Bundle: Chemistry: An Atoms First Approach, Loose-leaf Version, 2nd + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card
Bundle: Chemistry: An Atoms First Approach, Loose-leaf Version, 2nd + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card
2nd Edition
ISBN: 9781337086431
Author: Steven S. Zumdahl, Susan A. Zumdahl
Publisher: Cengage Learning
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Textbook Question
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Chapter 12, Problem 54E

At 25°c, K = 0.090 for the reaction

H 2 O ( g ) + Cl 2 O ( g ) 2 HOCI ( g )

Calculate the concentrations of all species at equilibrium for each of the following cases.

a. 1.0 g H2O and 2.0 g Cl2O are mixed in a 1.0-L flask.

b. 1.0 mole of pure HOCI is placed in a 2.0-L flask.

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The value of the equilibrium constant for the reaction between H2O and Cl2O and the initial mass of the species involved is given. The equilibrium concentrations of the three gases involved in the system are to be calculated.

Concept introduction: The state when the reactants involved in a chemical reaction and the products formed in the reaction exist in concentrations having no further tendency to change is known as an equilibrium state of the reaction. When the equilibrium constant is expressed in terms of concentration, it is represented as K .

To determine: The equilibrium concentrations of the three gases involved in the system

Answer to Problem 54E

The equilibrium concentrations of the three gases are calculated as follows.

Explanation of Solution

Given

The stated reaction is,

H2O(g)+Cl2O(g)2HOCl(g)

The initial mass of H2O(g) is 1.0g .

The initial mass of Cl2O(g) is 2.0g .

The equilibrium constant (K) value is 0.090 .

The volume of the container is 1.00L .

The molar mass of H2O=2H+O=2(1)+16=18g/mol

The molar mass of Cl2O=2Cl+O=2(35.5)+16=87g/mol

Formula

The number of moles of a substance is calculated by the formula,

Numberofmoles=GivenmassMolarmass

Substitute the values of the given mass and molar mass of H2O and Cl2O in the above expression.

For H2O ,

NumberofmolesofH2O=1.0g18.0g/mol=0.056mol

For Cl2O ,

NumberofmolesofCl2O=2.0g87.0g/mol=0.023mol

The concentration of a reactant is calculated by the formula,

Concentration=MolesVolume(L)

The initial concentration of H2O is calculated by the formula,

ConcentrationofH2O=MolesofH2OVolumeoftheflask(L)

Substitute the given values of the number of moles of H2O and the volume of the flask in the above expression.

ConcentrationofH2O=0.056moles1.00L=0.056M

The initial concentration of Cl2O is calculated by the formula,

ConcentrationofCl2O=MolesofCl2OVolumeoftheflask(L)

Substitute the given values of the number of moles of Cl2O and the volume of the flask in the above expression.

ConcentrationofCl2O=0.023moles1.00L=0.023M

To determine: The equilibrium concentrations of the three gases involved in the system.

Explanation:

The concentration of H2O and Cl2O consumed is assumed to be x .

The equilibrium concentrations are represented as,

H2O(g)+Cl2O(g)2HOCl(g)Initialconcentration0.0560.0230Change-x-x+2xEquilibriumconcentration0.056-x0.023-x2x

At equilibrium, the equilibrium ratio is expressed by the formula,

K=ConcentrationofproductsConcentrationofreactants

Where,

  • K is the equilibrium constant.

The equilibrium ratio for the given reaction is,

K=[HOCl]2[H2O][Cl2O] (1)

According to the formulated ICE table,

The equilibrium concentration of H2O(g) is (0.056x)M .

The equilibrium initial concentration of Cl2O(g) is (0.023x)M .

The equilibrium initial concentration of HOCl(g) is (2x)M .

Substitute these values in equation (1).

K=[HOCl]2[H2O][Cl2O]K=[2x]2[0.056x][0.023x]

The given value of K is 0.090 .

Substitute the value of K in the above expression.

0.090=[2x]2[0.056x][0.023x]

Simplify the above expression.

0.090=[2x]2[0.056x][0.023x](0.09x20.00711x+0.00011592)=4x2(3.91x20.007x+0.00011592)=0

Comparing this with the general quadratic equation, ax2+bx+c=0 .

In the obtained equation,

  • a is 3.91 .
  • b is 0.007 .
  • c is 0.00011592 .

The formula to calculate the value of x is,

x=b±b24ac2a

Substitute the values of a,b and c in the above expression.

x=(0.007)±(0.007)24(3.91)(0.00011592)2(3.91)x=0.0046M

The equilibrium concentration of H2O(g) is calculated by the formula,

EquilibriumconcentrationofH2O(g)=(0.056x)

Substitute the calculated value of x in the above expression.

EquilibriumconcentrationofH2O(g)=(0.056x)=(0.05600.0046)M=0.0514M_

The equilibrium concentration of Cl2O(g) is calculated by the formula,

EquilibriumconcentrationofCl2O(g)=(0.023x)

Substitute the calculated value of x in the above expression.

EquilibriumconcentrationofCl2O(g)=(0.023x)=(0.0230.0046)M=0.0184M_

The equilibrium concentration of HOCl(g) is calculated by the formula,

EquilibriumconcentrationofHOCl(g)=(2x)

Substitute the calculated value of x in the above expression.

EquilibriumconcentrationofHOCl(g)=(2x)=(2(0.0046))M=0.0092M_

Conclusion

The equilibrium concentration of H2O(g) 0.0514M_ and Cl2O(g) is 0.0184M_ and of HOCl(g) is 0.0092M_ .

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The value of the equilibrium constant for the reaction between H2O and Cl2O and the initial mass of the species involved is given. The equilibrium concentrations of the three gases involved in the system are to be calculated.

Concept introduction: The state when the reactants involved in a chemical reaction and the products formed in the reaction exist in concentrations having no further tendency to change is known as an equilibrium state of the reaction. When the equilibrium constant is expressed in terms of concentration, it is represented as K .

To determine: The equilibrium concentrations of the three gases involved in the system.

Answer to Problem 54E

The equilibrium concentrations of the three gases are calculated as follows.

Explanation of Solution

Given

The stated reaction is,

2HOCl(g)H2O(g)+Cl2O(g)

The initial moles of HOCl(g) are 1.0mole .

The value of K for this reaction will be 10.090 .

The volume of the container is 2.0L .

The concentration of a reactant is calculated by the formula,

Concentration=MolesVolume(L)

The initial concentration of HOCl is calculated by the formula,

ConcentrationofHOCl=MolesofHOClVolumeoftheflask(L)

Substitute the given values of the number of moles of HOCl and the volume of the flask in the above expression.

ConcentrationofHOCl=1.0mole2.00L=0.5M

The concentration of HOCl consumed is assumed to be 2x .

The equilibrium concentrations are represented as,

2HOCl(g)H2O(g)+Cl2O(g)Initialconcentration0.500Change-2x+x+xEquilibriumconcentration0.5-2xxx

At equilibrium, the equilibrium ratio is expressed by the formula,

K=ConcentrationofproductsConcentrationofreactants

Where,

  • K is the equilibrium constant.

The equilibrium ratio for the given reaction is,

K=[H2O][Cl2O][HOCl]2 (1)

According to the formulated ICE table,

The equilibrium concentration of H2O(g) is (x)M .

The equilibrium initial concentration of Cl2O(g) is (x)M .

The equilibrium initial concentration of HOCl(g) is (0.52x)M .

Substitute these values in equation (1).

K=[H2O][Cl2O][HOCl]2K=[x][x][0.52x]2

The value of K for this reaction will be 10.090 .

Substitute the value of K in the above expression.

10.090=[x]2[0.52x]2

Taking square root on both sides,

10.3=[x][0.52x]

Simplify the above expression.

0.3x=0.52xx=0.217

The equilibrium concentration of H2O(g) is equal to the equilibrium concentration of Cl2O(g) . These are equal to x .

The equilibrium concentration of H2O(g) is equal to the equilibrium concentration of Cl2O(g) , that is, 0.217M_ .

The equilibrium concentration of HOCl(g) is calculated by the formula,

EquilibriumconcentrationofHOCl(g)=(0.52x)

Substitute the calculated value of x in the above expression.

EquilibriumconcentrationofHOCl(g)=(0.52x)=(0.52(0.217))M=0.066M_

Conclusion

The equilibrium concentration of H2O(g) and Cl2O(g) is 0.217M_ and of HOCl(g) is 0.066M_

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Chapter 12 Solutions

Bundle: Chemistry: An Atoms First Approach, Loose-leaf Version, 2nd + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card

Ch. 12 - Consider an equilibrium mixture of four chemicals...Ch. 12 - The boxes shown below represent a set of initial...Ch. 12 - For the reactionH2(g)+I2(g)2HI(g), consider two...Ch. 12 - Prob. 4ALQCh. 12 - Consider the reaction A(g)+2B(g)C(g)+D(g) in a...Ch. 12 - Consider the reactionA(g)+B(g)C(g)+D(g). A friend...Ch. 12 - Prob. 7ALQCh. 12 - Prob. 8ALQCh. 12 - Prob. 9ALQCh. 12 - Prob. 10QCh. 12 - Consider the following reaction:...Ch. 12 - Prob. 12QCh. 12 - Suppose a reaction has the equilibrium constant K...Ch. 12 - Prob. 14QCh. 12 - Consider the following reaction at some...Ch. 12 - Prob. 16QCh. 12 - Prob. 17QCh. 12 - Prob. 18QCh. 12 - For a typical equilibrium problem, the value of K...Ch. 12 - Prob. 20QCh. 12 - Write the equilibrium expression (K) for each of...Ch. 12 - Write the equilibrium expression (Kp) for each...Ch. 12 - Prob. 23ECh. 12 - For the reaction H2(g)+Br2(g)2HBr(g) Kp = 3.5 104...Ch. 12 - Prob. 25ECh. 12 - At high temperatures, elemental nitrogen and...Ch. 12 - At a particular temperature, a 3.0-L flask...Ch. 12 - At a particular temperature a 2.00-L flask at...Ch. 12 - Prob. 29ECh. 12 - Prob. 30ECh. 12 - Prob. 31ECh. 12 - Prob. 32ECh. 12 - Prob. 33ECh. 12 - Write expressions for Kp for the following...Ch. 12 - Prob. 35ECh. 12 - Prob. 36ECh. 12 - Prob. 37ECh. 12 - In a study of the reaction...Ch. 12 - The equilibrium constant is 0.0900 at 25C for the...Ch. 12 - The equilibrium constant is 0.0900 at 25C for the...Ch. 12 - At 900c, Kp = 1.04 for the reaction...Ch. 12 - Ethyl acetate is synthesized in a nonreacting...Ch. 12 - For the reaction 2H2O(g)2H2(g)+O2(g) K = 2.4 103...Ch. 12 - The reaction 2NO(g)+Br2(g)2NOBr(g) has Kp = 109 at...Ch. 12 - A 1.00-L flask was filled with 2.00 moles of...Ch. 12 - Prob. 46ECh. 12 - Prob. 47ECh. 12 - Prob. 48ECh. 12 - Prob. 49ECh. 12 - Nitrogen gas (N2) reacts with hydrogen gas (H2) to...Ch. 12 - Prob. 51ECh. 12 - Prob. 52ECh. 12 - Prob. 53ECh. 12 - At 25c, K = 0.090 for the reaction...Ch. 12 - Prob. 55ECh. 12 - Prob. 56ECh. 12 - Prob. 57ECh. 12 - At o particular temperature, K = 4 .0 107 for the...Ch. 12 - Prob. 59ECh. 12 - Lexan is a plastic used to make compact discs,...Ch. 12 - At 25C, Kp. = 2.9 103 for the reaction...Ch. 12 - A sample of solid ammonium chloride was placed in...Ch. 12 - Prob. 63ECh. 12 - Predict the shift in the equilibrium position that...Ch. 12 - An important reaction in the commercial production...Ch. 12 - What will happen to the number of moles of SO3 in...Ch. 12 - Prob. 67ECh. 12 - Hydrogen for use in ammonia production is produced...Ch. 12 - Old-fashioned smelling salts consist of ammonium...Ch. 12 - Ammonia is produced by the Haber process, in which...Ch. 12 - Prob. 71AECh. 12 - Given the following equilibrium constants at...Ch. 12 - Consider the decomposition of the compound C5H6O3...Ch. 12 - Prob. 74AECh. 12 - The gas arsine, AsH3, decomposes as follows:...Ch. 12 - At a certain temperature, K = 9.1 10-4 for the...Ch. 12 - At a certain temperature, K = 1.1 l03 for the...Ch. 12 - Prob. 78AECh. 12 - At 25C, gaseous SO2Cl2 decomposes to SO2(g) and...Ch. 12 - For the following reaction at a certain...Ch. 12 - Prob. 81AECh. 12 - Consider the reaction Fe3+(aq)+SCN(aq)FeSCN2+(aq)...Ch. 12 - Chromium(VI) forms two different oxyanions, the...Ch. 12 - Prob. 84AECh. 12 - Prob. 85AECh. 12 - For the reaction below, Kp = 1.16 at 800C....Ch. 12 - Many sugars undergo a process called mutarotation,...Ch. 12 - Peptide decomposition is one of the key processes...Ch. 12 - The creation of shells by mollusk species is a...Ch. 12 - Methanol, a common laboratory solvent, poses a...Ch. 12 - Prob. 91CWPCh. 12 - Prob. 92CWPCh. 12 - Prob. 93CWPCh. 12 - Prob. 94CWPCh. 12 - Prob. 95CWPCh. 12 - Prob. 96CWPCh. 12 - Consider the following exothermic reaction at...Ch. 12 - For the following endothermic reaction at...Ch. 12 - Prob. 99CPCh. 12 - A 4.72-g sample of methanol (CH3OH) was placed in...Ch. 12 - At 35C, K = 1.6 105 for the reaction...Ch. 12 - Nitric oxide and bromine at initial partial...Ch. 12 - At 25C. Kp = 5.3 105 for the reaction...Ch. 12 - Prob. 104CPCh. 12 - The partial pressures of an equilibrium mixture of...Ch. 12 - At 125C, KP = 0.25 for the reaction...Ch. 12 - A mixture of N2, H2, and NH3 is at equilibrium...Ch. 12 - Prob. 108CPCh. 12 - Prob. 109CPCh. 12 - Prob. 110CPCh. 12 - Prob. 111CPCh. 12 - A sample of N2O4(g) is placed in an empty cylinder...Ch. 12 - A sample of gaseous nitrosyl bromide (NOBr) was...Ch. 12 - Prob. 114CPCh. 12 - For the reaction NH3(g)+H2S(g)NH4HS(s) K = 400. at...Ch. 12 - Prob. 116IPCh. 12 - In a solution with carbon tetrachloride as the...Ch. 12 - Prob. 118IPCh. 12 - A gaseous material XY(g) dissociates to some...
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