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Controlling dispersion forces between small particles with artificially created random light fields

机译:通过人工创建的随机光场控制小颗粒之间的分散力

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摘要

Appropriate combinations of laser beams can be used to trap and manipulate small particles with optical tweezers as well as to induce significant optical binding forces between particles. These interaction forces are usually strongly anisotropic depending on the interference landscape of the external fields. This is in contrast with the familiar isotropic, translationally invariant, van der Waals and, in general, Casimir-Lifshitz interactions between neutral bodies arising from random electromagnetic waves generated by equilibrium quantum and thermal fluctuations. Here we show, both theoretically and experimentally, that dispersion forces between small colloidal particles can also be induced and controlled using artificially created fluctuating light fields. Using optical tweezers as a gauge, we present experimental evidence for the predicted isotropic attractive interactions between dielectric microspheres induced by laser-generated, random light fields. These light-induced interactions open a path towards the control of translationally invariant interactions with tuneable strength and range in colloidal systems
机译:适当的激光束组合可用于用光镊捕获和操纵小颗粒,并在颗粒之间产生显着的光学结合力。这些相互作用力通常具有很强的各向异性,这取决于外部场的干扰情况。这与熟悉的各向同性,平移不变的范德华力以及通常由平衡量子和热涨落产生的随机电磁波产生的中性体之间的卡西米尔-利夫希茨相互作用形成鲜明的对比。在这里,我们在理论上和实验上都表明,还可以使用人工创建的波动光场来诱导和控制小胶体颗粒之间的分散力。使用光镊作为量规,我们为由激光产生的随机光场引起的介电微球之间的各向同性吸引力相互作用提供了实验证据。这些光诱导的相互作用为胶体系统中强度和范围可调的平移不变相互作用的控制开辟了道路。

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