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首页> 外文期刊>IEEE journal of selected topics in quantum electronics >Casimir Forces and Quantum Electrodynamical Torques: Physics and Nanomechanics
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Casimir Forces and Quantum Electrodynamical Torques: Physics and Nanomechanics

机译:卡西米尔力和量子电动势:物理和纳米力学

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摘要

This paper discusses recent developments on quantum electrodynamical (QED) phenomena, such as the Casimir effect, and their use in nanomechanics and nanotechnology in general. Casimir forces and torques arise from quantum fluctuations of vacuum or, more generally, from the zero-point energy of materials and their dependence on the boundary conditions of the electromagnetic fields. Because the latter can be tailored, this raises the interesting possibility of designing QED forces for specific applications. After a concise review of the field in an historical perspective, high precision measurements of the Casimir force using microelectromechanical systems (MEMS) technology and applications of the latter to nonlinear oscillators are presented, along with a discussion of its use in nanoscale position sensors. Then, experiments that have demonstrated the role of the skin-depth effect in reducing the Casimir force are presented. The dielectric response of materials enters in a nonintuitive way in the modification of the Casimir–Lifshitz force between dielectrics through the dielectric function at imaginary frequencies $varepsilon(ixi)$. The latter is illustrated in a dramatic way by experiments on materials that can be switched between a reflective and a transparent state (hydrogen switchable mirrors). Repulsive Casimir forces between solids separated by a fluid with $varepsilon (ixi)$ intermediate between those of the solids over a large frequency range is discussed, including ongoing experiments aimed at its observation. Such repulsive forces can be used to achieve quantum floatation in a virtually frictionless environment, a phenomenon that could be exploited in innovative applications to nanomechanics. The last part of the paper deals with the elusive QED torque between birefringent materials and efforts to observe it. We conclude by highlighting f-uture important directions.
机译:本文讨论了量子电动力学(QED)现象的最新进展,例如卡西米尔效应,以及它们在纳米力学和纳米技术中的一般用途。卡西米尔力和转矩是由真空的量子涨落引起的,或更普遍的是由材料的零点能量及其对电磁场边界条件的依赖性引起的。由于后者可以定制,因此增加了为特定应用设计QED力的有趣可能性。在以历史角度对这一领域进行了简要回顾之后,介绍了使用微机电系统(MEMS)技术对卡西米尔力进行的高精度测量及其在非线性振荡器中的应用,并讨论了其在纳米级位置传感器中的使用。然后,提出了已经证明趋肤深度作用在减小卡西米尔力中的作用的实验。材料的介电响应以非直观的方式通过介电函数在虚频率$ varepsilon(ixi)$上的介电常数之间的卡西米尔-利夫希茨力的修正中进入。通过对可以在反射状态和透明状态之间切换的材料(氢可切换反射镜)的实验,戏剧性地说明了后者。讨论了在大频率范围内被流体隔开的固体之间的斥力卡西米尔力,其中在主体频率之间存在中间变量varepsilon(ixi)$,包括正在进行的旨在观察其的实验。这种排斥力可用于在几乎无摩擦的环境中实现量子漂浮,这种现象可在纳米机械的创新应用中加以利用。本文的最后一部分讨论了双折射材料之间难以捉摸的QED扭矩以及对其进行观察的努力。最后,我们着重指出未来的重要方向。

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