Introductory Chemistry: A Foundation
Introductory Chemistry: A Foundation
8th Edition
ISBN: 9781285199030
Author: Steven S. Zumdahl, Donald J. DeCoste
Publisher: Cengage Learning
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Chapter 15, Problem 129AP

What volume of 0.250 M HCI is required to neutralize each of the following solutions?

a. 25.0 mL of 0.103 M sodium hydroxide, NaOH

b. 50.0 mL of 0.00501 M calcium hydroxide, Ca(OH)2

c. 20.0 mL of 0.226 M ammonia, NH3

d. 15.0 mL of 0.0991 M potassium hydroxide, KOH

Expert Solution
Check Mark
Interpretation Introduction

(a)

Interpretation:

The volume of 0.250MHCl required to neutralize 25.0mL of 0.103MNaOH is to be calculated.

Concept Introduction:

Neutralization is the process in which an acid and a base react with each other to give salt and water. The general reaction of acid and base is represented as:

AH+BOHAB+H2O

The molarity of a solution is defined as the number of moles of solute dissolved in one liter of the solution. The formula for molarity is given as:

M=nV

Where,

  • n represents the number of moles of the solute.
  • V represents the volume of the solution.

Answer to Problem 129AP

The volume of 0.250MHCl required to neutralize 25.0mL of 0.103MNaOH is 10.3mL.

Explanation of Solution

The molarity of the given HCl solution is 0.250M.

The molarity of the given NaOH solution is 0.103M.

The volume of the 0.103MNaOH is 25.0mL.

The neutralization reaction between HCl and NaOH is represented as:

HClaq+NaOHaqNaClaq+H2Ol

The relation between molarities of HCl and NaOH is given as:

M1V1=M2V2

Where,

  • M1 represents the molarity of HCl.
  • V1 represents the volume of HCl.
  • M2 represents the molarity of NaOH.
  • V2 represents the volume of NaOH.

Rearrange the above equation for the value of V1.

V1=M2V2M1

Substitute the value M1, M2 and V2 in the above equation.

V1=0.103M25.0mL0.250M=10.3mL

Therefore, volume of 0.250MHCl required to neutralize 25.0mL of 0.103MNaOH is 10.3mL.

Expert Solution
Check Mark
Interpretation Introduction

(b)

Interpretation:

The volume of 0.250MHCl required to neutralize 50.0mL of 0.00501MCaOH2 is to be calculated.

Concept Introduction:

Neutralization is the process in which an acid and a base react with each other to give salt and water. The general reaction of acid and base is represented as:

AH+BOHAB+H2O

The molarity of a solution is defined as the number of moles of solute dissolved in one liter of the solution. The formula for molarity is given as:

M=nV

Where,

  • n represents the number of moles of the solute.
  • V represents the volume of the solution.

Answer to Problem 129AP

The volume of 0.250MHCl required to neutralize 50.0mL of 0.00501MCaOH2 is 2.004mL.

Explanation of Solution

The molarity of the given HCl solution is 0.250M.

The molarity of the given CaOH2 solution is 0.00501M.

The volume of the 0.00501MCaOH2 is 50.0mL.

The neutralization reaction between HCl and CaOH2 is represented as:

2HClaq+CaOH2aqCaCl2aq+2H2Ol

The relation between molarities of HCl and CaOH2 is given as:

M1V1=2M2V2

Where,

  • M1 represents the molarity of HCl.
  • V1 represents the volume of HCl.
  • M2 represents the molarity of CaOH2.
  • V2 represents the volume of CaOH2.

Rearrange the above equation for the value of V1.

V1=2M2V2M1

Substitute the value M1, M2 and V2 in the above equation.

V1=20.00501M50.0mL0.250M=2.004mL

Therefore, volume of 0.250MHCl required to neutralize 50.0mL of 0.00501MCaOH2 is 2.004mL.

Expert Solution
Check Mark
Interpretation Introduction

(c)

Interpretation:

The volume of 0.250MHCl required to neutralize 20.0mL of 0.226MNH3 is to be calculated.

Concept Introduction:

Neutralization is the process in which an acid and a base react with each other to give salt and water. The general reaction of acid and base is represented as:

AH+BOHAB+H2O

The molarity of a solution is defined as the number of moles of solute dissolved in one liter of the solution. The formula for molarity is given as:

M=nV

Where,

  • n represents the number of moles of the solute.
  • V represents the volume of the solution.

Answer to Problem 129AP

The volume of 0.250MHCl required to neutralize 20.0mL of 0.226MNH3 is 18.08mL.

Explanation of Solution

The molarity of the given HCl solution is 0.250M.

The molarity of the given NH3 solution is 0.226M.

The volume of the 0.226MNH3 is 20.0mL.

The neutralization reaction between HCl and NH3 is represented as:

HClaq+NH3aqNH4Claq

The relation between molarities of HCl and NH3 is given as:

M1V1=M2V2

Where,

  • M1 represents the molarity of HCl.
  • V1 represents the volume of HCl.
  • M2 represents the molarity of NH3.
  • V2 represents the volume of NH3.

Rearrange the above equation for the value of V1.

V1=M2V2M1

Substitute the value M1, M2 and V2 in the above equation.

V1=0.226M20.0mL0.250M=18.08mL

Therefore, volume of 0.226MNH3 required to neutralize 20.0mL of 0.226MNH3 is 18.08mL.

Expert Solution
Check Mark
Interpretation Introduction

(d)

Interpretation:

The volume of 0.250MHCl required to neutralize 15.0mL of 0.0991MKOH is to be calculated.

Concept Introduction:

Neutralization is the process in which an acid and a base react with each other to give salt and water. The general reaction of acid and base is represented as:

AH+BOHAB+H2O

The molarity of a solution is defined as the number of moles of solute dissolved in one liter of the solution. The formula for molarity is given as:

M=nV

Where,

  • n represents the number of moles of the solute.
  • V represents the volume of the solution.

Answer to Problem 129AP

The volume of 0.250MHCl required to neutralize 15.0mL of 0.0991MKOH is 7.928mL.

Explanation of Solution

The molarity of the given HCl solution is 0.250M.

The molarity of the given KOH solution is 0.0991M.

The volume of the 0.0991MKOH is 15.0mL.

The neutralization reaction between HCl and KOH is represented as:

HClaq+KOHaqKClaq+H2Ol

The relation between molarities of HCl and KOH is given as:

M1V1=M2V2

Where,

  • M1 represents the molarity of HCl.
  • V1 represents the volume of HCl.
  • M2 represents the molarity of KOH.
  • V2 represents the volume of KOH.

Rearrange the above equation for the value of V1.

V1=M2V2M1

Substitute the value M1, M2 and V2 in the above equation.

V1=0.0991M20.0mL0.250M=7.928mL

Therefore, volume of 0.250MHCl required to neutralize 15.0mL of 0.0991MKOH is 7.928mL.

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Chapter 15 Solutions

Introductory Chemistry: A Foundation

Ch. 15.8 - ercise 15.10 Calculate the normality of a solution...Ch. 15.8 - Prob. 15.11SCCh. 15 - ou have a solution of table sail in water. What...Ch. 15 - onsider a sugar solution (solution A) with...Ch. 15 - You need to make 150.0 mL of a 0.10 M NaCI...Ch. 15 - ou have two solutions containing solute A. To...Ch. 15 - m>5. Which of the following do you need to know to...Ch. 15 - onsider separate aqueous solutions of HCI and...Ch. 15 - Prob. 7ALQCh. 15 - an one solution have a greater concentration than...Ch. 15 - Prob. 9ALQCh. 15 - You have equal masses of different solutes...Ch. 15 - Which of the following solutions contains the...Ch. 15 - As with all quantitative problems in chemistry,...Ch. 15 - Prob. 13ALQCh. 15 - Prob. 14ALQCh. 15 - solution is a homogeneous mixture. Can you give an...Ch. 15 - ow do the properties of a nonhomogeneous...Ch. 15 - Prob. 3QAPCh. 15 - Prob. 4QAPCh. 15 - n Chapter 14. you learned that the bonding forces...Ch. 15 - n oil spill spreads out on the surface of water,...Ch. 15 - . The “Chemistry in Focus” segment Water, Water...Ch. 15 - Prob. 8QAPCh. 15 - Prob. 9QAPCh. 15 - Prob. 10QAPCh. 15 - A solution is a homogeneous mixture and, unlike a...Ch. 15 - Prob. 12QAPCh. 15 - How do we define the mass percent composition of a...Ch. 15 - Prob. 14QAPCh. 15 - Calculate the percent by mass of solute in each of...Ch. 15 - Calculate the percent by mass of solute in each of...Ch. 15 - Prob. 17QAPCh. 15 - Prob. 18QAPCh. 15 - A sample of an iron alloy contains 92.1 g Fe. 2.59...Ch. 15 - Consider the iron alloy described in Question 19....Ch. 15 - An aqueous solution is to be prepared that will be...Ch. 15 - Prob. 22QAPCh. 15 - A solution is to be prepared that will be 4.50% by...Ch. 15 - Prob. 24QAPCh. 15 - Prob. 25QAPCh. 15 - Hydrogen peroxide solutions sold in drugstores as...Ch. 15 - Prob. 27QAPCh. 15 - A solvent sold for use in the laboratory contains...Ch. 15 - Prob. 29QAPCh. 15 - Prob. 30QAPCh. 15 - What is a standard solution? Describe the steps...Ch. 15 - Prob. 32QAPCh. 15 - 33. For each of the following solutions, the...Ch. 15 - 34. For each of the following solutions, the...Ch. 15 - 35. For each of the following solutions, the mass...Ch. 15 - Prob. 36QAPCh. 15 - 37. A laboratory assistant needs to prepare 225 mL...Ch. 15 - Prob. 38QAPCh. 15 - 39. Standard solutions of calcium ion used to test...Ch. 15 - Prob. 40QAPCh. 15 - 41. If 42.5 g of NaOH is dissolved in water and...Ch. 15 - 42. Standard silver nitrate solutions are used in...Ch. 15 - Prob. 43QAPCh. 15 - Prob. 44QAPCh. 15 - Prob. 45QAPCh. 15 - Prob. 46QAPCh. 15 - Prob. 47QAPCh. 15 - 48. What mass of solute is present in 225 mL of...Ch. 15 - Prob. 49QAPCh. 15 - Prob. 50QAPCh. 15 - Prob. 51QAPCh. 15 - Strong acid solutions may have their concentration...Ch. 15 - Prob. 53QAPCh. 15 - Prob. 54QAPCh. 15 - Prob. 55QAPCh. 15 - Prob. 56QAPCh. 15 - Prob. 57QAPCh. 15 - Prob. 58QAPCh. 15 - Prob. 59QAPCh. 15 - 60. Suppose 325 in L of 0.150 M NaOH is needed for...Ch. 15 - 61. How much water must be added w 500. mL of...Ch. 15 - An experiment calls for 100. mL of 1.25 M HC1. All...Ch. 15 - Prob. 63QAPCh. 15 - 64. Generally only the carbonates of the Group I...Ch. 15 - 65. Many metal ions are precipitated from solution...Ch. 15 - 66. Calcium oxalate, CaCO4, is very insoluble in...Ch. 15 - 67. When aqueous solutions of lead(II) ion are...Ch. 15 - 68. Aluminum ion may be precipitated from aqueous...Ch. 15 - 69. What volume of 0.502 M NaOH solution would be...Ch. 15 - 70. What volume of a 0.500 M NaOH solution would...Ch. 15 - 71. A sample of sodium hydrogen carbonate solid...Ch. 15 - 72. The total acidity in water samples can be...Ch. 15 - Prob. 73QAPCh. 15 - Prob. 74QAPCh. 15 - Prob. 75QAPCh. 15 - Prob. 76QAPCh. 15 - 77. Explain why the equivalent weight of H2SO4 is...Ch. 15 - Prob. 78QAPCh. 15 - Prob. 79QAPCh. 15 - Prob. 80QAPCh. 15 - Prob. 81QAPCh. 15 - Prob. 82QAPCh. 15 - Prob. 83QAPCh. 15 - Prob. 84QAPCh. 15 - 85. How many milliliters of 0.50 N NaOH are...Ch. 15 - 86. What volume of 0.104 N H2SO4is required to...Ch. 15 - 87. What volume of 0.151 N NaOH is required to...Ch. 15 - Prob. 88QAPCh. 15 - 89. A mixture is prepared by mixing 50.0 g of...Ch. 15 - Prob. 90APCh. 15 - 91. Suppose 50.0 mL of 0.250 M CoCl2 solution is...Ch. 15 - Prob. 92APCh. 15 - 93. Calculate the mass of AgCl formed, and the...Ch. 15 - 94. Baking soda (sodium hydrogen carbonate....Ch. 15 - 95. Many metal ions form insoluble sulfide...Ch. 15 - Prob. 96APCh. 15 - Prob. 97APCh. 15 - Prob. 98APCh. 15 - Prob. 99APCh. 15 - Prob. 100APCh. 15 - Prob. 101APCh. 15 - You mix 225.0 mL of a 2.5 M HCl solution with...Ch. 15 - A solution is 0.1% by mass calcium chloride....Ch. 15 - Prob. 104APCh. 15 - Prob. 105APCh. 15 - A certain grade of steel is made by dissolving 5.0...Ch. 15 - Prob. 107APCh. 15 - Prob. 108APCh. 15 - Prob. 109APCh. 15 - Prob. 110APCh. 15 - How many moles of each ion are present in 11.7 mL...Ch. 15 - Prob. 112APCh. 15 - Prob. 113APCh. 15 - Prob. 114APCh. 15 - Concentrated hydrochloric acid is made by pumping...Ch. 15 - A large beaker contains 1.50 L of a 2.00 M...Ch. 15 - Prob. 117APCh. 15 - Prob. 118APCh. 15 - If 10. g of AgNO3 is available, what volume of...Ch. 15 - Prob. 120APCh. 15 - Calcium carbonate, CaCO3, can be obtained in a...Ch. 15 - Prob. 122APCh. 15 - How many milliliters of 18.0 M H2SO4 are required...Ch. 15 - Prob. 124APCh. 15 - When 10. L of water is added to 3.0 L of 6.0 M...Ch. 15 - You pour 150.0 mL of a 0.250 M lead(ll) nitrate...Ch. 15 - How many grams of Ba (NO3)2are required to...Ch. 15 - Prob. 128APCh. 15 - What volume of 0.250 M HCI is required to...Ch. 15 - Prob. 130APCh. 15 - Prob. 131APCh. 15 - Prob. 132APCh. 15 - How many milliliters of 0.105 M NaOH are required...Ch. 15 - Prob. 134APCh. 15 - Prob. 135APCh. 15 - Prob. 136APCh. 15 - Prob. 137CPCh. 15 - A solution is prepared by dissolving 0.6706 g of...Ch. 15 - What volume of 0.100 M NaOH is required to...Ch. 15 - Prob. 140CPCh. 15 - A 450.O-mL sample of a 0.257 M solution of silver...Ch. 15 - A 50.00-mL sample of aqueous Ca(OH)2 requires...Ch. 15 - When organic compounds containing sulfur are...Ch. 15 - Prob. 1CRCh. 15 - Prob. 2CRCh. 15 - Prob. 3CRCh. 15 - Prob. 4CRCh. 15 - Prob. 5CRCh. 15 - Prob. 6CRCh. 15 - Prob. 7CRCh. 15 - Prob. 8CRCh. 15 - Prob. 9CRCh. 15 - Prob. 10CRCh. 15 - Prob. 11CRCh. 15 - Without consulting your textbook, list and explain...Ch. 15 - What does “STP’ stand for? What conditions...Ch. 15 - Prob. 14CRCh. 15 - Prob. 15CRCh. 15 - Define the normal boiling point of water. Why does...Ch. 15 - Are changes in state physical or chemical changes?...Ch. 15 - Prob. 18CRCh. 15 - Prob. 19CRCh. 15 - Prob. 20CRCh. 15 - Define a crystalline solid. Describe in detail...Ch. 15 - Define the bonding that exists in metals and how...Ch. 15 - Prob. 23CRCh. 15 - Define a saturated solution. Does saturated mean...Ch. 15 - Prob. 25CRCh. 15 - When a solution is diluted by adding additional...Ch. 15 - Prob. 27CRCh. 15 - Prob. 28CRCh. 15 - Prob. 29CRCh. 15 - Prob. 30CRCh. 15 - Prob. 31CRCh. 15 - When calcium carbonate is heated strongly, it...Ch. 15 - If an electric current is passed through molten...Ch. 15 - Prob. 34CRCh. 15 - Prob. 35CRCh. 15 - Prob. 36CRCh. 15 - Prob. 37CRCh. 15 - Prob. 38CR
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