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相关概念视频

Entropy and the Second Law of Thermodynamics01:20

Entropy and the Second Law of Thermodynamics

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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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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...
5.0K
Entropy01:18

Entropy

2.6K
The first law of thermodynamics is quantitatively formulated via an equation relating the internal energy of a system, the heat exchanged by it, and the work done on it. A quantitative formulation of the second law of thermodynamics leads to defining a state function, the entropy.
When an ideal gas expands isothermally, the disorder in the gas increases. From the molecular perspective, the gas molecules have more volume to move around in.
Consider an infinitesimal step in the expansion, which...
2.6K
Efficiency of The Carnot Cycle01:16

Efficiency of The Carnot Cycle

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The hypothetical Carnot cycle consists of an ideal gas subjected to two isothermal and two adiabatic processes. Since the internal energy of an ideal gas depends only on its temperature, which is the same before and after the completion of the Carnot cycle, there is no change in its internal energy. Hence, using the first law of thermodynamics, the total heat exchanged by the ideal gas equals the total work done. Thus, we can quantify the efficiency of the Carnot cycle via the heat exchanged...
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Thermodynamic Potentials01:26

Thermodynamic Potentials

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Thermodynamic potentials are state functions that are extremely useful in analyzing a thermodynamic system. They have dimensions of energy. The four important thermodynamic potentials are internal energy, enthalpy, Helmholtz free energy, and Gibbs free energy. These thermodynamic potentials can be expressed using two of the following variables: pressure, volume, temperature, and entropy. These two variables are expressed as the rate of change of the thermodynamic potential with respect to other...
781
Entropy Change in Reversible Processes01:10

Entropy Change in Reversible Processes

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In the Carnot engine, which achieves the maximum efficiency between two reservoirs of fixed temperatures, the total change in entropy is zero. The observation can be generalized by considering any reversible cyclic process consisting of many Carnot cycles. Thus, it can be stated that the total entropy change of any ideal reversible cycle is zero.
The statement can be further generalized to prove that entropy is a state function. Take a cyclic process between any two points on a p-V diagram.
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Updated: Jun 10, 2025

Quantification of Information Encoded by Gene Expression Levels During Lifespan Modulation Under Broad-range Dietary Restriction in C. elegans
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双边信息热力学系统的效率极限

Shihao Xia1, Shuanglong Han1, Ousi Pan1

  • 1Department of Physics, <a href="https://ror.org/00mcjh785">Xiamen University</a>, Xiamen 361005, People's Republic of China.

Physical review. E
|October 19, 2024
PubMed
概括

本研究使用考希-施瓦茨不等式来推导产生和子系统效率的边界. 这些发现提高了马科夫随机过程的准确性和能量转换效率.

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A Photonic System for Generating Unconditional Polarization-Entangled Photons Based on Multiple Quantum Interference
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Differential Scanning Calorimetry &#8212; A Method for Assessing the Thermal Stability and Conformation of Protein Antigen
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Differential Scanning Calorimetry — A Method for Assessing the Thermal Stability and Conformation of Protein Antigen

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Quantification of Information Encoded by Gene Expression Levels During Lifespan Modulation Under Broad-range Dietary Restriction in C. elegans
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A Photonic System for Generating Unconditional Polarization-Entangled Photons Based on Multiple Quantum Interference
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科学领域:

  • 热力学是一种热力学.
  • 量子信息理论 量子信息理论
  • 统计力学 统计力学

背景情况:

  • 的产生是非平衡热力学的一个基本概念.
  • 量化效率极限对于理解纳米系统中的能量转换至关重要.
  • 马科维斯随机过程被广泛用于模拟物理系统.

研究的目的:

  • 引入一种新的方法来推导一个子系统的生产率的下限.
  • 为两个合子系统的效率建立全面的上下界限.
  • 为了提高各种系统中显示能量转换效率范围的准确性.

主要方法:

  • 使用考希-施瓦茨不等式来导出理论边界.
  • 将衍生的边界应用于广泛的马科维亚随机过程.
  • 开发一种用于实证验证的两个量子点系统模型.

主要成果:

  • 已经建立了一个新的方法来限制子系统的生产率.
  • 两个子系统的效率得到了全面的上下界限.
  • 在提炼效率边界上的不平等的有效性通过经验验证证得到证实.
  • 这些边界适用于广泛的马科夫随机过程.

结论:

  • 发展的不平等为分析能量转换效率提供了更准确的框架.
  • 这些发现对纳米和量子系统中的热力学研究具有重大意义.
  • 这项工作促进了对随机过程中产量和效率限制的理解.