Chemistry & Chemical Reactivity
Chemistry & Chemical Reactivity
10th Edition
ISBN: 9781337399074
Author: John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher: Cengage Learning
bartleby

Videos

Question
Book Icon
Chapter 20, Problem 48GQ

(a)

Interpretation Introduction

Interpretation: The pH at which [H2CO3]=[HCO3-] should be determined using the given graph.

Concept introduction:

Ocean acidification: The increase in concentration of carbon-dioxide in the atmosphere leads to ocean acidification. The amount is increasing day by day and this increase will lead to higher concentrations of dissolved CO2 and as a result the amount of carbonic acid also will be higher.

The concentration of hydronium ion is a key factor for many biochemical reactions. So variation may affect the organisms in the oceans.

The relationship between ocean pH and atmospheric CO2 is that they are inversely proportional. The hydrogen ion concentration will be increased as the concentration of dissolved CO2 increases and thus pH will be decreased.

(a)

Expert Solution
Check Mark

Answer to Problem 48GQ

The pH at which the [H2CO3]=[HCO3-] is approximately 6.4

Explanation of Solution

If the concentration of dissolved CO2 is increased, then the pH will be decreased as a result of the increase in concentration of hydrogen ion.

The graph showing the fraction of species in the solution as a function of pH is given below.

Chemistry & Chemical Reactivity, Chapter 20, Problem 48GQ , additional homework tip  1

From the graph we can identify the pH at which the [H2CO3]=[HCO3-]

The fraction of dissociation will be 0.50 when the concentration of both the species will be equal.

The pH corresponding to the equal concentration is approximately 6.4 from the graph.

(b)

Interpretation Introduction

Interpretation: The pH at which the [HCO3-]=[CO32-] should be determined using the given graph.

Concept introduction:

Ocean acidification: The increase in concentration of carbon-dioxide in the atmosphere leads to ocean acidification. The amount is increasing day by day and this increase will lead to higher concentrations of dissolved CO2 and as a result the amount of carbonic acid also will be higher.

The concentration of hydronium ion is a key factor for many biochemical reactions. So variation may affect the organisms in the oceans.

The relationship between ocean pH and atmospheric CO2 is that they are inversely proportional. The hydrogen ion concentration will be increased as the concentration of dissolved CO2 increases and thus pH will be decreased.

(b)

Expert Solution
Check Mark

Answer to Problem 48GQ

The pH at which the [HCO3-]=[CO32-] is approximately 10.3

Explanation of Solution

If the concentration of dissolved CO2 is increased, then the pH will be decreased as a result of the increase in concentration of hydrogen ion.

The graph showing the fraction of species in the solution as a function of pH is given below.

Chemistry & Chemical Reactivity, Chapter 20, Problem 48GQ , additional homework tip  2

From the graph we can identify the pH at which the [HCO3-]=[CO32-]

The fraction of dissociation will be 0.50 when the concentration of both the species will be equal.

The pH corresponding to the equal concentration is approximately 10.3 from the graph.

(c)

Interpretation Introduction

Interpretation: The predominant species in the solution when the pH is 8 should be determined.

Concept introduction:

Ocean acidification: The increase in concentration of carbon-dioxide in the atmosphere leads to ocean acidification. The amount is increasing day by day and this increase will lead to higher concentrations of dissolved CO2 and as a result the amount of carbonic acid also will be higher.

The concentration of hydronium ion is a key factor for many biochemical reactions. So variation may affect the organisms in the oceans.

The relationship between ocean pH and atmospheric CO2 is that they are inversely proportional. The hydrogen ion concentration will be increased as the concentration of dissolved CO2 increases and thus pH will be decreased.

(c)

Expert Solution
Check Mark

Answer to Problem 48GQ

The predominant species in the solution when the pH is 8 is [HCO3-].

Explanation of Solution

If the concentration of dissolved CO2 is increased, then the pH will be decreased as a result of the increase in concentration of hydrogen ion.

The graph showing the fraction of species in the solution as a function of pH is given below.

Chemistry & Chemical Reactivity, Chapter 20, Problem 48GQ , additional homework tip  3

When the pH 8, H2CO3 and CO32- will be minimum and the [HCO3-] will be maximum.

From the graph it is clear that, the predominant species when the pH is 8 is [HCO3-].

(d)

Interpretation Introduction

Interpretation: The predominant species in the solution when the pH7 should be determined.

Concept introduction:

Ocean acidification: The increase in concentration of carbon-dioxide in the atmosphere leads to ocean acidification. The amount is increasing day by day and this increase will lead to higher concentrations of dissolved CO2 and as a result the amount of carbonic acid also will be higher.

The concentration of hydronium ion is a key factor for many biochemical reactions. So variation may affect the organisms in the oceans.

The relationship between ocean pH and atmospheric CO2 is that they are inversely proportional. The hydrogen ion concentration will be increased as the concentration of dissolved CO2 increases and thus pH will be decreased.

(d)

Expert Solution
Check Mark

Answer to Problem 48GQ

The predominant species in the solution when the pH is 7 is [HCO3-].

Explanation of Solution

If the concentration of dissolved CO2 is increased, then the pH will be decreased as a result of the increase in concentration of hydrogen ion.

The graph showing the fraction of species in the solution as a function of pH is given below.

Chemistry & Chemical Reactivity, Chapter 20, Problem 48GQ , additional homework tip  4

When the pH is 7, the fraction of species is more for HCO3-.

From the graph it is clear that, the predominant species when the pH is 7 is [HCO3-].

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
A weak acid, HA, has a pKa = 6.2.  If a solution of NaA(aq) is prepared, what does the pH of the solution need to be adjusted to in order to achieve the following ratios of deprotonated to protonated species? 1) [A-] / [HA] = 0.01 2) [A-] / [HA] = 10 3) [A-] / [HA] = 1 4) [A-] / [HA] = 106 Note: NaA is the sodium salt of , the conjugate base of HA.  Assume NaA completely dissociates in water.
At what pH would 95% of the free chlorine (HOCI + OCI) concentration be in the form of hypochlorous acid, HOCI?Assume pKA = 7.6.
Hydrogen peroxide (H2O2) can also form as a by-product during free radical oxidation reactions. H2O2 possesses a pKa value of 11.6. Based on this information, calculate the pH of a 1.80 L aqueous solution if 28 g of H2O2 is formed in a reaction.

Chapter 20 Solutions

Chemistry & Chemical Reactivity

Knowledge Booster
Background pattern image
Chemistry
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781337399074
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Text book image
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
What are CHNOPS? These Chemical Elements = 98% of Life | Biology | Biochemistry; Author: Socratica;https://www.youtube.com/watch?v=w90wFlR53VM;License: Standard YouTube License, CC-BY