A Chemistry 1A student drops 65.0 grams of copper (cp = 0.385 J/g⋅°C) with an original temperature of 95.4 °C into a coffee cup calorimeter containing 100.0 grams of water. The water in the calorimeter is initially at 23.5 °C before the copper is added. Assuming no heat is lost to the environment, what will be the final temperature (°C) of the water?  Do not type units into your answer.

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Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell
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Chapter6: Thermochemisty
Section: Chapter Questions
Problem 6.72QP: When ice at 0C melts to liquid water at 0C, it absorbs 0.334 kJ of heat per gram. Suppose the heat...
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A Chemistry 1A student drops 65.0 grams of copper (cp = 0.385 J/g⋅°C) with an original temperature of 95.4 °C into a coffee cup calorimeter containing 100.0 grams of water. The water in the calorimeter is initially at 23.5 °C before the copper is added. Assuming no heat is lost to the environment, what will be the final temperature (°C) of the water?  Do not type units into your answer.

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