Glencoe Physical Science 2012 Student Edition (Glencoe Science) (McGraw-Hill Education)
Glencoe Physical Science 2012 Student Edition (Glencoe Science) (McGraw-Hill Education)
1st Edition
ISBN: 9780078945830
Author: Charles William McLaughlin, Marilyn Thompson, Dinah Zike
Publisher: Glencoe Mcgraw-Hill
Question
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Chapter 22.2, Problem 7R
To determine

To Compare: A dilute solution of a strong acid and a concentrated solution of a weak acid.

Expert Solution & Answer
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Explanation of Solution

Introduction: Acid is a substance which has a tendency to produce hydrogen ions when dissolved in water.

The number of H+ ions that an acid produces in an aqueous solution determines its strength. The greater the number of H+ ions produced in the aqueous solution, the stronger is the acid.

Acids which ionizes almost completely in aqueous solutions producing a large number of H+ ions are termed as strong acids.

Acids which ionizes to a small degree at ordinary dilution to give low concentration of H+ ions are termed as weak acids.

Therefore, greater the degree of dissociation of the acid, the stronger is the acid.

The concentration of a solution is related to the amount of acid dissolved in the solution.

On diluting an acid, the ionization of an acid increases therefore, concentration of H+ ions or H3O+ ions increase. Thus, the strength of any acid increases with dilution.

A strong acid produces a large number of H+ ions. On dilution, it will produce more number of H+ ions. Thus a strength of a strong acid increases on dilution.

However, a concentrated solution of a weak acid produces a low concentration of H+ ions as the acid dissociates only partially in the given aqueous solution.

Therefore, the acidic strength of a dilute solution of a strong acid is more than a concentrated solution of a weak acid.

Conclusion: A dilute solution of a strong acid is more acidic than a concentrated solution of a weak acid.

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