BUFFER SYSTEMS
REVERSIBLE REACTIONS
DYNAMIC EQUILIBRIUM
Kc
CHALLENGE
FACTORS AFFECTING EQUILIBRIUM
100

What does a buffer resist?

Sudden changes in pH.

100

What does the symbol ⇌\rightleftharpoons⇌ indicate?

A reversible reaction.

100

What is the defining condition of dynamic equilibrium?

The forward and reverse reaction rates are equal.

100

For: 2A⇌B, write the Kc expression. 

Kc=[B]/[A]2

100

What happens when more reactant is added to an equilibrium system?

The system shifts toward the products.

200

In the reaction: HA⇌H++A−  which species reacts with added H+

A, the conjugate base.

200

What is the reverse reaction?

The reaction that converts products back into reactants.

200

Does a reaction stop when equilibrium is reached?

No

200

For: 2SO2+O2⇌2SO3, write the Kc expression.

Kc=[SO3]2/[SO2]2[O2]

200

What happens when a product is removed?

The system shifts toward the products.

300

Which component of a buffer reacts with added OH-?

The weak acid.

300

Can a reversible reaction occur in both directions at the same time?

Yes.

300

What remains constant at equilibrium?

The concentrations of reactants and products.

300

If Kc=100, which side is favored?

The product side.

300

For an endothermic reaction, what happens when temperature increases?

The equilibrium shifts toward the products.

400

What happens to the pH of a buffer when a small amount of acid is added?

The pH changes only slightly.

400

What happens to the forward and reverse reaction rates as equilibrium is approached?

They become closer until they are equal.

400

What kind of system is generally needed to establish chemical equilibrium?

A closed system.

400

If Kc=0.0005  which side is favored?

The reactant side.

400

For an exothermic reaction, what happens when temperature increases?

The equilibrium shifts toward the reactants.

500

Why does a buffer resist pH changes?

Its components react with added H+ or OH

500

Why does a reversible reaction not necessarily convert all reactants into products?

The reverse reaction also occurs and may eventually balance the forward reaction.

500

Explain why equilibrium does not mean that the amounts of reactants and products are equal.

Equilibrium means equal reaction rates, not necessarily equal concentrations.

500

Why are pure solids and pure liquids omitted from equilibrium expressions?

Their concentrations remain essentially constant.

500

For:N2(g)+3H2(g)⇌2NH3(g), what happens when pressure increases? 

The equilibrium shifts toward NH3, the side with fewer gas particles.