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Ch.7 - Thermochemistry
Tro - Chemistry: A Molecular Approach 6th Edition
Tro6th EditionChemistry: A Molecular ApproachISBN: 9780137832217Non è quello che usi tu?Cambia libro di testo
Capitolo 7, Problema 77

When 1.03 g of biphenyl (C12H10) undergoes combustion in a bomb calorimeter, the temperature rises from 24.2 °C to 2931.4 °C. Find ΔErxn for the combustion of biphenyl in kJ>mol biphenyl. The heat capacity of the bomb calorimeter, determined in a separate experiment, is 5.86 kJ/°C.

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Identify the given values: mass of biphenyl = 1.03 g, initial temperature = 24.2 °C, final temperature = 2931.4 °C, and heat capacity of the calorimeter = 5.86 kJ/°C.
Calculate the temperature change (ΔT) by subtracting the initial temperature from the final temperature: ΔT = 2931.4 °C - 24.2 °C.
Use the formula q = C_calorimeter * ΔT to calculate the heat absorbed by the calorimeter, where q is the heat absorbed and C_calorimeter is the heat capacity of the calorimeter.
Convert the mass of biphenyl to moles using its molar mass (C12H10), which is approximately 154.21 g/mol.
Calculate ΔE_rxn in kJ/mol by dividing the heat absorbed by the calorimeter (q) by the number of moles of biphenyl.

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Combustion Reaction

A combustion reaction is a chemical process in which a substance reacts rapidly with oxygen, producing heat and light. In this case, biphenyl (C12H10) combusts, releasing energy as it transforms into carbon dioxide and water. Understanding the stoichiometry of the reaction is essential for calculating the energy change associated with the combustion.
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Combustion Apparatus

Calorimetry

Calorimetry is the science of measuring the heat of chemical reactions or physical changes. In this scenario, a bomb calorimeter is used to measure the heat released during the combustion of biphenyl. The temperature change observed in the calorimeter, along with its heat capacity, allows for the calculation of the energy change (ΔErxn) for the reaction.
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Constant-Volume Calorimetry

Enthalpy Change (ΔErxn)

The enthalpy change (ΔErxn) for a reaction represents the amount of energy absorbed or released during the reaction per mole of reactant. It is calculated using the formula ΔErxn = -C × ΔT, where C is the heat capacity of the calorimeter and ΔT is the change in temperature. This value is crucial for understanding the energy dynamics of the combustion process.
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Enthalpy of Formation
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