AP Chemistry acids and buffers review

Review essential concepts of acids and buffers in AP Chemistry with flashcards and quizzes.

GraceKoala·21 schede·17 domande·1 visualizzazioni
APchemistrygeneral_chemistry
0
Lo so
1 / 21
0
Sto imparando
Fronte

What defines a strong acid?

Tocca per girare
Retro

A strong acid completely dissociates in water, producing H+ ions.

Tocca per girare
Lo so
Sto imparando

Quiz(17 domande)

Domanda 1 di 17

1. Which of the following is a strong acid?

Termini in questo set(21)

What defines a strong acid?

A strong acid completely dissociates in water, producing H+ ions.

True or false: Acetic acid is a strong acid.

False, because acetic acid is a weak acid.

Difference between strong and weak acids.

Strong acids fully dissociate, while weak acids partially dissociate in solution.

What is a buffer solution?

A buffer solution resists changes in pH upon the addition of small amounts of acid or base.

Fill the blank: The pH of a neutral solution at 25°C is _____ .

7.0

Question: How does a buffer work?

A buffer contains a weak acid and its conjugate base to neutralize added acids or bases.

What is the Henderson-Hasselbalch equation?

The equation is pH=pKa+logfrac[A][HA]\displaystyle pH = pK_a + \log{\\frac{[A^-]}{[HA]}}.

True or false: NH4Cl is a buffer.

False, because it does not contain a weak acid and its conjugate base.

What happens when you add strong acid to a buffer?

The weak base in the buffer reacts with the added H+, minimizing pH change.

Identify a characteristic of weak acids.

Weak acids have a pKa greater than 0 and do not fully dissociate.

Comparison: pH and pKa.

pH measures acidity; pKa is the acid dissociation constant, indicating strength.

What does the term 'conjugate base' mean?

The species that remains after an acid donates a proton (H+).

Fill the blank: The conjugate base of HCl is _____ .

Cl-

Question: How does adding a strong base to a buffer affect it?

The weak acid in the buffer reacts with the base, stabilizing pH.

Define the term 'acid dissociation constant' (Ka).

Ka quantifies the strength of an acid in solution; higher Ka indicates stronger acid.

What is the relationship between pKa and acid strength?

Lower pKa values correspond to stronger acids.

True or false: Buffers can only be made from weak acids.

True, because buffers require a weak acid and its conjugate base.

Fill the blank: The pH of a solution can be calculated from the concentration of _____ .

Hydronium ions, H3O+.

Question: What role does the conjugate acid play in buffering?

It neutralizes added bases, maintaining the pH of the solution.

Comparison: Strong vs. weak base.

Strong bases fully dissociate; weak bases do not.

What does it mean for an acid to be diprotic?

A diprotic acid can donate two protons (H+) per molecule.

Domande in questo set(17)

1. Which of the following is a strong acid?

A.HCl
B.CH3COOH
C.HF
D.H2CO3

2. What is the pH of a 0.01 M HCl solution?

A.1
B.2
C.3
D.4

3. Which buffer system maintains blood pH?

A.H2CO3/HCO3-
B.NH4+/NH3
C.CH3COOH/CH3COO-
D.NaHCO3/NaOH

4. Which statement is true regarding weak acids?

A.They have high pKa.
B.They fully dissociate.
C.They are always monoprotic.
D.They do not produce H+.

5. How do buffers resist changes in pH?

A.By increasing ion concentration
B.By having equal concentrations of acid and base
C.By reacting with added acids or bases
D.By changing their composition

6. Which of the following would NOT act as a buffer?

A.CH3COOH/CH3COO-
B.NH4+/NH3
C.NaCl/HCl
D.H2CO3/HCO3-

7. What is the effect of adding a strong acid to a buffer?

A.Increases pH
B.Decreases pH dramatically
C.Has minimal effect
D.Converts buffer to strong acid

8. Identify the conjugate base of H2SO4.

A.HSO4-
B.SO4^2-
C.H+
D.None of the above

9. Which compound can act as both acid and base?

A.H2O
B.NaOH
C.HCl
D.NH4+

10. What happens when a buffer solution is diluted?

A.pH increases
B.pH decreases
C.pH remains constant
D.Buffer capacity increases

11. How can you increase the pH of a buffer solution?

A.Add more weak acid
B.Add strong acid
C.Add more weak base
D.Dilute the buffer

12. What is the pKa of a strong acid?

A.Less than 0
B.Around 7
C.Greater than 14
D.Equal to 0

13. Which is NOT a characteristic of buffers?

A.Resist changes in pH
B.Contain weak acid/base
C.Change pH significantly
D.Effective at specific pH ranges

14. What is the primary role of HCO3- in the blood?

A.Transport oxygen
B.Act as a buffer
C.Provide nutrients
D.Regulate temperature

15. How does temperature affect the pKa of a weak acid?

A.pKa decreases with increasing temperature
B.pKa increases with increasing temperature
C.pKa remains constant
D.Temperature has no effect

16. What is the primary component of a phosphate buffer?

A.H2PO4-/HPO4^2-
B.NH4+/NH3
C.H2CO3/HCO3-
D.CH3COOH/CH3COO-

17. What does a higher concentration of H+ ions in a solution indicate?

A.Higher pH
B.Lower pH
C.Neutral pH
D.Basic solution

Set correlati

Crea il tuo set di studio

Carica un PDF, incolla le tue note o descrivi un argomento – l'IA genera schede, quiz e altro in pochi secondi.