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Brownian motion of graphene

机译:石墨烯的布朗运动

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Brownian motion is a manifestation of the fluctuation-dissipation theorem of statistical mechanics. It regulates systems in physics, biology, chemistry, and finance. We use graphene as prototype material to unravel the consequences of the fluctuation-dissipation theorem in two dimensions, by studying the Brownian motion of optically trapped graphene flakes. These orient orthogonal to the light polarization, due to the optical constants anisotropy. We explain the flake dynamics in the optical trap and measure force and torque constants from the correlation functions of the tracking signals, as well as comparing experiments with a full electromagnetic theory of optical trapping. The understanding of optical trapping of two-dimensional nanostructures gained through our Brownian motion analysis paves the way to light-controlled manipulation and all-optical sorting of biological membranes and anisotropic macromolecules.
机译:布朗运动是统计力学的波动耗散定理的体现。它管理物理,生物学,化学和金融领域的系统。通过研究光学俘获的石墨烯薄片的布朗运动,我们使用石墨烯作为原型材料来解开二维波动耗散定理的结果。由于光学常数各向异性,这些取向正交于光偏振。我们解释了光阱中的片状动力学,并从跟踪信号的相关函数中测量了力和扭矩常数,并将实验与光阱的完整电磁理论进行了比较。通过我们的布朗运动分析获得的对二维纳米结构的光陷阱的理解为光控操作和生物膜和各向异性大分子的全光学分拣铺平了道路。

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