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相关概念视频

Molecular Comparison of Gases, Liquids, and Solids02:26

Molecular Comparison of Gases, Liquids, and Solids

55.1K
Particles in a solid are tightly packed together (fixed shape) and often arranged in a regular pattern; in a liquid, they are close together with no regular arrangement (no fixed shape); in a gas, they are far apart with no regular arrangement (no fixed shape). Particles in a solid vibrate about fixed positions (cannot flow) and do not generally move in relation to one another; in a liquid, they move past each other (can flow) but remain in essentially constant contact; in a gas, they move...
55.1K
Speed of Sound in Solids and Liquids00:51

Speed of Sound in Solids and Liquids

3.9K
Most solids and liquids are incompressible—their densities remain constant throughout. In the presence of an external force, the molecules tend to restore to their original positions, which is only possible because the constituents interact. The interactions help the constituents pass on information about external disturbances, like sound waves. Therefore, sound waves travel faster through these media. Compared to solids, the constituents in a liquid are less tightly bound. Thus, sound...
3.9K
Phase Diagrams02:39

Phase Diagrams

50.2K
A phase diagram combines plots of pressure versus temperature for the liquid-gas, solid-liquid, and solid-gas phase-transition equilibria of a substance. These diagrams indicate the physical states that exist under specific conditions of pressure and temperature and also provide the pressure dependence of the phase-transition temperatures (melting points, sublimation points, boiling points). Regions or areas labeled solid, liquid, and gas represent single phases, while lines or curves represent...
50.2K
Phase Transitions: Sublimation and Deposition02:33

Phase Transitions: Sublimation and Deposition

20.2K
Some solids can transition directly into the gaseous state, bypassing the liquid state, via a process known as sublimation. At room temperature and standard pressure, a piece of dry ice (solid CO2) sublimes, appearing to gradually disappear without ever forming any liquid. Snow and ice sublimate at temperatures below the melting point of water, a slow process that may be accelerated by winds and the reduced atmospheric pressures at high altitudes. When solid iodine is warmed, the solid sublimes...
20.2K
Phase Transitions02:31

Phase Transitions

23.2K
Whether solid, liquid, or gas, a substance's state depends on the order and arrangement of its particles (atoms, molecules, or ions). Particles in the solid pack closely together, generally in a pattern. The particles vibrate about their fixed positions but do not move or squeeze past their neighbors. In liquids, although the particles are closely spaced, they are randomly arranged. The position of the particles are not fixed—that is, they are free to move past their neighbors to...
23.2K
Molecular and Ionic Solids02:54

Molecular and Ionic Solids

20.1K
Crystalline solids are divided into four types: molecular, ionic, metallic, and covalent network based on the type of constituent units and their interparticle interactions.
Molecular Solids
Molecular crystalline solids, such as ice, sucrose (table sugar), and iodine, are solids that are composed of neutral molecules as their constituent units. These molecules are held together by weak intermolecular forces such as London dispersion forces, dipole-dipole interactions, or hydrogen bonds, which...
20.1K

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相关实验视频

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Monitoring Protein Adsorption with Solid-state Nanopores
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压力对固体表面液相吸附的作用

Maria Incoronata Sciancalepore1, Stuart M Clarke2, Philip J Camp1

  • 1School of Chemistry, University of Edinburgh, David Brewster Road, Edinburgh EH9 3FJ, Scotland.

Langmuir : the ACS journal of surfaces and colloids
|February 2, 2026
PubMed
概括

高压显著影响液体溶液中溶解物吸附. 溶液混合体积决定了吸附是否随着压力增加或减少,这对于滑等高压应用至关重要.

科学领域:

  • 物理化学 物理化学
  • 表面科学是一门学科.
  • 热力学是一种热力学.

背景情况:

  • 压力对气体吸附的影响是众所周知的,但高压液体溶液吸附仍然不那么清楚.
  • 高压吸附对于表面活性分子在滑等应用中至关重要,影响性能.

研究的目的:

  • 探索高压对液体溶液中溶解物吸附的热力学影响.
  • 为了确定溶液的特性,特别是混合量,如何影响压力下的吸附行为.

主要方法:

  • 由实验数据启发的液溶液热力学理论探索.
  • 开发Langmuir类型的模型,以预测表面覆盖面作为溶解物分数的函数.
  • 分子动力学模拟以说明热力学关系和估计压力效应.

主要成果:

  • 混合体的体积及其与溶解物分数的梯度强烈影响压力依赖吸附.
  • 具有正 (负) 混合体积的稀释溶液在压力上升时呈现增加 (减少) 的吸附.
  • 千兆帕斯卡压力可以改变吸附常数的一个数量级.

结论:

  • 溶液热力学,特别是混合量,是理解高压吸附的关键.

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  • 这些发现为预测和控制高压系统中的吸附提供了一个框架.
  • 这项研究对在发动机和轮机等苛刻环境中的材料性能有影响.