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Ch.19 - Chemical Thermodynamics
Brown - Chemistry: The Central Science 14th Edition
Brown14th EditionChemistry: The Central ScienceISBN: 9780134414232당신이 사용하는 게 아니라요?교과서 변경
19장, 문제 40a

For each of the following pairs, predict which substance possesses the larger entropy per mole: (a) 1 mol of O2(g) at 300 °C, 0.01 atm, or 1 mol of O3(g) at 300 °C, 0.01 atm

검증된 단계별 안내
1
Identify the molecular structures of the substances involved: O2 (oxygen) is a diatomic molecule, while O3 (ozone) is a triatomic molecule.
Consider the degrees of freedom for each molecule. O2 has translational, rotational, and vibrational modes, while O3, being a larger molecule, has more vibrational modes due to its additional atom and bent structure.
Recall that entropy is a measure of the randomness or disorder in a system. More complex molecules with more degrees of freedom typically have higher entropy.
Compare the conditions given: both gases are at the same temperature and pressure. These conditions allow us to focus solely on the molecular complexity and degrees of freedom without considering the effects of differing external conditions.
Predict that O3 (ozone), having more degrees of freedom and a more complex molecular structure than O2 (oxygen), possesses a larger entropy per mole under the same conditions.

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주요 개념

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Entropy

Entropy is a measure of the disorder or randomness in a system. It quantifies the number of possible microstates that correspond to a given macrostate, with higher entropy indicating greater disorder. In gases, entropy increases with the number of molecules and the complexity of the molecular structure, as more arrangements are possible.
추천 영상:
가이드 코스
02:46
Entropy in Thermodynamics

Molecular Structure and Complexity

The molecular structure and complexity of a substance significantly influence its entropy. For example, O<sub>2</sub> is a diatomic molecule, while O<sub>3</sub> (ozone) is a triatomic molecule with a more complex structure. Generally, more complex molecules have higher entropy due to the increased number of vibrational and rotational modes available.
추천 영상:
가이드 코스
00:57
Complex Ions Example

Effect of Temperature and Pressure on Entropy

Temperature and pressure are critical factors affecting entropy. At higher temperatures, molecules have more kinetic energy, leading to increased molecular motion and higher entropy. Conversely, lower pressures can lead to higher entropy in gases, as there is more space for the molecules to occupy, allowing for greater disorder.
추천 영상:
가이드 코스
01:08
Standard Temperature and Pressure