12: Buffers, Titrations and pH Curves Flashcards

Acidic Buffers Basic Buffers pH Curves Indicators

1
Q

What is a buffer?

A

A solution that resists changes in pH when small amounts of acid or alkali are added.

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2
Q

Describe the pH of an acidic buffer.

A

Have a pH of less than 7.

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3
Q

What is contained in an acidic buffer?

A

A mixture of a weak acid and a salt of that weak acid.

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4
Q

What is contained in a basic buffer?

A

A mixture of a weak base and a salt of that base.

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5
Q

Give an equation for the dissociation of ethanoic acid (CH3COOH) .

A

CH3COOH (reversible) CH3COO- + H+

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6
Q

Give an example of a salt used in a buffer made of ethanoic acid.

A

CH3COONa

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7
Q

What happens when H+ is added to an acidic buffer?

A

Extra H+ ions combine with the CH3COO- ions.
This reduces the H+ ion concentration closely back to its original level causing pH to remain constant.

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8
Q

What happens when -OH is added to an acidic buffer?

A

Extra -OH ions combine with the CH3COO- ions and H+ to make water, so the -OH concentration is reduced back to its original level and pH remains constant.

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9
Q

If ammonia is used as a weak base, name the salt that would be present in the buffer.

A

NH4Cl

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10
Q

What does the salt do when in the solution of ammonia?

A

Dissociates fully.

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11
Q

Give an ionic equation for the dissociation of NH4Cl.

A

NH4Cl -> NH4+ + Cl-

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12
Q

Give an equation for the ammonia molecules NH3 reacting with water molecules.

A

NH3 + H2O (reversible) NH4+ + OH-

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13
Q

What happens when a small amount of acid is added to a basic buffer? (What forms?)
What happens to the equilibrium position?

A

The H+ concentration increases, increasing the acidity of the solution.
Some H+ ions react with the -OH ions to make H2O.
Equilibrium moves to the right to replace -OH ions that have been used up and remove the extra H+ added, keeping pH constant.

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14
Q

What happens when a small amount of base is added to a solution?
The additional -OH ions react with which part of the buffer solution to produce water?
What happens to position of equilibrium?

A

-OH concentration increases making the solution more alkaline.
NH4+ ions react with the extra -OH to form NH3 and H2O.
Equilibrium shifts left to remove -OH ions from the solution, preventing change in pH.

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15
Q

What happens when you dilute a buffer with water?

A

The water slightly dissociates so the extra H+ and -OH ions push the equilibrium the same amount in both directions leaving it unchanged.

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16
Q

Explain why biological washing powders use buffers.

A

They contain enzymes, so buffers help to maintain the optimum pH for the enzymes so they don’t denature.

17
Q

Why are buffers used in shampoos?

A

They increase the roughness of individual hairs surfaces to keep hair smooth and shiny.

18
Q

Give an example of why buffers are used in the body.

A

An optimum pH is needed in the blood to ensure cells can work correctly.

19
Q

Describe the shape of a pH curve with a strong acid, strong base.

A

Curve begins low and rises to 14

20
Q

Describe the shape of a pH curve with a strong acid, weak base.

A

Curve begins low and ends near pH 8/9

21
Q

Describe the shape of a pH curve with a weak acid, strong base.

A

Curve begins around pH 5 and ends around pH 14.

22
Q

Describe the shape of a pH curve with a weak acid, weak base.

A

pH starts around 5 and ends around pH 9.

23
Q

Describe the shape of a pH curve with a strong base, strong acid.

A

Curve starts at pH 14 and ends at pH 0.

24
Q

Describe the shape of a pH curve with a strong base, weak acid.

A

Curve starts at pH 14 and ends at pH 5.

25
Q

Describe the shape of a pH curve with a weak base, strong acid.

A

Curve starts around pH 8 and ends around pH 1.

26
Q

Describe the shape of a pH curve with a weak base, weak acid.

A

Curve begins around pH 9 and ends at pH 5.

27
Q

What is the midpoint on the vertical section of the pH curve called?

A

Equivalence point.

28
Q

What is the equivalence point?

A

The point when the base or acid completely neutralises the solution.

29
Q

How do you select the correct indicator needed for a titration?

A

The indicators pH range must fall within the vertical section on a pH curve.