Chemistry: Principles and Practice
Chemistry: Principles and Practice
3rd Edition
ISBN: 9780534420123
Author: Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher: Cengage Learning
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Chapter 3, Problem 3.109QE
Interpretation Introduction

Interpretation:

The empirical formula of the compound has to be determined for the compound that contains only carbon, hydrogen, oxygen and nitrogen.  Combustion of a 1.48g sample in excess O2 yields 2.60gCO2 and 0.799gH2O.  And a separate experiment of that same compound shows that a 2.43g sample contain 0.340gN.

Expert Solution & Answer
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Explanation of Solution

This sample yields 2.60gCO2 and 0.799gH2O.

One mole of CO2 has a mass of 44.01g and one mole of H2O has a mass of 18.02g.

Then,

    Moles of H2O = 0.799g H2O × (1mol H2O18.02g H2O)= 0.044 mol H2O

    moles of  CO2 = 2.60 g CO2 × (1mol CO244.01g CO2)= 0.059mol CO2.

From the formulas of CO2 and H2O, one mole of H2O has two moles of hydrogen and one mole of CO2 has one mole carbon.  These relationships are used to convert moles of each compound into moles of each element.

    Moles H = 0.044 H2O × (2 mol H1 mol H)= 0.088 mol H.

    Moles C = 0.059 mol CO2 × (1mol C1 mol CO2)= 0.059 mol C.

Use the molar mass of hydrogen and carbon to calculate the mass of each present in sample.

    Mass H = 0.088 mol H ×(1.01gH1molH) = 0.088 g H.

    Mass C = 0.059 mol C ×(12.01gC1mol C) = 0.708 g C.

    Masssample= massC+ massH+ massOmassO= 1.48g - (0.088 g H + 0.708 g C) = 0.683 g

    Amount O = 0.683 g O × (1mol O15.999 g O)= 0.0426 mol O.

    Amount N = 0.340 g N × (1mol N14.0067 g N)= 0.024 mol N.

This calculation will yield the relative number of moles of each element.  To convert into integers, divide each by the smallest number 0.024.

    Amount H = 0.088mol H ÷ 0.024 = 3.66 mol H.

    Amount C = 0.059 mol C ÷ 0.024 = 2.45 mol C

    Amount O = 0.0426 mol O ÷ 0.024 = 1.77 mol O.

    Amount N = 0.024 mol N ÷ 0.024 = 1 mol N.

The empirical formula of the compound is C4H3O2N.

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Chapter 3 Solutions

Chemistry: Principles and Practice

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