kp at 500 K, given Kp = Kc(RT)^Δn with R = 0.08206 L·atm·mol⁻¹·K⁻¹. (d) Predict and justify the effect on the equilibrium amount of PCl₃ if the flask volume is doubled at constant temperature. (e) Explain why the volume change in part (d) does not alter the value of Kc.