Introductory Chemistry: A Foundation
Introductory Chemistry: A Foundation
8th Edition
ISBN: 9781285199030
Author: Steven S. Zumdahl, Donald J. DeCoste
Publisher: Cengage Learning
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Chapter 9, Problem 45QAP

For each of the following unbalanced reactions, suppose exactly 5.00 g of each reactant is taken. Determine which reactant is limiting, and also determine what mass of the excess reagent will remain after the limiting reactant is consumed.

  1. Na2B4O7(s) + H2SO4(o
  2. H 3BOj(j) + Na 2SO 4(u

  3. CaC,(s) + H2O(/) → Ca(OH)2(s) + C2H2(g)
  4. NaCl(s) + H2SO4(/> → HCl(g) + Na2SO4(s)
  5. SiO2(s) + C(x) —> Si(/) + CO(g)

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation : For the given reaction with 5 g of each reactant, the limiting reactant and the mass of the excess reactant after the completion of limiting reactant needs to be determined.

  Na2B4O7+H2SO4+H2OH3BO3+Na2SO4

Concept Introduction : Stoichiometry is used in order to relate molar and mass quantities. The limiting reactant will always finish first than the excess materials.

Answer to Problem 45QAP

  Limitingreactant:Na2B4O7

  Totalexcessmass=7.5212g

Explanation of Solution

Given

  m=5.00gofeachmaterial

In order to make stoichiometric calculations, the reaction must be balanced:

  Na2B4O7+H2SO4+H2OH3BO3+Na2SO4

Balance B:

  Na2B4O7+H2SO4+H2O4H3BO3+Na2SO4

Balance H

  Na2B4O7+H2SO4+5H2O4H3BO3+Na2SO4

This is now balanced.

Calculate moles of reactants

  molNa2B4O7=massMM=5.00g381.37g/mol=0.0131molH2SO4=massMM=5.00g98.079g/mol=0.051molH2O=massMM=5.00g18.0g/mol=0.277

Where MM is molar mass

Perform stoichiometric calculations:

  molNa2SO4=(0.0131molNa2B4O7)( 1molN a 2 S O 4 1molN a 2 B 4 O 7 )=0.0131molNa2SO4=(0.051molH2SO4)( 1molN a 2 S O 4 1mol H 2 S O 4 )=0.051molNa2SO4=(0.277molH2O)( 1molN a 2 S O 4 5mol H 2 O)=0.0555

From these calculations, the limiting reactant is Na2B4O7 .

Excess moles:

  molH2SO4left=0.0510.0131=0.0379molH2Oleft=(0.2770.0131×5=0.2770.0655=0.2115

Mass left:

  massH2SO4=0.0379mol(98g/mol)=3.7142gmassH2Oleft=0.2115mol(18g/mol)=3.807gTotal=3.807+3.7142gTotalexcessmass=7.5212g

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation : For the given reaction with 5 g of each reactant, the limiting reactant and the mass of the excess reactant after the completion of limiting reactant needs to be determined.

  CaC2+H2OCa(OH)2+C2H2

Concept Introduction : Stoichiometry is used in order to relate molar and mass quantities. The limiting reactant will always finish first than the excess materials.

Answer to Problem 45QAP

  Limitingreactant:CaC2

  Totalexcessmass=2.18628g

Explanation of Solution

Given

  m=5.00gofeachmaterial

In order to make stoichiometric calculations, the reaction must be balanced:

  CaC2+H2OCa(OH)2+C2H2

Balance O:

  CaC2+2H2OCa(OH)2+C2H2

This is now balanced.

Calculate moles of reactants

  molCaC2=massMM=5.00g64g/mol=0.07812molH2O=massMM=5.00g18.0g/mol=0.277

Perform stoichiometric calculations:

  molC2H2=(0.07812molCaC2)( 1mol C 2 H 2 1molCa C 2 )=0.07812molC2H2=(0.277molH2O)( 1mol C 2 H 2 2mol H 2 O)=0.1385

From these calculations, the limiting reactant is CaC2 .

Excess moles:

  molH2Oleft=(0.277)(0.07812)(2)=0.12146mol

Mass left:

  massH2Oleft=0.12146mol(18g/mol)=2.18628gTotalexcessmass=2.18628g

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation : For the given reaction with 5 g of each reactant, the limiting reactant and the mass of the excess reactant after the completion of limiting reactant needs to be determined.

  NaCl+H2SO4HCl+Na2SO4

Concept Introduction : Stoichiometry is used in order to relate molar and mass quantities. The limiting reactant will always finish first than the excess materials.

Answer to Problem 45QAP

  Limitingreactant:NaCl

  Totalexcessmass=0.7742g

Explanation of Solution

Given

  m=5.00gofeachmaterial

In order to make stoichiometric calculations, the reaction must be balanced:

  NaCl+H2SO4HCl+Na2SO4

Balance Na:

  2NaCl+H2SO4HCl+Na2SO4

Balance H:

  2NaCl+H2SO42HCl+Na2SO4

This is now balanced.

Calculate moles of reactants

  molNaCl=massMM=5.00g58g/mol=0.0862molH2SO4=massMM=5.00g98g/mol=0.0510

Perform stoichiometric calculations:

  molHCl=(0.0862molNaCl)( 2molHCl 2molNaCl)=0.0862molHCl=(0.0510molH2SO4)( 2molHCl 1mol H 2 S O 4 )=0.102

From these calculations, the limiting reactant is NaCl .

Excess moles:

  molH2SO4=(0.0510.0862x12)=0.0079

Mass left:

  massH2SO4left=0.0079mol(98g/mol)=0.7742gTotalexcessmass=0.7742g

(d)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation : For the given reaction with 5 g of each reactant, the limiting reactant and the mass of the excess reactant after the completion of limiting reactant needs to be determined.

Concept Introduction : Stoichiometry is used in order to relate molar and mass quantities. The limiting reactant will always finish first than the excess materials.

Answer to Problem 45QAP

  Limitingreactant:C

  Totalexcessmass=0.25g

Explanation of Solution

Given

  m=5.00gofeachmaterial

In order to make stoichiometric calculations, the reaction must be balanced:

  SiO2+CSi+CO

Balance O:

  SiO2+CSi+2CO

Balance C:

  SiO2+2CSi+2CO

This is now balanced.

Calculate moles of reactants

  molSiO2=massMM=5.00g60.08g/mol=0.0833molC=massMM=5.00g12g/mol=0.4166

Perform stoichiometric calculations:

  molSi=(0.0833molNaCl)( 1molSi 1molSi O 2 )=0.0862molSi=(0.4166molH2SO4)( 1molSi 2molC)=0.2083

From these calculations, the limiting reactant is SiO2 .

Excess moles:

  molC=0.4166(0.0833)x2=0.25

Mass left:

  massCleft=0.25mol(12g/mol)=3.0gTotalexcessmass=3.0g

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