CHEMISTRY W/WRKBK AND SMARTWORK (LL)
CHEMISTRY W/WRKBK AND SMARTWORK (LL)
5th Edition
ISBN: 9780393693447
Author: Gilbert
Publisher: NORTON
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Chapter 13, Problem 13.126AP

(a)

Interpretation Introduction

Interpretation: The reaction involved in the formation of photochemical smog is given. Various questions based on this reaction are to be answered.

Concept introduction: According to the rate law the rate of reaction depends on the concentration of reactants that are involved in the reaction. Therefore, for a reaction like AB , the rate law equation is given as,

Rate=k[A]m

Where,

  • k is the rate constant.
  • m is the order of the reaction.

To determine: The possibility of the consistency of the observed order of the reaction of NO and O3 with the one that is obtained after assuming the given reaction to be a single step reaction.

(a)

Expert Solution
Check Mark

Answer to Problem 13.126AP

Solution

The rate law would be consistent with the observed order of the reaction of NO and O3 .

Explanation of Solution

Explanation

The given reaction is,

NO(g)+O3(g)NO2(g)N2(g)+O2(g)

If the reaction occurs in the single step, then the rate equation is

Rate=k[NO]1[O3]1

Therefore, the rate law would be consistent with the observed order of the reaction of NO and O3 .

(b)

Interpretation Introduction

To determine: The activation energy of the reaction.

(b)

Expert Solution
Check Mark

Answer to Problem 13.126AP

Solution

The activation energy of the reaction is 6.1×104J/mol_ .

Explanation of Solution

Explanation

Given

The rate constants at 25°C is 80M1s1 .

The rate constants at 75°C is  3000M1s1 .

The conversion of °C into Kelvin is done as,

°C=(T°C+273)K

Where,

  • T°C is the temperature in degree Celsius.

Hence, the conversion of 25°C into Kelvin is,

25°C=(25+273)K=298K

Similarly, the conversion of 75°C into Kelvin is,

75°C=(75+273)K=348K

The formula for activation energy is given as,

k=AeEaRT

Where,

  • k is the rate constant of the reaction.
  • A is the frequency factor.
  • Ea is the activation energy.
  • R is the universal gas constant (8.314J/Kmol) .
  • T is he temperature.

Take natural log on both the sides of the equation,

lnk=lnAEaRT

The table for the plot of lnk and 1/T is,

k(M1s1) lnk T(K) 1T(K)
80 4.38 298 3.36×103
3000 8.00 348 2.87×103

If a graph is plotted between lnk and 1/T , then it comes out to be a straight line with a negative slope. Compare this equation with y=mx+c . The value of y is lnk and the value of m is EaR and the intercept is lnA .

The slope is given as,

y2y1x2x1=EaR

Substitute the value of y1 , y2 , x1 x2 and R in the above equation as,

y2y1x2x1=EaR8.004.382.87×1033.36×103=Ea8.314Ea=6.1×104J/mol_

(c)

Interpretation Introduction

To determine: The rate constant of the reaction.

(c)

Expert Solution
Check Mark

Answer to Problem 13.126AP

Solution

The rate constant of the reaction is 1.0×10-12M/s_ .

Explanation of Solution

Explanation

Given

The concentration of NO is 3×106M .

The concentration of O3 is 5×109M .

The rate law expression for the given reaction is,

Rate=k[NO]1[O3]1

Substitute the value of concentration of each species and rate constant in the above equation,

Rate=k[NO]1[O3]1=(80M1s1)(3×106M)(5×109M)=1.0×10-12M/s_

(d)

Interpretation Introduction

To determine: The values of rate constant at 10°C and 35°C .

(d)

Expert Solution
Check Mark

Answer to Problem 13.126AP

Solution

The values of rate constant are 22.0M/s_ and 180.5M/s_ at 10°C and 35°C respectively.

Explanation of Solution

Explanation

Given

The values of temperature are 10°C and 35°C .

The formula for activation energy is given as,

k=AeEaRT (1)

Where,

  • k is the rate constant of the reaction.
  • A is the frequency factor.
  • Ea is the activation energy.
  • R is the universal gas constant (8.314J/Kmol) .
  • T is he temperature.

Take natural log on both the sides of the equation,

lnk=lnAEaRT

Substitute the value of k , Ea and T t find out the value of A in the above equation,

lnk=lnAEaRTln80=lnA6.1×104J/mol(8.314J/Kmol)(298K)4.38=lnA24.62A=4.0×1012

The conversion of °C into Kelvin is done as,

°C=(T°C+273)K

Where,

  • T°C is the temperature in degree Celsius.

Hence, the conversion of 10°C into Kelvin is,

10°C=(10+273)K=283K

Similarly, the conversion of 35°C into Kelvin is,

35°C=(35+273)K=308K

Substitute the value of A , Ea , R and T in the equation (1).

k10°C=AeEaRT=4.0×1012×e6.1×104J/mol(8.314J/Kmol)(283K)=22.0M/s_

Similarly, Substitute the value of A , Ea , R and T in the equation (1).

k35°C=AeEaRT=4.0×1012×e6.1×104J/mol(8.314J/Kmol)(308K)=180.5M/s_

Conclusion

  1. a. The rate law would be consistent with the observed order of the reaction of NO and O3 .
  2. b. The activation energy of the reaction is 6.1×104J/mol_ .
  3. c. The rate constant of the reaction is 1.0×10-12M/s_ .
  4. d. The values of rate constant are 22.0M/s_ and 180.5M/s_ at 10°C and 35°C respectively.

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Chapter 13 Solutions

CHEMISTRY W/WRKBK AND SMARTWORK (LL)

Ch. 13.5 - Prob. 11PECh. 13.5 - Prob. 12PECh. 13.6 - Prob. 13PECh. 13 - Prob. 13.1VPCh. 13 - Prob. 13.2VPCh. 13 - Prob. 13.3VPCh. 13 - Prob. 13.4VPCh. 13 - Prob. 13.5VPCh. 13 - Prob. 13.6VPCh. 13 - Prob. 13.7VPCh. 13 - Prob. 13.8VPCh. 13 - Prob. 13.9VPCh. 13 - Prob. 13.10VPCh. 13 - Prob. 13.11VPCh. 13 - Prob. 13.12VPCh. 13 - Prob. 13.13QPCh. 13 - Prob. 13.14QPCh. 13 - Prob. 13.15QPCh. 13 - Prob. 13.16QPCh. 13 - Prob. 13.17QPCh. 13 - Prob. 13.18QPCh. 13 - Prob. 13.19QPCh. 13 - Prob. 13.20QPCh. 13 - Prob. 13.21QPCh. 13 - Prob. 13.22QPCh. 13 - Prob. 13.23QPCh. 13 - Prob. 13.24QPCh. 13 - Prob. 13.25QPCh. 13 - Prob. 13.26QPCh. 13 - Prob. 13.27QPCh. 13 - Prob. 13.28QPCh. 13 - Prob. 13.29QPCh. 13 - Prob. 13.30QPCh. 13 - Prob. 13.31QPCh. 13 - Prob. 13.32QPCh. 13 - Prob. 13.33QPCh. 13 - Prob. 13.34QPCh. 13 - Prob. 13.35QPCh. 13 - Prob. 13.36QPCh. 13 - Prob. 13.37QPCh. 13 - Prob. 13.38QPCh. 13 - Prob. 13.39QPCh. 13 - Prob. 13.40QPCh. 13 - Prob. 13.41QPCh. 13 - Prob. 13.42QPCh. 13 - Prob. 13.43QPCh. 13 - Prob. 13.44QPCh. 13 - Prob. 13.45QPCh. 13 - Prob. 13.46QPCh. 13 - Prob. 13.47QPCh. 13 - Prob. 13.48QPCh. 13 - Prob. 13.49QPCh. 13 - Prob. 13.50QPCh. 13 - Prob. 13.51QPCh. 13 - Prob. 13.52QPCh. 13 - Prob. 13.53QPCh. 13 - Prob. 13.54QPCh. 13 - Prob. 13.55QPCh. 13 - Prob. 13.56QPCh. 13 - Prob. 13.57QPCh. 13 - Prob. 13.58QPCh. 13 - Prob. 13.59QPCh. 13 - Prob. 13.60QPCh. 13 - Prob. 13.61QPCh. 13 - Prob. 13.62QPCh. 13 - Prob. 13.63QPCh. 13 - Prob. 13.64QPCh. 13 - Prob. 13.65QPCh. 13 - Prob. 13.66QPCh. 13 - Prob. 13.67QPCh. 13 - Prob. 13.68QPCh. 13 - Prob. 13.69QPCh. 13 - Prob. 13.70QPCh. 13 - Prob. 13.71QPCh. 13 - Prob. 13.72QPCh. 13 - Prob. 13.73QPCh. 13 - Prob. 13.74QPCh. 13 - Prob. 13.75QPCh. 13 - Prob. 13.76QPCh. 13 - Prob. 13.77QPCh. 13 - Prob. 13.78QPCh. 13 - Prob. 13.79QPCh. 13 - Prob. 13.80QPCh. 13 - Prob. 13.81QPCh. 13 - Prob. 13.82QPCh. 13 - Prob. 13.83QPCh. 13 - Prob. 13.84QPCh. 13 - Prob. 13.85QPCh. 13 - Prob. 13.86QPCh. 13 - Prob. 13.87QPCh. 13 - Prob. 13.88QPCh. 13 - Prob. 13.89QPCh. 13 - Prob. 13.90QPCh. 13 - Prob. 13.91QPCh. 13 - Prob. 13.92QPCh. 13 - Prob. 13.93QPCh. 13 - Prob. 13.94QPCh. 13 - Prob. 13.95QPCh. 13 - Prob. 13.96QPCh. 13 - Prob. 13.97QPCh. 13 - Prob. 13.98QPCh. 13 - Prob. 13.99QPCh. 13 - Prob. 13.100QPCh. 13 - Prob. 13.101QPCh. 13 - Prob. 13.102QPCh. 13 - Prob. 13.103QPCh. 13 - Prob. 13.104QPCh. 13 - Prob. 13.105QPCh. 13 - Prob. 13.106QPCh. 13 - Prob. 13.107QPCh. 13 - Prob. 13.108QPCh. 13 - Prob. 13.109QPCh. 13 - Prob. 13.110QPCh. 13 - Prob. 13.111QPCh. 13 - Prob. 13.112QPCh. 13 - Prob. 13.113QPCh. 13 - Prob. 13.114QPCh. 13 - Prob. 13.115QPCh. 13 - Prob. 13.116QPCh. 13 - Prob. 13.117APCh. 13 - Prob. 13.118APCh. 13 - Prob. 13.119APCh. 13 - Prob. 13.120APCh. 13 - Prob. 13.121APCh. 13 - Prob. 13.122APCh. 13 - Prob. 13.123APCh. 13 - Prob. 13.124APCh. 13 - Prob. 13.125APCh. 13 - Prob. 13.126APCh. 13 - Prob. 13.127APCh. 13 - Prob. 13.128APCh. 13 - Prob. 13.129APCh. 13 - Prob. 13.130AP
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