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微机电系统中的卡西米尔效应:材料、几何结构与计量学——综述

Casimir Effect in MEMS: Materials, Geometries, and Metrologies-A Review.

作者信息

Elsaka Basma, Yang Xiaohui, Kästner Philipp, Dingel Kristina, Sick Bernhard, Lehmann Peter, Buhmann Stefan Yoshi, Hillmer Hartmut

机构信息

Institute of Nanostructure Technologies and Analytics (INA), Technological Electronics Department, University of Kassel, Heinrich-Plett-Straße 40, 34132 Kassel, Germany.

Institute for Systems Analytics and Control (ISAC), Intelligent Embedded Systems Department, University of Kassel, Wilhelmshöher Allee 71-73, 34121 Kassel, Germany.

出版信息

Materials (Basel). 2024 Jul 9;17(14):3393. doi: 10.3390/ma17143393.

Abstract

Casimir force densities, i.e., force per area, become very large if two solid material surfaces come closer together to each other than 10 nm. In most cases, the forces are attractive. In some cases, they can be repulsive depending on the solid materials and the fluid medium in between. This review provides an overview of experimental and theoretical studies that have been performed and focuses on four main aspects: (i) the combinations of different materials, (ii) the considered geometries, (iii) the applied experimental measurement methodologies and (iv) a novel self-assembly methodology based on Casimir forces. Briefly reviewed is also the influence of additional parameters such as temperature, conductivity, and surface roughness. The Casimir effect opens many application possibilities in microelectromechanical systems (MEMS) and nanoelectromechanical systems (NEMS), where an overview is also provided. The knowledge generation in this fascinating field requires interdisciplinary approaches to generate synergetic effects between technological fabrication metrology, theoretical simulations, the establishment of adequate models, artificial intelligence, and machine learning. Finally, multiple applications are addressed as a research roadmap.

摘要

如果两个固体材料表面彼此靠近的距离小于10纳米,卡西米尔力密度,即单位面积的力,会变得非常大。在大多数情况下,这些力是吸引力。在某些情况下,根据固体材料和其间的流体介质,它们可能是排斥力。本综述概述了已开展的实验和理论研究,并聚焦于四个主要方面:(i)不同材料的组合,(ii)所考虑的几何形状,(iii)应用的实验测量方法,以及(iv)基于卡西米尔力的新型自组装方法。还简要回顾了诸如温度、电导率和表面粗糙度等附加参数的影响。卡西米尔效应在微机电系统(MEMS)和纳米机电系统(NEMS)中开启了许多应用可能性,本文也对此进行了概述。在这个迷人的领域中产生知识需要跨学科方法,以在技术制造计量学、理论模拟、建立适当模型、人工智能和机器学习之间产生协同效应。最后,将多种应用作为研究路线图进行了探讨。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5692/11278474/e0c7b088f681/materials-17-03393-g003.jpg

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