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Chapter 9, Problem 9.53PAE

9.53 Using these reactions, find the standard enthalpy change for the formation of 1 mol of PhO(s) from lead metal and oxygen gas.

   PbO(s) + C ( graphite ) Pb(s) + CO(g)

   Δ H ° = 106.8 kJ

   2C(graphite) + O2(g) 2CO(g)

   Δ H ° = -221.0 kJ

If 250 g of lead reacts with oxygen to form lead(II) oxide, what quantity of thermal energy (in kJ) is ahsorhed or evolved?

Expert Solution & Answer
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Interpretation Introduction

Interpretation: The quantity of thermal energy absorbed or evolved has to be calculated when 250g of lead reacts with oxygen to form lead(II) oxide.

Concept introduction:

  • Hess’s law states that irrespective of the multiple steps in a reaction, the total enthalpy change is the summation of all the changes.
  • The Hess’s law allows us to calculate the heat of reaction for any reaction that occurs at standard conditions using heat of formation of reactants and products.
  • The standard enthalpy change for a reaction can be calculated as: ΔH°=nΔHf°(products)nΔHf°(reactants), where ΔH° is the enthalpy or the heat of the reaction and ΔHf is the heat of formation.

Given:

PbO(s)+C(s,graphite)Pb(s)+ CO(g)ΔH°=106.8kJ    (i)2C(s,graphite)+O2(g)2CO(g)ΔH°=221.0kJ(ii)

Answer to Problem 9.53PAE

Solution: The quantity of thermal energy absorbed or evolved when 250g of lead reacts with oxygen to form lead(II) oxide is -262.2 kJ.

Explanation of Solution

The enthalpy or the standard heat of a reaction equals the difference between the sum of all the standard heats of formation of the products and the sum of all the standard heats of formation of the reactants. Here “n” is the number by which heat of formation for each reactant or product must be multiplied and we obtain it from the balanced equation.

To obtain the equation for reaction of lead with oxygen to form lead(II) oxide, subtract 2 times equation (i) from equation (ii).

 2C(s,graphite)+O2(g)2CO(g)(ii)-2PbO(s)+2C(s,graphite)2Pb(s)+ 2CO(g)    (i)×22Pb(s)+O2(g)2PbO(s)

ΔH°=nΔHf°(products)nΔHf°(reactants)={-221.02 - 2(106.8)}kJ = - 434.62 kJ

Molecular weight of lead = 207.2 g/mol

From the balanced chemical equation, when 2 mole, i.e., 2×207.2g = 414.4g of lead reacted, the heat given off is - 434.62 kJ

Therefore, when 250g of lead reacted, the heat given off is =- 434.62 kJ 414.4g×250g=-262.2 kJ

Conclusion

The quantity of thermal energy absorbed or evolved when 250g of lead reacts with oxygen to form lead(II) oxide is -262.2 kJ

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Chapter 9 Solutions

Bundle: Chemistry for Engineering Students, Loose-Leaf Version, 4th + OWLv2 with MindTap Reader with Student Solutions Manual, 1 term (6 months) Printed Access Card

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