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Optomechanical forces and electrostriction in laser optical materials

机译:激光光学材料中的光机械力和电致伸缩

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With optical tweezer methods now firmly established and the nature of optical forces on individual particles well understood, one of the separate but related issues that has only recently come to the fore concerns the effects of intense optical radiation on inter-particle forces. It has already been established that such forces, which are not dependent on optical field gradients, can effect a weak binding between particles leading in some cases to optical clustering and in others to pattern formation. In this presentation it is shown by quantum electrodynamical analysis that a variety of other optomechanical effects can be produced in materials or systems subjected to the throughput of intense, non-resonant laser radiation. In particular, an optical electrostriction phenomenon is identified and shown to be widely operative in laser optical materials. Although a classical electrodynamical interpretation (in terms of interactions between induced dipoles) comfortably predicts the sign of the resulting mechanical force, it is shown that such a picture has significant limitations in addressing this fundamentally photonic phenomenon. The key parameters that determine the size and character of optical electrostriction are delineated and its significance is quantitatively assessed. The experimental challenges involved in characterizing such phenomena are also given a detailed appraisal.
机译:现在已经牢固地建立了光镊方法,并且很好地理解了单个粒子上的光学力的性质,直到最近才出现的一个独立但相关的问题之一就是强光辐射对粒子间力的影响。已经确定的是,不依赖于光场梯度的这种力会引起颗粒之间的弱结合,在某些情况下导致光学聚集,而在其他情况下导致图案形成。在本演示中,通过量子电动力学分析表明,在经受强的,非共振的激光辐射通过的材料或系统中,可以产生多种其他的光机械效应。特别地,光学电致伸缩现象被识别并显示出在激光光学材料中可广泛使用。尽管经典的电动力学解释(就感应的偶极子之间的相互作用而言)可以舒适地预测所产生的机械力的信号,但已表明,此类图像在解决这种基本的光子现象方面有很大的局限性。描述了确定光学电致伸缩的大小和特征的关键参数,并对其重要性进行了定量评估。还详细评估了表征此类现象的实验挑战。

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