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Chemistry 1 NO(g)+O3(g)O2(g)+NO2(g) Kc=6.010 to the 34 2 O2(g)2O(g) Kc=1.710 to the 8 3 N2(g)+3H2(g)2NH3(g) Kc=60 4 PCl5(g)PCl3(g)+Cl2(g)Kc=0.
0.40
Record all values with 3 digits. Include either a + or - sign.
5)
Consider the following equilibrium:
2NO2(g)⇋2NO(g)+O2(g)
Initially, 0.600 mol of NO2 is placed in a 1.00 L flask. At equilibrium, the concentration of NO was found to be 0.460 mol/L.
The equilibrium law expression would be
7) c
Consider the following equilibrium system
2CO(g)+O2(g)⇋2CO2(gKc=4.0×10−10
At equilibrium, this mixture contains
Select one:
3/5 reactants and 2/5 products
mostly products
equal amounts of reactants and products
mostly reactants
11) Consider the following equilibrium system:
CO(g)+H2O(g)⇆CO2(g)+H2(g) Kc=5.0
At equilibrium, a 2.0 L container was found to contain 0.20 mol of CO(g), 0.30 mol of H2O(g), and 0.90 mol of H2(g).
The equilibrium amount of carbon dioxide is calculated to be
Answer
mol.
12) Use the following information to answer the next question.
Consider the following equilibrium system:
CO(g)+Cl2(g)⇋COCl2(g) K=1.5×10 to the−3ΔrH=−108.3kJ
Which of the following changes would cause a change in the Kc value?
Select one:
adding more reactants
increasing the pressure by decreasing the volume
heating or cooling the system
adding a catalyst
13) Consider the following equilibrium:
4HCl(g)+O2(g)⇆2H2O(g)+2Cl2(g) Kc=357
An equilibrium mixture of the above system was found to contain the following concentrations: HCl(g) = 0.35 mol/L, O2(g) = 0.078 mol/L and H2O(g) =1.2 mol/L. The equilibrium concentration of Cl2(g) is calculated to be
Answer
mol/L
14) Consider the following system:
2NO(g)+Cl2(g)⇋2NOCl(g)Kc=4.7×103
A sample mixture is tested and it is determined to contain all three entities in the following concentrations:
2NO(g)=0.53 mol/L
Cl2(g)=0.11 mol/L
2NOCl(g)=0.021 mol/L
From this information it can be inferred that the system
Select one:
is at equilibrium.
is not at equilibrium and the system needs to move in the reverse direction to reach equilibrium.
is not at equilibrium and the system needs to move in the forward direction to reach equilibrium.
is not at equilibrium but no further analysis can be done without knowing the initial concentrations.