Instant hot packs contain a solid and a pouch of water. When the pack is squeezed, the pouch breaks and the solid dissolves, increasing the temperature because of the exothermic reaction.The following reaction is used to make a hot pack: LiCl(s)⟶Li+(aq)+Cl−(aq)ΔH=−36.9kJ What is the final temperature in a squeezed hot pack that contains 27.9 gg of LiClLiCl dissolved in 111 mLmL of water? Assume a specific heat of 4.18 J/(g⋅∘C)J/(g⋅∘C) for the solution, an initial temperature of 25.0 ∘C∘C, and no heat transfer between the hot pack and the environment. Express your answer with the appropriate units.

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Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
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Chapter1: Chemical Foundations
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Instant hot packs contain a solid and a pouch of water. When the pack is squeezed, the pouch breaks and the solid dissolves, increasing the temperature because of the exothermic reaction.
The following reaction is used to make a hot pack:

LiCl(s)⟶Li+(aq)+Cl−(aq)ΔH=−36.9kJ

What is the final temperature in a squeezed hot pack that contains 27.9 gg of LiClLiCl dissolved in 111 mLmL of water? Assume a specific heat of 4.18 J/(g⋅∘C)J/(g⋅∘C) for the solution, an initial temperature of 25.0 ∘C∘C, and no heat transfer between the hot pack and the environment.
Express your answer with the appropriate units.
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