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Second Law of Thermodynamics02:49

Second Law of Thermodynamics

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In the quest to identify a property that may reliably predict the spontaneity of a process, a promising candidate has been identified: entropy. Processes that involve an increase in entropy of the system (ΔS > 0) are very often spontaneous; however, examples to the contrary are plentiful. By expanding consideration of entropy changes to include the surroundings, a significant conclusion regarding the relation between this property and spontaneity may be reached. In thermodynamic...
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The Second Law of Thermodynamics01:14

The Second Law of Thermodynamics

5.3K
In the quest to identify a property that may reliably predict the spontaneity of a process, a promising candidate has been identified: entropy. Scientists refer to the measure of randomness or disorder within a system as entropy. High entropy means high disorder and low energy. To better understand entropy, think of a student’s bedroom. If no energy or work were put into it, the room would quickly become messy. It would exist in a very disordered state, one of high entropy. Energy must be...
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Thermodynamic Systems01:06

Thermodynamic Systems

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A thermodynamic system is a set of objects whose thermodynamic properties are of interest. The system is considered to be embedded in its surroundings or the environment. The system and its environment can exchange heat and do work on each other through a boundary that separates them. However, the immediate surroundings of the system interact with it directly and therefore have a much stronger influence on its behavior and properties.
Consider an example of  tea boiling in a kettle. The...
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Zeroth Law of Thermodynamics01:14

Zeroth Law of Thermodynamics

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Experimentally, if object A is in equilibrium with object B, and object B is in equilibrium with object C, then object A is in equilibrium with object C. That statement of transitivity is called the "zeroth law of thermodynamics." For example, a cold metal block and a hot metal block are both placed on a metal plate at room temperature. Eventually, the cold block and the plate will be in thermal equilibrium. In addition, the hot block and the plate will be in thermal equilibrium.
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Entropy02:39

Entropy

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Salt particles that have dissolved in water never spontaneously come back together in solution to reform solid particles. Moreover, a gas that has expanded in a vacuum remains dispersed and never spontaneously reassembles. The unidirectional nature of these phenomena is the result of a thermodynamic state function called entropy (S). Entropy is the measure of the extent to which the energy is dispersed throughout a system, or in other words, it is proportional to the degree of disorder of a...
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Entropy and the Second Law of Thermodynamics01:20

Entropy and the Second Law of Thermodynamics

2.8K
The second law of thermodynamics can be stated quantitatively using the concept of entropy. Entropy is the measure of disorder of the system.
The relation  between entropy and disorder can be illustrated with the example of the phase change of ice to water. In ice, the molecules are located at specific sites giving a solid state, whereas, in a liquid form, these molecules are much freer to move. The molecular arrangement has therefore become more randomized. Although the change in average...
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相关实验视频

Updated: Jul 10, 2025

An Analog Macroscopic Technique for Studying Molecular Hydrodynamic Processes in Dense Gases and Liquids
11:03

An Analog Macroscopic Technique for Studying Molecular Hydrodynamic Processes in Dense Gases and Liquids

Published on: December 4, 2017

8.6K

拓上受约束的波动和热力学调节不平衡反应.

Gabriela Fernandes Martins1, Jordan M Horowitz1,2,3

  • 1Department of Physics, University of Michigan, Ann Arbor, Michigan 48109, USA.

Physical review. E
|November 18, 2023
PubMed
概括

这项研究揭示了微观细节和热力学力量如何限制系统对外部变化的反应. 这些发现适用于受体结合,显示出超出平衡预测的增强敏感性.

科学领域:

  • 统计力学 统计力学
  • 物理化学 物理化学
  • 生物物理学的生物物理.

背景情况:

  • 了解微观特性如何影响宏观物理特征至关重要.
  • 对外部干扰的系统反应是许多科学学科的基础.
  • 不平衡热力学为分析由连续能量流驱动的系统提供了一个框架.

研究的目的:

  • 为了推导出物理可观的平稳状态不平衡反应的基本极限.
  • 为了将这些极限与微观状态空间和热力学驱动力的拓学联系起来.
  • 探索对生物系统的影响,例如受体结合.

主要方法:

  • 基于状态空间拓和热力学驱动的响应约束的推导.
  • 对平衡状态不平衡条件的分析.
  • 对受体结合动态模型的应用.

主要成果:

  • 在不需要详细的动力信息的情况下,确定了系统响应的基本限制.
  • 证明这些极限取决于微观状态空间的结构.
  • 发现受体结合模型中的灵敏度受到希尔函数的限制.
  • 观察到化学驱动会提高希尔系数,超出平衡结构极限.

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Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
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Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

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Orientational Transition in a Liquid Crystal Triggered by the Thermodynamic Growth of Interfacial Wetting Sheets
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Orientational Transition in a Liquid Crystal Triggered by the Thermodynamic Growth of Interfacial Wetting Sheets

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相关实验视频

Last Updated: Jul 10, 2025

An Analog Macroscopic Technique for Studying Molecular Hydrodynamic Processes in Dense Gases and Liquids
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An Analog Macroscopic Technique for Studying Molecular Hydrodynamic Processes in Dense Gases and Liquids

Published on: December 4, 2017

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Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
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Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

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Orientational Transition in a Liquid Crystal Triggered by the Thermodynamic Growth of Interfacial Wetting Sheets
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结论:

  • 该研究为了解驱动系统中的响应限制提供了一个一般的框架.
  • 微观拓和热力学驱动是系统响应的关键决定因素.
  • 生物系统的增强敏感性可以通过超出平衡预测的不平衡效应来解释.