EBK CHEMISTRY
EBK CHEMISTRY
10th Edition
ISBN: 8220103600606
Author: ZUMDAHL
Publisher: CENGAGE L
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Chapter 5, Problem 145AE
Interpretation Introduction

Interpretation: From the given data, empirical formula and molecular formula of the compound should be determined.

Concept introduction:

  • According to Thomas Graham the rate of effusion of a gas is inversely proportional to the square root of the mass of its particles.

    The relative rate of effusion of two gases at the same temperature and pressure are inverse ratio of the square root of the masses of the gases particles. That is,

Rateofeffusionforgas1Rateofeffusionforgas2=M2M1orRate1Rate2=(M2M1)1/2

M1andM2arethemolarmassesofgas1andgas2

This equation is known as Graham’s law of effusion.

  • Empirical formula can be determined from the mass per cent as given below
    1. 1. Convert the mass per cent to gram
    2. 2. Determine the number of moles of each elements
    3. 3. Divide the mole value obtained by smallest mole value
    4. 4. Write empirical formula by mentioning the numbers after writing the symbols of respective elements
  • Molecular formula can be write by the following steps
    1. 1. Determine the empirical formula mass
    2. 2. Divide the molar mass by empirical formula mass

      MolarmassEmpiricalformula=n

    3. 3. Multiply the empirical formula by n

Expert Solution & Answer
Check Mark

Answer to Problem 145AE

Answer

Empiricalformulaandmolecularformulaofthecompound=C2H3N

Explanation of Solution

Explanation

  • To find: the empirical formula of the compound

Convert the mass percent to gram

58.51%Carbon=58.51gC7.37%Hydrogen=7.37gH34.12%Nitrogen=34.12gN

First step to determine the empirical formula is to convert the mass percent to gram.

Here the given gasses are carbon, hydrogen, nitrogen

Percentage composition of carbon and hydrogen are, 58.51% and 7.37% respectively.

Out of 100 g of compound, percent composition of Nitrogen is 34.12%

  • To determine: the number of moles of each element

Numberofmolesofcarbon=4.872molNumberofmolesofhydrogen=7.31molNumberofmolesofnitrogen=2.435mol

 Numberofmoles from its given mass is,Numberofmoles=GivenmassingramMolecularmassMassesofcarbon,nitrgen,andhydrgrogenaregivenabove.MolecularmassesofCarbon=12.01gNitogen=14.01gHydrogen=1.008gNumberofmolesofcarbon=58.51g12.01g=4.872molNumberofmolesofhydrogen=7.37g1.008g=7.31molNumberofmolesofnitrogen=34.12g14.01g=2.435mol                      

  • To divide:  the mole value obtained by smallest mole value

Inthecaseofcarbon,Ratioofmolevaluetosmallestmolevalue=2.001Inthecaseofhydrogen,Ratioofmolevaluetosmallestmolevalue=3.00Inthecaseofnitrogen,Ratioofmolevaluetosmallestmolevalue=1.00

From the mole values, smallest mole value is 2.435

Numberofmolesofcarbon=4.872molNumberofmolesofhydrogen=7.31molNumberofmolesofnitrogen=2.435molInthecaseofcarbon,Ratioofmolevaluetosmallestmolevalue=4.8722.435=2.001Inthecaseofhydrogen,Ratioofmolevaluetosmallestmolevalue7.312.435=3.00Inthecaseofnitrogen,Ratioofmolevaluetosmallestmolevalue=2.4352.435=1.00

  • To write: the empirical formula by mentioning the numbers after writing the symbols of respective elements

The empirical formula is C2H3N

Empirical formula can be determined by dividing the mole value of each gas to smallest mole value gas.

RatioofmolevaluetosmallestmolevalueofeachgasesisC:H:N=2:3:1

So, the empirical formula is C2H3N

  • To find: molecular formula of the given compound

Determine the molar mass of the given compound.

Molar mass of the given compound is =41.0g/mol

AccordingtoThomasGraham,Rateofeffusionforgas1Rateofeffusionforgas2=M2M1orRate1Rate2=(M2M1)1/2M1andM2arethemolarmassesofgas1andgas2Letgas1=HeliumM1=4.003Heliumeffusesthroughaporus3.20timesasfastasthecompounddoesSo,3.20=(M24.003)1/2M2=(3.20)2×4.003=10.24×4.003=41.0g/mol

  • To determine: the empirical formula mass

Empirical formula mass =41.0g/mol

EmpiricalformulaisC2H3N.TheempiricalformulamassofC2H3 2×12+ 3×1+1×14 = 41.0g/mol

  • To divide: the molar mass by empirical formula

nMolarmassEmpiricalformula=1

n=MolarmassEmpiricalformulaMolar mass of the given compound is=41.0g/molEmpirical formula mass=41.0g/moln=41.0g/mol41.0g/mol=1

  • To multiply: the empirical formula by n

By multiplying the empirical formula by n,

molecularformulaofthecompound=C2H3N

By multiplying the empirical formula by n molecular formula of the compound should obtain.

n=1andempiricalofthecompound=C2H3NC2H3N×1=C2H3NSo,themolecularformulaofthecompoundisC2H3N

Conclusion

Conclusion

Empirical formula of the compound is determined from the mass per cent as given below

1. Converted the mass per cent to gram

2. Determined the number of moles of each element

3. Divided the mole value obtained by smallest mole value

4. Wrote empirical formula by mentioning the numbers after writing the symbols of respective elements

Molecular formula of the given compound is determined by the following steps

1. Determined the empirical formula mass

2. Determined the molar mass from rate effusion

3. Divided the molar mass by empirical formula mass

MolarmassEmpiricalformula=n

  1. 4. Multiplied the empirical formula by n

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Chapter 5 Solutions

EBK CHEMISTRY

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