一个蒙特卡洛模拟研究一个Janus盘式液晶水滴
Andrea H Llanas-García1, Daniel Salgado-Blanco2,3
1División de Materiales Avanzados, Instituto Potosino de Investigación Científica y Tecnológica, A.C, Camino a la Presa San José 2055, Col. Lomas 4a Sección, San Luis Potosí, S. L. P. 78216, Mexico.
概括
由Janus球体限制的迪斯科液晶 (DLC) 呈现出独特的拓缺陷. 限制影响相位过渡,在强度限制下,同otropic-nematic 过渡变得连续.
科学领域:
- 材料科学 材料科学 材料科学
- 软物质物理学 软物质物理学
- 物理化学 物理化学
背景情况:
- 迪斯科液晶 (DLC) 对先进材料至关重要.
- DLCs的球形限制是理解新兴现象的关键.
- 简斯表面为封闭的流体提供了独特的边界条件.
研究的目的:
- 调查DLC流体在球形Janus限制中的行为.
- 分析同源性和平面固定对DLC的影响.
- 在封闭状态下表征拓缺陷和相变.
主要方法:
- 蒙特卡洛模拟使用NPT组合进行.
- 模拟了一个具有明显定性质的球形Janus表面.
- 在各种尺寸和温度下研究了DLC滴水的行为.
主要成果:
- 确定了两个具有k = +1/2的拓缺陷.
- 形成了一条离线线,在同位态 - 阴形转变期间连接表面缺陷.
- 同otropic-nematic过渡从一级转移到强度限制下连续的.
结论:
- 球形的Janus封闭导致了DLC中明显的拓缺陷.
- 封闭显著改变了同otropic-nematic 阶段过渡的性质.
- 即使在封闭的系统中,阴形-柱状过渡仍然是第一阶的.
相关概念视频
Colloids and Suspensions
1.8K
Children at play often make suspensions such as mixtures of mud and water, flour and water, or a suspension of solid pigments in water known as tempera paint. These suspensions are heterogeneous mixtures composed of relatively large particles visible to the naked eye or seen with a magnifying glass. They are cloudy, and the suspended particles settle out after mixing. The suspended particles in a suspension settle out after some time of mixing. The separation of particles from a suspension is...
1.8K
Viscosity of Fluid
386
Viscosity measures the resistance a fluid offers to flow and deformation. It results from internal friction between layers of fluid moving relative to one another. Dynamic viscosity, denoted by the Greek letter mu (μ), quantifies the force needed to move one fluid layer over another. For Newtonian fluids like water and air, the relationship between the shearing stress and the rate of shearing strain is linear, meaning their viscosity remains constant regardless of the applied stress.
386
Newtonian Fluid: Problem Solving
217
Newtonian fluids exhibit a constant viscosity, meaning their shear stress and shear strain rate are directly proportional. This property ensures a predictable and stable response to applied forces, maintaining a linear relationship between force and flow. Examples include water, air, and light oils, consistently demonstrating this proportional behavior regardless of external conditions.
A velocity gradient forms within the fluid when a Newtonian fluid is placed between two parallel plates, with...
A velocity gradient forms within the fluid when a Newtonian fluid is placed between two parallel plates, with...
217
Fluid Mosaic Model
11.6K
Scientists identified the plasma membrane in the 1890s and its principal chemical components (lipids and proteins) by 1915. The model for plasma membrane structure, proposed in 1935 by Hugh Davson and James Danielli, was the first model to be widely accepted in the scientific community. The model was based on the plasma membrane's "railroad track" appearance in early electron micrographs. Davson and Danielli theorized that the plasma membrane's structure resembled a sandwich...
11.6K
Capillarity in Fluid
179
Capillarity describes the movement of liquid in small spaces without external forces acting on it. The capillarity is driven by surface tension and adhesive interactions between the liquid and surrounding solid surfaces. This effect is often seen in narrow tubes, porous materials, and fine particles.
Surface tension is crucial to capillarity. It results from cohesive forces between liquid molecules at the liquid-air boundary, forming a skin that resists external forces. When the capillary tube...
Surface tension is crucial to capillarity. It results from cohesive forces between liquid molecules at the liquid-air boundary, forming a skin that resists external forces. When the capillary tube...
179
Surface Tension of Fluid
266
Surface tension is a fundamental property of fluids, occurring at the boundary between a liquid and a gas or between two immiscible liquids. This phenomenon arises from the cohesive forces between molecules at the fluid's surface, creating an effect similar to a stretched elastic membrane. Inside each fluid, molecules are equally attracted in all directions by neighboring molecules, but surface molecules experience a net inward force, resulting in surface tension.
Surface tension varies...
Surface tension varies...
266


