Chemical Principles
Chemical Principles
8th Edition
ISBN: 9781305581982
Author: Steven S. Zumdahl, Donald J. DeCoste
Publisher: Cengage Learning
Question
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Chapter 5, Problem 111E
Interpretation Introduction

Interpretation:Mixing ratio and number of molecule of benzene and tolueneshould be determined.

Concept introduction: State of any gas is determined by some of its parameters. These parameters are pressure, amount of gas, temperature and volume. Ideal gas law helps to govern state of gas with help of relationships between these gas parameters.

Expression for ideal gas equation is as follows:

  PV=nRT

Where,

  • P is pressure of gas.
  • V is volume of gas.
  • n is amount or moles of gas.
  • R is universal gas constant.
  • T is absolute temperature of gas.

Expert Solution & Answer
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Answer to Problem 111E

Mixing ratio of benzene and toluene is 9.47×103 ppmv and 1.37×102 ppmv respectively. Number of molecule of benzene and toluene per cubic centimeter is 2.31×1011 molecules/cm3 and 3.21×1011 molecules/cm3 respectively.

Explanation of Solution

Mole of benzene in 89.6 ng can be calculated as follows:

  Mole=( 89.6 ng 78.11 g/mol)( 10 9  g 1 ng)=1.15×109 mol

Molecules of benzene per cubic centimeter can be calculated as follows:

  Molecules of C6H6=(1.15× 10 9 mol)(6.022× 10 23 molecules/mol)=6.93×1014 C6H6 molecules

Since molecules of C6H6 present in 3.00 L thus number of C6H6 molecule per cubic centimeter can be calculated as follows:

  Molecules of C6H6=( 6.93× 10 14  C 6 H 6  molecules 3.00 L)( 1 L 10 3  cm 3 )=2.31×1011 C6H6 molecules/cm3

Hence benzene has 2.31×1011 molecules/cm3 in air sample.

Conversion of 23 °C to Kelvin is as follows:

  T(K)=T(°C)+273=23 °C+273=296K

Expression for ideal gas equation is as follows:

  PV=nRT

Where,

  • P is pressure of gas.
  • V is volume of gas.
  • n is amount or moles of gas.
  • R is universal gas constant.
  • T is absolute temperature of gas.

Rearrange above equation to calculate value of P for volume of C6H6 .

  V=nRTP

Value of P is 748 torr .

Value of n is 1.15×109 mol .

Value of T is 296K .

Value of R is 0.08206 LatmK1mol1 .

Substitute the value in above equation.

  V=nRTP=( ( 1.15× 10 9  mol )( 0.08206 Latm K 1 mol 1 )( 296K ) 748 torr)( 760 torr 1 atm)=2.84×108 L

Expression of ppmv for C6H6 is as follows:

  ppmv of C6H6=( Volume of C6H6 at STPTotal volume of air at STP)(106)

Where,

  • X is trace compound.

Value of volume of C6H6 is 2.84×108 L .

Value of total volume equivalent of C6H6 is 3.00 L .

Substitute the value in above equation.

  ppmv of C6H6=( Volume of C 6 H 6  at STP Total volume of air at STP)( 106)=( 2.84× 10 8  L 3.00 L)( 106)=9.47×103 ppmv

Mole of toluene in 153 ng can be calculated as follows:

  Mole=( 153 ng 92.14 g/mol)( 10 9  g 1 ng)=1.66×109 mol

Molecules of toluene per cubic centimeter can be calculated as follows:

  Molecules of C7H8=(1.66× 10 9 mol)(6.022× 10 23 molecules/mol)=9.64×1014 C7H8 molecules

Since molecules of C7H8 present in 3.00 L thus number of C7H8 molecule per cubic centimeter can be calculated as follows:

  Molecules of C7H8=( 9.64× 10 14  C 7 H 8  molecules 3.00 L)( 1 L 10 3  cm 3 )=3.21×1011 C7H8 molecules/cm3

Expression for ideal gas equation is as follows:

  PV=nRT

Where,

  • P is pressure of gas.
  • V is volume of gas.
  • n is amount or moles of gas.
  • R is universal gas constant.
  • T is absolute temperature of gas.

Rearrange above equation to calculate value of P for volume of C7H8 .

  V=nRTP

Value of P is 748 torr .

Value of n is 1.66×109 mol .

Value of T is 296K .

Value of R is 0.08206 LatmK1mol1 .

Substitute the value in above equation.

  V=nRTP=( ( 1.66× 10 9  mol )( 0.08206 Latm K 1 mol 1 )( 296K ) 748 torr)( 760 torr 1 atm)=4.10×108 L

Expression of ppmv for C7H8 is as follows:

  ppmv of C7H8=( Volume of C7H8 at STPTotal volume of air at STP)(106)

Where,

  • X is trace compound.

Value of volume of C7H8 is 4.10×108 L .

Value of total volume equivalent of C7H8 is 3.00 L .

Substitute the value in above equation.

  ppmv of C7H8=( Volume of C 7 H 8  at STP Total volume of air at STP)( 106)=( 4.10× 10 8  L 3.00 L)( 106)=1.37×102 ppmv

Conclusion

Mixing ratio of benzene and toluene is 9.47×103 ppmv and 1.37×102 ppmv respectively. Number of molecule of benzene and toluene per cubic centimeter is 2.31×1011 molecules/cm3 and 3.21×1011 molecules/cm3 respectively.

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Chapter 5 Solutions

Chemical Principles

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