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Building Optical Matter with Binding and Trapping Forces

机译:利用结合力和诱集力构建光学物质

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Very high frequency oscillations of intense light fields interact with micron-size dielectric objects to exert dc optical forces that allow polarizable particles to levitate, to be trapped and to be bound. Such optical forces are also suitable to arrange cold atoms in optical lattices. Various assemblages of optical traps, including periodic arrays, can be constructed either with independent lasers, or with a single laser beam split into different parts later recombined by interference, as well as through the use of diffractive elements. These optical-well arrays serve as templates for writing and erasing dynamic two-dimensional and three-dimensional "optical crystals", composed of mono-dispersed polystyrene spheres in water. Subsequently, the crystals become diffractive structures themselves. The association of micro-fluidics and optical trapping allows for the formation of optical traps into micro-channels. This leads to perform microchemistry experiments, such as fluorescence detection, on individual bodies attached to trapped particles. Self-trapping due to the optical binding force relates to the interaction between different dielectric objects located in an electromagnetic field; each one reacts not only to the field of the incident beam, but also to the induced fields radiated coherently by all other particles. Optical binding strongly influences the equilibrium state and the behavior of optical crystals. It must have the potential for creating collective effects.
机译:强光场的甚高频振荡与微米大小的介电物体相互作用,产生直流光学力,使可极化粒子悬浮,被俘获并被束缚。这样的光学力也适合于在晶格中排列冷原子。可以使用独立的激光器,也可以将单个激光束分成不同的部分,然后再通过干涉以及使用衍射元件,将光阱的各种组件(包括周期阵列)构建起来。这些光阱阵列用作模板,用于写入和擦除动态二维和三维“光学晶体”,该二维晶体由水中的单分散聚苯乙烯球组成。随后,晶体本身成为衍射结构。微流体与光阱的结合允许将光阱形成为微通道。这导致在附着到捕获的粒子的单个物体上进行微化学实验,例如荧光检测。由于光学结合力而引起的自陷与位于电磁场中的不同介电物体之间的相互作用有关。每个粒子不仅对入射光束的场做出反应,而且还对所有其他粒子相干辐射的感应场做出反应。光学结合强烈影响光学晶体的平衡状态和行为。它必须具有创造集体效应的潜力。

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