EBK INTRO.CHEMISTRY (NASTA EDITION)
EBK INTRO.CHEMISTRY (NASTA EDITION)
9th Edition
ISBN: 9781337678032
Author: ZUMDAHL
Publisher: CENGAGE CO
Question
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Chapter 15, Problem 126AP
Interpretation Introduction

(a)

Interpretation:

The balanced molecular equation, complete ionic equation and net ionic equation for the given reaction mixture is to be written.

Concept Introduction:

A balanced chemical equation represents an equation in which all the reactants and products are written with their stoichiometric coefficient and physical states. The number of atoms of an element on the both sides of the equation is equal.

The complete ionic equation is the chemical equation of a reaction in which the ionic compounds are written in their dissociated ionic forms.

The net ionic equation is the one in which the common ions present on both the sides of the complete ionic reaction get eliminated and only the chemical species actually participating in the reaction is represented.

Expert Solution
Check Mark

Answer to Problem 126AP

The balanced chemical reaction between the ammonium sulfide and iron III chloride is represented as,

3NH42Saq+2FeCl3aq6NH4Claq+Fe2S3aq

The complete ionic equation between the ammonium sulfide and iron III chloride is represented as,

6NH4+aq+3S2aq+2Fe3+aq+6Claq6NH4+aq+6Claq+Fe2S3s

The net ionic equation between the ammonium sulfide and iron III chloride is represented as:

3S2aq+2Fe3+aqFe2S3s.

Explanation of Solution

The unbalanced chemical reaction between the ammonium sulfide and iron III chloride is represented as,

NH42Saq+FeCl3aqNH4Claq+Fe2S3s

The number of atoms of elements on both sides of the equation is not equal. Therefore, multiply NH42S by three, FeCl3 by two, NH4Cl by six for the balanced chemical reaction.

The balanced chemical reaction between the ammonium sulfide and iron III chloride is represented as,

3NH42Saq+2FeCl3aq6NH4Claq+Fe2S3s

The complete ionic equation between the ammonium sulfide and iron III chloride is represented as:

6NH4+aq+3S2aq+2Fe3+aq+6Claq6NH4+aq+6Claq+Fe2S3s

The NH4+ and S2 ion is common on the both sides of the complete ionic reaction therefore, to write net ionic reaction these ion must be eliminated from the reaction. The net ionic equation between the ammonium sulfide and iron III chloride is represented as,

3S2aq+2Fe3+aqFe2S3s.

Interpretation Introduction

(b)

Interpretation:

The mass of precipitate formed on mixing given solutions of ammonium sulfide and iron III chloride is to be calculated.

Concept Introduction:

The molarity of a solution is defined as the number of moles of solute dissolved in one liter of the solution. The formula for molarity is given as,

M=nV

Where,

  • n represents the number of moles of the solute.
  • V represents the volume of the solution.

The limiting reagent of a reaction is that reactant of the reaction that controls the amount of product formed. The limiting agents limits the amount of product and by adding some more amount of the limiting reagent in the reaction mixture, the amount of product can be increased.

Expert Solution
Check Mark

Answer to Problem 126AP

The mass of precipitate formed on mixing the given solutions of ammonium sulfide and iron III chloride is 1.73g.

Explanation of Solution

The volume of 0.500M ammonium sulfide is 50.0mL.

The volume of 0.250Miron III chloride is 100.0mL.

The molarity of a solution is given as:

M=nV

Where,

  • n represents the number of moles of the solute.
  • V represents the volume of the solution.

Rearrange the above equation for the value of n.

n=MV    (1)

Substitute the value of molarity and volume of ammonium sulfide solution in equation (1).

n=0.500M1molL11M50.0mL1L1000mL=0.025mol

The number of moles of ammonium sulfide present in the reaction mixture is 0.025mol.

Substitute the value of molarity and volume of iron III chloride solution in equation (1).

n=0.250M1molL11M100.0mL1L1000mL=0.025mol

The number of moles of iron III chloride present in the reaction mixture is 0.025mol.

The balanced chemical reaction between the ammonium sulfide and iron III chloride is represented as,

3NH42Saq+2FeCl3aq6NH4Claq+Fe2S3s

Three moles of NH42S reacts with two moles of FeCl3 to produce six moles of NH4Cl and one mole of Fe2S3. Therefore, the relation between the number of moles of NH42S and FeCl3 reacts is given as:

nNH42S=3nFeCl32

Where,

  • nNH42S represents the number of moles of NH42S.
  • nFeCl3 represents the number of moles of FeCl3.

Substitute the value of number of moles of FeCl3 in the above equation.

nNH42S=30.025mol2=0.0375mol

The number of moles of NH42S required to react with 0.025mol of FeCl3 is 0.0375mol but the number of moles of NH42S present in the reaction mixture is 0.025mol, therefore NH42S is the limiting agent of the reaction. The amount of NH42S available will decide the amount of Fe2S3 produced.

The relation between the number of moles of Fe2S3 reacted and the number of moles of NH42S produced is given as,

nFe2S3=nNH42S3

Where,

  • nNH42S represents the number of moles of NH42S.
  • nFe2S3 represents the number of moles of Fe2S3.

Substitute the value of the available number of moles of NH42S in the above equation.

nFe2S3=0.025mol3=8.33×103mol

The number of Fe2S3 produced on mixing given solutions of ammonium sulfide and iron III chloride is 8.33×103mol.

The molar mass of Fe2S3 is 207.90gmol1.

The relation between the number of moles and mass of a substance is given as,

m=nMm

Where,

  • n represents the number of the substance.
  • Mm represents the molar mass of the substance.

Substitute the value of n and Mm in the above equation for the mass of Fe2S3 produced.

m=8.33×103mol207.90gmol1=1.73g

Therefore, the mass of precipitate formed on mixing given solutions of ammonium sulfide and iron III chloride is 1.73g.

Interpretation Introduction

(c)

Interpretation:

The concentration of ammonium ion and ironIII ion left in solution after the completion of the reaction is to be calculated.

Concept Introduction:

The molarity of a solution is defined as the number of mole of solute dissolved in one liter of the solution. The formula for molarity is given as,

M=nV

Where,

  • n represents the number of moles of the solute.
  • V represents the volume of the solution.

Expert Solution
Check Mark

Answer to Problem 126AP

The concentration of ammonium ion and ironIII ion left in solution after the completion of the reaction is 0.0084mol and 0.056M respectively.

Explanation of Solution

The volume of 0.500M ammonium sulfide is 50.0mL.

The volume of 0.250Miron III chloride is 100.0mL.

The number of moles of ammonium sulfide present in the reaction mixture is 0.025mol.

The dissociation reaction of ammonium sulfide in aqueous solution is represented as,

NH42Saq2NH4+aq+S2aq

Therefore, the relation between the number of moles of NH42S and NH4+ is given as,

n1=2n2

Where,

  • n1 represents the number of moles of NH4+.
  • n2 represents the number of moles of NH42S.

Substitute the value of n2 in above equation.

n1=20.025mol=0.05mol

The complete ionic equation between the ammonium sulfide and iron III chloride is represented as,

6NH4+aq+3S2aq+2Fe3+aq+6Claq6NH4+aq+6Claq+Fe2S3s

The number of moles of ammonium ions present in the solution before the reaction started and after the reaction completed is equal. Therefore, the number of moles of ammonium ion in the reaction after the completion of the reaction is 0.05mol.

The total volume of the reaction mixture is given as,

V=V1+V2

Where,

  • V1 represents the volume of ammonium sulfide solution.
  • V2 represents the volume of iron III chloride solution.

Substitute the value of V1 and V2 in the above equation.

V=50.0mL+100.0mL=150.0mL

The molarity of a solution is given as,

M=nV    (2)

Where,

  • n represents the number of moles of the solute.
  • V represents the volume of the solution.

Substitute the volume of the reaction mixture and number of moles of ammonium ion in equation (2).

M=0.05mol150.0mL1000mL1L1M1molL1=0.3333M

The molarity of ammonium ion after the reaction completed is 0.3333M.

The relation between the number of moles of NH42S and FeCl3 is given as,

nFeCl3=2nNH42S3

Where,

  • nNH42S represents the number of moles of NH42S.
  • nFeCl3 represents the number of moles of FeCl3.

Substitute the value of number of moles NH42S of reacted in the above equation.

nFeCl3=20.025mol3=0.0166mol

The number of moles of FeCl3 required to react with 0.025mol of NH42S is 0.0166mol but the number of moles of FeCl3 present in the reaction mixture is 0.025mol therefore some amount of FeCl3 will remain unreacted in the reaction mixture. The amount of FeCl3 remain unreacted is given as,

n=n1n2

Where,

  • n1 represents the number of moles of FeCl3 present before the reaction gets completed.
  • n2 represents the number of moles of FeCl3 consumed in the reaction.

Substitute the value of n1 and n2 in the above equation.

n=0.025mol0.0166mol=0.0084mol

The number of moles of FeCl3 remains in the solution is 0.0084mol. Therefore, the number of moles of Fe3+ is 0.0084mol.

Substitute the volume of the reaction mixture and number of moles of ironIII ion in equation (2).

M=0.0084mol150.0mL1000mL1L1M1molL1=0.056M

The molarity of ironIII ion after the reaction completed is 0.056M.

Interpretation Introduction

(d)

Interpretation:

The mass of solid iron III chloride required to prepare the given solution of iron III chloride is to be calculated.

Concept Introduction:

The molarity of a solution is defined as the number of mole of solute dissolved in one liter of the solution. The formula for molarity is given as,

M=mMmV

Where,

  • m represents the mass of the solute.
  • V represents the volume of the solution.
  • Mm represents the molar mass of the solute.

Expert Solution
Check Mark

Answer to Problem 126AP

The mass of iron III chloride required to prepare 100.0mL of 0.250M solution is 5.1975g.

Explanation of Solution

The volume of 0.250Miron III chloride is 100.0mL.

The molar mass of iron III chloride is 207.90gmol1.

The molarity of a solution is given as,

M=mMmV

Where,

  • m represents the mass of the solute.
  • V represents the volume of the solution.
  • Mm represents the molar mass of the solute.

Rearrange the above equation for the value of m.

m=MMmV

Substitute the value of M, V and Mm in the above equation.

m=0.250M1molL11M207.90gmol1100.0mL1L1000mL=5.1975g

Therefore, the mass of iron III chloride required to prepare 100.0mL of 0.250M solution is 5.1975g.

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Chapter 15 Solutions

EBK INTRO.CHEMISTRY (NASTA EDITION)

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