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Classical and fluctuation-induced electromagnetic interactions in micron-scale systems: designer bonding, antibonding, and Casimir forces

机译:微米级系统中的经典和波动引起的电磁相互作用:设计者键合,反键合和卡西米尔力

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摘要

Whether intentionally introduced to exert control over particles and macroscopic objects, such as for trapping or cooling, or whether arising from the quantum and thermal fluctuations of charges in otherwise neutral bodies, leading to unwanted stiction between nearby mechanical parts, electromagnetic interactions play a fundamental role in many naturally occurring processes and technologies. In this review, we survey recent progress in the understanding and experimental observation of optomechanical and quantum-fluctuation forces. Although both of these effects arise from exchange of electromagnetic momentum, their dramatically different origins, involving either real or virtual photons, lead to different physical manifestations and design principles. Specifically, we describe recent predictions and measurements of attractive and repulsive optomechanical forces, based on the bonding and antibonding interactions of evanescent waves, as well as predictions of modified and even repulsive Casimir forces between nanostructured bodies. Finally, we discuss the potential impact and interplay of these forces in emerging experimental regimes of micromechanical devices.
机译:无论是有意引入以控制粒子和宏观物体(例如捕获或冷却),还是由于中性体中电荷的量子和热涨落引起,导致附近机械零件之间发生不必要的静摩擦,电磁相互作用都起着根本性的作用在许多自然发生的过程和技术中。在这篇综述中,我们调查了对光机械力和量子涨落力的理解和实验观察的最新进展。尽管这两种效应都是由电磁动量的交换引起的,但它们的起源(包括真实或虚拟的光子)截然不同,导致了不同的物理表现形式和设计原理。具体而言,我们基于e逝波的键合和反键相互作用以及纳米结构体之间的修正甚至排斥卡西米尔力的预测,描述了吸引力和排斥光机械力的最新预测和测量。最后,我们讨论了这些力在微机械装置新兴实验方案中的潜在影响和相互作用。

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