по Vivian Zhu 3 лет назад
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Type in the name of the book you have read.
Type the main events of the book, classifying them in: events from the beginning, events from the middle, and events from the end of the book.
Describe the story visually. Add a representative picture for each of them.
Example: Carbon monoxide gas is a primary starting material in the synthesis of many organic compounds, including methanol. At 2000 C, the K is 6.40 x 10^-7 for the decomposition of carbon dioxide gas, into carbon monoxide and oxygen gas. Calculate all [equilibrium] if 0.250 mol of CO2(g) is placed in a 1.000 L container.
Answer: 2CO2(g) ⇌ 2CO(g) + O2(g) I 0.250 0 0 C -2x +2x +x E 0.250-2x 2x x [CO2]ini = 0.250 mol/1.000 L = 0.250 mol/L rxn will move -> K = [CO]^2[O2]/[CO2]^2 6.40 x 10^-7 = (2x)^2(x)/(0.250-2x)^2 6.40 x 10^-7 = 4x^3/(0.250-2x)^2 6.40 x 10^-7 = 4x^3/(0.250)^2 x = 2.154 x 10^-3 Test: [smallest]/K = 0.250/6.40 x 10^-7 = 390 000 390 000>100 Check: x/[initial] x 100% = 2.154 x 10^-3/0.250 x 100% = 0.86% 0.86%<5% [CO2]eq = 0.250-2(2.154 x 10^-3) = 0.246 mol/L [CO]eq = 2(2.154 x 10^-3) = 4.31 x 10^-3 mol/L [O2]eq = 2.15 x 10^-3 mol/L
100 Rule
NOT a perfect square: Ex: 8.40 x 10^-6 = x^2/0.200-x - since K is very small, we make a simplifying approximation - if the equilibrium concentration is very small, the value of X is small as well - K with a magnitude of 10^-6 means that the [reactant] is 1 000 000x greater than the [product] -> so the approximation we can make is 0.200-x = 0.200 (x = 0.000001) It makes it easier: 8.40 x 10^-6 = x^2/0.200 1.68 x 10^-6 = x^2 x = 1.2961 x 10^-3
AFTER using the 100 rule: x/initial concentration x 100% - < 5%
BEFORE using the 100 rule: smallest initial concentration/K - > 100
Example: In a 250 mL sealed container at 150 C, 0.50 mol of iodine gas and bromine gas are mixed and allowed to react until they form equilibrium with IBr. K = 120. What are the equilibrium concentrations of iodine gas and bromine gas?
Answer: I2(g) + Br2(g) ⇌ 2IBr(g) I 2.0 2.0 0 C -x -x 2x E 2.0-x 2.0-x 2x [I2]ini = 0.50 mol/0.250 L = 2.0 mol/L [Br2]ini = 0.50 mol/0.250 L = 2.0 mol/L Not @ EQ, shift -> K = [IBr]^2/[I2][Br] 120 = (2x)^2/(2.0-x)^2 10.95445 = 2x/2.0-x 21.90890 = 2x + 10.95445x x = 1.691 [IBr]eq = 2x = 2(1.691) = 3.4 mol/L [I2]eq = 2.0-x = 2.0 - 1.691 = 0.31 mol/L [Br2]eq = 2.0-x = 0.31 mol/L
calculate Q and then compare the value to K
There are 3 possible cases:
Q > K Not at equilibrium, there is too much product, reaction will shift LEFT
Q = K The system is at equilibrium, nothing will happen
Q < K Not at equilibrium, there is too much reactant, reaction will shift RIGHT
In contrast to the main idea, the theme is the message, lesson or moral of the book.
Some tips to find out the theme of the book easier:
Fritz Haber discovered Iron (III) Oxide was an effective catalyst to speed up this reaction
Carl Bosch used this information to synthesize ammonia on an industrial scale
Bosch was able to synthesize ammonia at more manageable conditions (500 C)
by adding reactant, removing product and using a catalyst (equilibrium is pushed towards the product)
ammonia can be produced from N2 but the equilibrium heavily favors the reactants at SATP
equillibrium can shift if temp is raised 700 C
even after colliding with other gases, they don't react
adding inert gases will increase the total pressure, but not individual partial pressures
only help a system reach equilibrium FASTER
reduce activation energy by introducing an alternative reaction pathway
2A(g) + 3B(g) ⇌ 2C(g) + D(g)
Decreasing Volume (increasing pressure) - shift to left (side w/ fewest gases)
Increasing Volume (decreasing pressure) - shift to left (side w/ most gases)
exothermic reactions release energy (energy is a product)
A(g) + B(g) ⇌ C(g) + D(g) + heat
Decrease temp - shift to right
Increase temp - shift to left
endothermic reactions absorb energy (energy is a reactant)
A(g) + B(g) + heat ⇌ C(g) + D(g)
Decrease temp - shift to the left
Increase temp - shift to right
A(aq) ⇌ B(aq)
Decreasing concentration of A - removing A will shift equilibrium to produce more A (left)
Increasing concentration of A - adding A will shift equilibrium to produce more B (right)
equilibrium will never be reached and the system will always favour the products
reactants are continually added while products are continually removed
this principle is used my chemical engineers to increase yield
Answer: AgBr(s) ⇌ Ag+(aq) + Br-(aq) Q = [Ag+]{Br-] = (1.0 x 10^-3)(5.0 x 10^-3) = 5.0 x 10^-6 > Ksp rxn move <- and PPT will form
Q < Ksp
precipitate will not form
shift to the right
Q = Ksp
no precipitate will form
solution is saturated
Q > Ksp
precipitate will form
shift to the left
Answer: Ksp = [Zn2+][OH-]^2 = (2.7 x 10^-6)(5.4 x 10^-6)^2 = 7.9 x 10^-17
low solubility
small amount of dissolved ions
the product of the dissolved ion concentrations is very low
high solubility
large amount of dissolved ions
the product of the dissolved ion concentrations is very high
Take notes while you read the book. Write here your favorite quotes from the book.
Ksp = [A(aq)]^a[B(aq)]^b
Write the Equilibrium Law and determine the value of K: K = [NH3(g)]^2/[N2(g)][H2(g)]^3 = (2.00 x 10^-4)^2/(1.50 x 10^-5)(3.45 x 10^-1)^3 = 0.064939 K = 0.0649
K = 1
[reactant] = [product]
K > 1
the reaction goes to completion
more product than reactant
equilibrium position is far right (favours the products)
K < 1
the reaction occurs very little (99% stay as reactant)
more reactant than product
equilibrium position is far left (favours the reactants)
The main idea is what the book is mostly about.
Some tips to find out the main idea of a book easier:
Type the names of the book characters. Start with the main character.
Draw arrows to represent the relationship between them and if it is possible write on them what they represent for each other (if they are relatives, friends, lovers, enemies etc.)
Answer: H2(g) F2(g) ⇌ 2HF(g) I 2.00 2.00 0 C -x -x 2x E 2.00-x 0.48 2x [F2]eq = 2.00 - x 0.48 = 2.00 - x 2.00 - 0.48 = x x = 1.52 mol/L [H2]eq = 2.00 - 1.52 = 0.48 mol/L [HF]eq = 2(1.52) = 3.04 mol/L
purpose: helps organizes calculations involving equilibrium
Equilibrium
Change
Initial
for any closed chemical equilibrium system in constant environmental conditions, the same equilibrium concentration are reached regardless of reaction direction
system will eventually reach equilibrium
What are the characteristics that best describe the character? Type them here.