equilibrium
pH/pOH
more equilibrium
acids/bases
spontaneity
100

what is the equilibrium expression for the following equation 

2 H2 (g) + 2 FeO(s) -> 2 Fe(s) + 2 H2O(g)
 

Kc= [H2O]2/[H2]2

100

What is the pH of a 0.0235 M HCl solution?

1.629

100

Consider the equilibrium reaction: N2O4(g) ⇌ 2NO2(g)
Which of the following correctly describes the relationship between Kc and Kp for the reaction?


Kp=Kc(RT)

100

what is the periodic table trend for acid strength?

as you move to the right and down the periodic table, acid strength increases

100
how can you tell if a reaction is spontaneous based off delta G?

when delta g is negative

200

write the equilibrium expression for the following equation

3 H2 (g) + N2(g) ⇌ 2 NH3 (g)

[NH3]2/[H2]3[N2]

200

What is the pOH of a 0.0235 M HCl solution?

12.371

200

For the following reaction at equilibrium in a reaction vessel, which one of these changes would cause the
Iconcentration to increase?
2 NOI(g) ⇌ 2 NO(g) + I2(g)

add more NOI

200

Arrange the following in order of increasing acid strength: H2O, H2S, H2Se, H2Te

 H2O < H2S < H2Se < H2Te

200

For some reaction, delta H is negative and delta S is positive. is the reaction spontaneous or non spontaneous?

spontaneous 

300

The equilibrium 2 NO(g) + Cl2 (g) ⇌ 2 NOCl2 (g) is established at 500 K. An equilibrium mixture of the three gases has partial pressures of 0.095 atm, 0.171 atm, and 0.28 atm for NO, Cl2, and NOCl2, respectively. Calculate the value of Kp for this reaction at 500 K

51

300

What is the pH of a 6.50 x 10-3 M KOH solution?

11.813

300

Which of the following statements is correct if delta G° < 0?

a. K is greater than one, and the reaction favors reactants.
b. K is greater than one, and the reaction favors products
c. K is less than one, and the reaction favors reactants.
d. K is less than one, and the reaction favors products.

B

300

Arrange the following in order of increasing acid strength, HClO4 , HBrO2 , HIO2 , HClO3

HIO2 < HBrO2 < HClO3 < HClO4

300

what is the gibbs free energy equation?

delta g = delta H - TdeltaS

400

In which of these gas-phase equilibria is the yiel d of products increased by increasing the total pressure
on the reaction mixture?
a. CO(g) + H2O(g) ⇌ CO2 (g) + H2(g)
b. 2 NO(g) + Cl2 (g) ⇌ 2 NOCl(g)
c. 2 SO3 (g) ⇌ 2 SO2 (g) + O2 (g)
d. C(s) + CO2 (g) ⇌ 2 CO(g)

B

400

What is the pH of a 0.052 M NaOH solution?

12.72

400

Consider the following equilibrium process:
PCl5 (g) ⇌ PCl3(g) + Cl(g)
delta Hº = 92.5 kJ/mol.
Which one of the following statements is correct?
a. Kp at 800 K is smaller than Kp at 1,200 K.
b. Kp at 1,200 K is smaller than Kp at 800 K.
c. Temperature does not affect Kp .
d. Kp depends on total pressure as well as temperature.



A

400

what is the conjugate acid of HPO42-?

H2PO4-​​​
400

The value of K for a chemical reaction is 2.3 × 10-4 . Calculate deltaGºrxn at 25 ºC. Is the reaction spontaneous at this temperature?

no

500

given 

HF(aq) ⇌ H+(aq) + F-(aq)     K1 = 6.8 × 10-4 
H2C2O4 (aq) ⇌ 2 H+(aq) + C2O42-(aq) K2 = 3.8 × 10-6

find k for the following expression in terms of k1 and k2

C2O42-(aq) + 2 HF(aq) ⇌ 2 F-(aq) + H2C2O4 (aq)

[K1]2/[K2]

500

What is the pH of a 0.0035 M BaOH2 solution?

11.85

500

for 3H2(g)+ N2(g) -> 2NH3(g), and Kc=6x10-2, if 0.25 M Hand 0.05 NH3 are present at equilibrium, what is the equilibrium concentration of NH2?

2.7 M

500

what is the conjugate base of HCO3-

CO32-

500

Calculate K at 25 ºC given that deltaGºrxn = -25.3 kJ/mol. Is the reaction spontaneous at this temperature?

yes