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Title: Acid/Base Review


1
Acid/Base Review
  • Honors Chemistry

2
What is the name of H2SO3?
  1. Hyposulfuric acid
  2. Hydrosulfuric acid
  3. Sulfuric acid
  4. Sulfurous acid
  5. Hydrosulfite acid

3
What is the property of a base?
  1. Bitter taste
  2. Watery feel
  3. Strong color
  4. Unreactive
  5. nonelectrolyte

4
What is the charge on the hydronium ion?
  1. 2-
  2. 1-
  3. 0
  4. 1
  5. 2

5
If the hydroxide ion concentration is 10-10M,
what is the pH of the solution?
  1. 1
  2. 4
  3. 7
  4. 10
  5. 14

6
If the pH is 9, what is the concentration of
hydroxide ion?
  1. 10-1 M
  2. 10-5 M
  3. 10-7 M
  4. 10-8 M
  5. 10-14M

7
How many free hydrogen ions are there in one
liter of water?
  1. None, they are all hydrated
  2. Approximately 10-7 mol
  3. Approximately 10-1 mol
  4. Approximately 100 mol

8
A liter of impure water has 10-4 mol of hydroxide
ions. What is the concentration of hydronium
ions in this sample of water?
  1. 10 -4 M
  2. 10 -10 M
  3. 10 7 M
  4. No determination can be made from the information
    given

9
What is the concentration of hydronium ions in a
neutral solution
  1. 10 M
  2. 10 -10 M
  3. 10 -7 M
  4. No determination can be made from the information
    given

10
For a solution to be classified as acidic, the
  1. hydrogen-ion concentration must be 10 -7 M.
  2. hydrogen-ion and hydroxide-ion concentration must
    be equal
  3. hydrogen-ion concentration must be greater that
    the hydroxide-ion concentration
  4. hydrogen-ion concentration must be 7M or greater

11
A solution in which the hydroxide-ion
concentration is 1 x 10 4 M is_________?
  1. Acidic
  2. Basic
  3. Neutral
  4. None of the above

12
Which of these solutions is the most basic?
  1. H 1 x 10 2 M
  2. OH 1 x 10 4 M
  3. H 1 x 10 11 M
  4. OH 1 x 10 13 M

13
In a neutral solution, the H is ___?
  1. 10-14 M
  2. Zero
  3. 1 x 107 M
  4. Equal to OH-

14
What is the pH when the hydrogen ion
concentration is 7.0 x 10 3 M
  1. 1.9
  2. 2.2
  3. 3
  4. 4

15
An indicator is what type of compound?
  1. Oxidizing agent
  2. Weak base or acid
  3. Strong base or acid
  4. Salt
  5. Reducing agent

16
What is an acid according to Arrhenius?
  1. A substance that ionizes to yield protons in
    aqueous solutions
  2. A substance that is a hydrogen ion donor
  3. A substance that accepts an electron pair
  4. A substance that is a hydrogen ion acceptor
  5. A substance that donates an electron pair

17
Which of these is an Arrhenius base?
  1. LiOH
  2. NH3
  3. H2PO4-
  4. HC2H3O2

18
What is transferred between a conjugate acid-base
pair?
  1. An electron
  2. A proton
  3. A hydroxide ion
  4. A hydronium ion

19
What is the term used to describe a substance
that can be both an acid and a base?
  • amphoteric
  • amphoprotric
  • Bronsted acid / base
  • Arrhenius acid / base

20
In the reaction, NH4 H20 ? NH4 H30, water
behaves as a(n)
  1. Arrhenius acid
  2. Arrhenius base
  3. Bronsted-Lowry acid
  4. Bronsted-Lowry base

21
In the reaction, CO32- H20 ? HC03- OH-, the
carbonate ion behaves as a(n)
  1. Arrhenius acid
  2. Arrhenius base
  3. Bronsted-Lowry acid
  4. Bronsted-Lowry base

22
Which of the following represents a
Bronsted-Lowry conjugate acid- base pair?
  1. SO32- and SO2
  2. CO32- and CO
  3. H30 and H2
  4. NH4 and NH3

23
What is an acid, according to Lewis?
  1. A substance that ionizes to yield protons in
    aqueous solution
  2. A substance that is a hydrogen ion donor
  3. A substance that accepts an electron pair
  4. A substance that is a hydrogen ion acceptor
  5. A substance that donates an electron pair

24
What is the concentration of hydrochloric acid
if 20.0 ml of acid is neutralized by 30.0 ml of
0.20 N sodium hydroxide?
  1. 0.06M
  2. 0.14 M
  3. 0.30 M
  4. 0.60 M

25
How many milliliters of 0.20N NaOH are required
to neutralize 30.0 mL of 0.50N HCI?
  1. 12 mL
  2. 50 mL
  3. 75 mL
  4. 100 mL

26
How many grams of sodium hydroxide are in 500 mL
of a 0.1N NaOH solution?
  1. 2 g
  2. 4 g
  3. 20 g
  4. 40 g

27
What does a buffer do?
  1. Keeps the pH of a solution constant
  2. Keeps the salt concentration of a solution
    constant
  3. Keeps the sodium concentration constant
  4. Keeps the chloride concentration constant
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