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Third Law of Thermodynamics02:38

Third Law of Thermodynamics

22.1K
A pure, perfectly crystalline solid possessing no kinetic energy (that is, at a temperature of absolute zero, 0 K) may be described by a single microstate, as its purity, perfect crystallinity,and complete lack of motion means there is but one possible location for each identical atom or molecule comprising the crystal (W = 1). According to the Boltzmann equation, the entropy of this system is zero.
22.1K
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 models, the...
27.1K
Second Law of Thermodynamics00:53

Second Law of Thermodynamics

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The Second Law of Thermodynamics states that entropy, or the amount of disorder in a system, increases each time energy is transferred or transformed. Each energy transfer results in a certain amount of energy that is lost—usually in the form of heat—that increases the disorder of the surroundings. This can also be demonstrated in a classic food web. Herbivores harvest chemical energy from plants and release heat and carbon dioxide into the environment. Carnivores harvest the...
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First Law of Thermodynamics02:16

First Law of Thermodynamics

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Energy Conservation
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First Law of Thermodynamics00:37

First Law of Thermodynamics

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The First Law of Thermodynamics states that energy cannot be created or destroyed, only transformed. This can be demonstrated within a classic food web where light energy from the sun is harnessed as radiant energy by plants, converted into chemical energy, and stored as complex carbohydrates. The vegetation is then consumed by animals and during the digestion process, the sugars release energy as heat. The sugars also produce chemical energy that either gets used up doing work, stored in...
81.2K
Statements of the Second Law of Thermodynamics01:15

Statements of the Second Law of Thermodynamics

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The second law of thermodynamics can be stated in several different ways, and all of them can be shown to imply the others. The Clausius’ statement of the second law of thermodynamics is based on the irreversibility of spontaneous heat flow. It states that heat will not flow from the colder body to the hotter body unless some other process is involved. Additionally, as per the Kelvin’s statement, it is impossible to convert the heat from a single source into work without any other...
5.0K

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Direct Stochastic Optical Reconstruction Microscopy of Extracellular Vesicles in Three Dimensions
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Direct Stochastic Optical Reconstruction Microscopy of Extracellular Vesicles in Three Dimensions

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生物学的機能のためのストキャスティック熱力学

Yuansheng Cao1, Shiling Liang2

  • 1Department of Physics Tsinghua University Beijing China.

Quantitative biology (Beijing, China)
|February 12, 2026
PubMed
まとめ

このレビューでは,非均衡熱力学とストキャスティック熱力学が,生物学的機能に関する基本的な洞察をどのように提供するか探求します. 分子機械における運動とエネルギーの相互作用,エラー修正,感知,集団行動などを研究しています.

科学分野:

  • 物理と生物学インターフェース
  • 生物システムにおける熱力学

背景:

  • 生命体は物理法則,特に非均衡熱力学によって支配されている.
  • 生物学的機能を理解するには,これらの熱力学的制約を考慮する必要があります.

研究 の 目的:

  • 非均衡熱力学を生物学的機能に適用する最近の進歩をレビューする.
  • ストキャスティック熱力学と生物学の応用を紹介する.
  • 物理学の観点から生物学的過程の定量的な理解を促進する.

主な方法:

  • ストキャスティック熱力学の枠組みの紹介.
  • 熱力学原理を様々な生物系に適用する.
  • ネットワークトポロジーの内での運動学とエネルギーの分析.

主要な成果:

  • 動力学とエネルギー学の相互関係を示す.
  • ネットワークトポロジー,運動学,エネルギー学が生物学的機能にどのように影響するかを示すモデル.
  • 分子機械,エラー補正,生物学的感知,集団行動における例.

結論:

  • 均衡のない熱力学は,生物学的限界を研究するための強力なレンズを提供します.
キーワード:
生物学的な機能とは物理的な制約 物理的な制約ストカスティック熱力学 ストカスティック熱力学 ストカスティック熱力学

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  • ストキャスティック熱力学は,生物学的分析のための定量的な枠組みを提供します.
  • 物理学と生物学を橋渡しすることで,生命の基本的な働きについての理解が深まります.