A 432.00 sample of an unknown metal at 101.93°C is placed in a calorimeter containing 131.00 ml of water at 23.62°C. After the metal is placed in the calorimeter, the final temperature of the water is 29.42"C. What is the specific heat capacity of the metal? Assume the density of the water is 1.00g/ml and the specific heat of the water is 4.184 J/g-K.

Chemistry: An Atoms First Approach
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Author:Steven S. Zumdahl, Susan A. Zumdahl
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Chapter7: Chemical Energy
Section: Chapter Questions
Problem 109AE: A sample of nickel is heated to 99.8C and placed in a coffee-cup calorimeter containing 150.0 g...
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9:19 1
A 432.00 sample of an unknown metal at 101.93°C is placed in a calorimeter containing 131.00 mL of
water at 23.62°C. After the metal is placed in the calorimeter, the final temperature of the water is
29.42°C. What is the specific heat capacity of the metal? Assume the density of the water is 1.00g/mL
and the specific heat of the water is 4.184 J/g-K.
Transcribed Image Text:9:19 1 A 432.00 sample of an unknown metal at 101.93°C is placed in a calorimeter containing 131.00 mL of water at 23.62°C. After the metal is placed in the calorimeter, the final temperature of the water is 29.42°C. What is the specific heat capacity of the metal? Assume the density of the water is 1.00g/mL and the specific heat of the water is 4.184 J/g-K.
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