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General Chemistry I - Module 7: Acids, Bases & pH Mastery

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Conquer your chemistry exam with this focused module covering acids, bases, pH calculations, and buffer solutions. Featuring 250+ practice questions with step-by-step solutions and expert rationales. Perfect for Portage Learning students who want to master acid-base chemistry, understand the Henderson-Hasselbalch equation, and ace their module 7 exam. Questions range from basic definitions to complex calculations—all with answers that explain the "why" behind each concept.

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Exam portage learning chem 103 general chemistry i
module 7 Newest Exam Preparation With Complete
Questions And Correct Answers With Rationales
Already Graded A+Brand New Version!!




1. What is the Arrhenius definition of a base?
A) A substance that produces OH⁻ ions in aqueous solution
B) A substance that produces H⁺ ions in aqueous solution
C) A substance that accepts a proton
D) A substance that donates an electron pair


Answer: A
Explanation: Svante Arrhenius defined bases as substances that
dissociate in water to produce hydroxide ions (OH⁻). Option B describes
an Arrhenius acid. Option C is the Brønsted-Lowry definition of a base.
Option D is the Lewis definition of a base.


2. According to the Brønsted-Lowry theory, an acid is a:
A) Proton donor

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B) Electron pair donor
C) Proton acceptor
D) Hydroxide ion producer


Answer: A
Explanation: The Brønsted-Lowry theory defines an acid as any species
that can donate a proton (H⁺ ion). Option B describes a Lewis base.
Option C describes a Brønsted-Lowry base. Option D describes an
Arrhenius base.


3. What is the pH of a 0.01 M solution of HCl?
A) 1.0
B) 2.0
C) 7.0
D) 12.0


Answer: B
Explanation: Hydrochloric acid (HCl) is a strong acid that dissociates
completely in water. Therefore, the concentration of H⁺ ions equals the
initial concentration of the acid, 0.01 M. pH = -log[H⁺] = -log(0.01) = 2.0.


4. Which of the following is the conjugate base of H₂SO₄?
A) HSO₄⁻

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B) H₃SO₄⁺
C) SO₄²⁻
D) OH⁻


Answer: A
Explanation: The conjugate base of an acid is formed by removing one
proton (H⁺) from the acid. Removing H⁺ from H₂SO₄ yields HSO₄⁻. Option
C would be the conjugate base of HSO₄⁻, not H₂SO₄.


5. What is the sum of pH and pOH for any aqueous solution at 25
degrees Celsius?
A) 14
B) 7
C) 10
D) 0


Answer: A
Explanation: At 25°C, the ion product constant of water (K_w) is 1.0 ×
10⁻¹⁴. Taking the negative logarithm of both sides of K_w = [H⁺][OH⁻]
yields pH + pOH = 14.


6. Which of the following is a polyprotic acid?
A) HCl

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B) HNO₃
C) CH₃COOH
D) H₂SO₄


Answer: D
Explanation: Polyprotic acids have more than one ionizable hydrogen
atom per molecule. Sulfuric acid (H₂SO₄) has two ionizable protons. HCl,
HNO₃, and CH₃COOH are all monoprotic acids.


7. If a solution has a pOH of 3.5, what is its pH?
A) 3.5
B) 7.0
C) 14.0
D) 10.5


Answer: D
Explanation: At 25°C, pH + pOH = 14. Therefore, pH = 14 - pOH = 14 - 3.5
= 10.5.


8. The equivalence point of a titration is defined as:
A) The point where the indicator changes color
B) The point where moles of acid equal moles of base
C) The point where the pH is exactly 7.0

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