Chemistry & Chemical Reactivity
Chemistry & Chemical Reactivity
9th Edition
ISBN: 9781133949640
Author: John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher: Cengage Learning
Question
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Chapter 4, Problem 122IL
Interpretation Introduction

Interpretation:

The weight percent of (NH4)2SO4 in the given sample has to be determined.

Concept introduction:

  • The relation between the number of moles and mass of the substance is ,

     Numberofmole=Mass in gramMolarmass

  Mass in gramofthe substance=Numberofmole×Molarmass

  • The molar mass of an element or compound is the mass in grams of 1 mole of that substance, and it is expressed in the unit of grams per mol (g/mol).
  • For chemical reaction balanced chemical reaction equation written in accordance with the Law of conservation of mass.
  • Law of conservation of mass states that for a reaction total mass of the reactant and product must be equal.
  • Stoichiometric factor is a relationship between reactant and product which is obtained from the balanced chemical equation for a particular reaction.
  • Amountof substance=Concentrationofsubstance×volumeofthesubstance
  • Weight percent or mass percent of elements of a compound is the ratio of weight of element to the weight of whole compound and multiplied with hundred.

Expert Solution & Answer
Check Mark

Answer to Problem 122IL

The mass percent of (NH4)2SO4 in the given sample is 51.41% .

Explanation of Solution

The amount of hydrochloric acid in 50.0mLof0.100MHCl can be determined as follows,

  Amountof HCl =ConcentrationHCl×volumeHCl =0.100molL×0.05L =0.005moles ofHCl

Therefore the initial amount of HCl is 0.005mol

Amount of NaOH used in reaction with HCl is 0.0013mol

It is because 1000mL contains 0.121moles, then

11.1mL(usedinreactionwithHCl) contains 0.1211000×11.1=0.0013moles

The balanced equation for the reaction of HClandNaOH is,

  HCl+NaOHNaCl+H2O

The stoichiometric ratio between the reactant NaOH and HCl is 1:1

Therefore 0.0013 moles of NaOH reacts with 0.0013 moles of HCl.

So the final amount of HCl is 0.0013 moles.

Amount of HCl reacted with NH3 is,

InitialamountofHClFinalamountofHCl = 0.005-0.0013 =0.0037moles

Here to assess the purity of a sample of (NH4)2SO40.475g sample of impure (NH4)2SO4 is dissolved in aqueous KOH

The balanced equation for this reaction is,

  (NH4)2SO4(aq)+2KOH(aq)2NH3(aq)+K2SO4((aq)+2H2O(l)

From the balanced equation it is clear that 2 moles of NH3 are produced from 1 mole of (NH4)2SO4.

Therefore the amount of pure (NH4)2SO4 is,

0.0037moleofNH3×1moleof(NH4)2SO42moleofNH3=0.00185molesofpure(NH4)2SO4

Mass of pure (NH4)2SO4 is,

0.00185mol×132g/mol=0.2442g of pure (NH4)2SO4 in impure sample.

Therefore,

Weight percent of pure  (NH4)2SO4 =Massofpure(NH4)2SO4Massofimpure(NH4)2SO4×100 = 0.2442g0.475g×100 = 51.41%

Conclusion

The mass percent of (NH4)2SO4 in the given sample was determined.

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Chapter 4 Solutions

Chemistry & Chemical Reactivity

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