Principles of General Chemistry
Principles of General Chemistry
3rd Edition
ISBN: 9780073402697
Author: SILBERBERG, Martin S.
Publisher: McGraw-Hill College
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Chapter 6, Problem 6.80P

You want to determine Δ H o for the reaction Z n ( s ) + 2 H C l ( a q ) Z n C l 2 ( a q ) + H 2 ( g )

  1. To do so, you first determine the heat capacity of a calorimeter using the following reaction, whose Δ H is known:

N a O H ( a q ) + H C l ( a q ) N a C l ( a q ) + H 2 O ( l ) Δ H o = 57.32 kJ Calculate the heat capacity of the calorimeter from these data:

Amounts used: 50. mL of 2.00 M HCl and

50. mL of 2.00 M NaOH

Initial T of both solutions: 16.9°C

Maximm T recorded during reaction: 30.4°C

Density of resulting NaCl solution: 1 .04 g/mL c of 1 .00 M NaCl(aq) = 3 .93 J/g .K

  1. Use the result from part (a) and the following data to determine Δ H r x n o for the reaction between zinc and HCl(aq):

Amount used: 100 . mL of 1 .00 M HCl and 1 .3078 g of Zn Initial T of HCl solution and Zn: 16.8°C

Maximum T recorded during reaction: 24.1°C

Denstity of 1.0   M   H C l   s o l u t i o n = 1.015 g/mL c of resulting Z n C l 2 ( a q ) = 3.95  J/g .K     

  1. Given the values below, what is the error in your experiment?

Δ H f o o f  HCl(aq) = -1 .652 × 10 2 kJ/mol Δ H f o o f  ZnCl 2 (aq) = -4 .822 × 10 2 kJ/mol

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The value of ΔH° for the given equation needs to be determined.

  Zn(s)+2HCl(aq)ZnCl2(aq)+H2(g)

Concept Introduction: Following expression is used to determine heat generated.

  Heatgeneratedbythereaction=Heatofsolution+heatofcalorimeter=msolutionCsolutionΔT+CcalorimeterΔT

Answer to Problem 6.80P

Heat capacity of calorimeter is 15.87J°C .

Explanation of Solution

Calculate the heat capacity of calorimeter using the following equation.

  NaOH(aq)+2HCl(aq)NaCl(aq)+H2(g)ΔH°=57.32kJ

The amounts used are as follows:

Volume of HCl is 50.0mL and NaOH is 50.0mL.

Molarity of HCl is 2.0M and NaOH is 2M.

Initial temperature is 16.9°C and recorded temperature is 30.4°C for both solutions.

  Heatgeneratedbythereaction=Heatofsolution+heatofcalorimeter=msolutionCsolutionΔT+CcalorimeterΔT

Calculate mass of NaCl as follows:

At first calculate volume of NaCl .

  VolumeofNaCl=VolumeofNaOH+VolumeofHCl=50mL+50mL=100mL

Calculate mass of NaCl as follows:

  MassofNaCl=DensityofNaOH×VolumeofNaCl=1.04gmL×50mL=104g

  Molesreacted(HClorNaOH)=Molarity×Volume=2molL×50mL×1L1000mL=0.1mol

Calculate heat of reaction as follows:

  Heatofreaction=57.32kJ1mol×0.1mol=5.732kJ

Therefore, heat generated by the reaction is 5.732kJ .

Calculate heat capacity of calorimeter is as follows:

  Heatgeneratedbythereaction=Heatofsolution+heatofcalorimeter=msolutionCsolutionΔT+CcalorimeterΔT5.732kJ×1000J1kJ=104g×3.93Jg.K×(30.416.9)°C+Ccalorimeter(30.416.9)°C5732J=5517.72J+Ccalorimeter13.5°C

  Ccalorimeter=214.28J13.5°C=15.87J°C

Therefore, heat capacity of calorimeter is 15.87J°C .

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The value of ΔH°rxn for reaction between Zinc and ZnCl2 needs to be determined.

Concept Introduction: Following expression is used to determine heat generated.

  Heatgeneratedbythereaction=Heatofsolution+heatofcalorimeter=msolutionCsolutionΔT+CcalorimeterΔT

Answer to Problem 6.80P

Heat of reaction is 154.015kJ/mol .

Explanation of Solution

Calculate heat of reaction of the following reaction:

  Zn(s)+2HCl(aq)ZnCl2(aq)+H2(g)

Initial temperature and recorded temperature is 16.8°C and 24.1°C respectively for both solutions.

Heat capacity of ZnCl2 is 3.95Jg.K .

Density of HCl is 1.015gmL

Calculate mass of HCl as follows:

  MassofHCl=DensityofHCl×VolumeofNaCl=1.015gmL×100mL=101.5g

Calculate mass of ZnCl2 as follows:

  MassofZnCl2=MassofHCl+massofZn=101.5g+1.3078g=102.80g

  Heatgeneratedbythereaction=msolutionCsolutionΔT+CcalorimeterΔTΔH°=102.80g×3.93Jg.K×(24.116.8)°C+15.87J°C(24.116.8)°C5732J=2964.46J+115.85J=3080.31J

  MolesofZn=MassMolecularweight=1.3078g65.38gmol=0.02mol

Calculate heat of reaction for 0.02 mol as follows:

  ΔH°=3080.31J0.02mol=154015.5J/mol×1kJ1000J=154.015kJ/mol

Therefore, heat of reaction is 154.015kJ/mol .

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The error in the experiment needs to be determined.

Concept Introduction: Following expression is used to determine heat generated.

  Heatgeneratedbythereaction=Heatofsolution+heatofcalorimeter=msolutionCsolutionΔT+CcalorimeterΔT

Answer to Problem 6.80P

Error is 2.215kJmol .

Explanation of Solution

Values for heat of reaction for HCl and ZnCl2 are as follows:

  ΔH°=(niΔH°f)products(niΔH°f)reactants=1×(ΔH°f)ZnCl2+1×(ΔH°f)H22×1×(ΔH°f)HCl=4.822×102kJ2(1.652×102kJ)=151.8kJmol

Calculate error as follows:

  Error=Truevalueexperimentvalue=151kJmol(154.015kJmol)=2.215kJmol

Hence, error is 2.215kJmol .

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Chapter 6 Solutions

Principles of General Chemistry

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