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A robust single-beam optical trap for a gram-scale mechanical oscillator

机译:用于克级机械振荡器的坚固的单光束光阱

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摘要

Precise optical control of microscopic particles has been mastered over the past three decades, with atoms, molecules and nano-particles now routinely trapped and cooled with extraordinary precision, enabling rapid progress in the study of quantum phenomena. Achieving the same level of control over macroscopic objects is expected to bring further advances in precision measurement, quantum information processing and fundamental tests of quantum mechanics. However, cavity optomechanical systems dominated by radiation pressure – so-called ‘optical springs’ – are inherently unstable due to the delayed dynamical response of the cavity. Here we demonstrate a fully stable, single-beam optical trap for a gram-scale mechanical oscillator. The interaction of radiation pressure with thermo-optic feedback generates damping that exceeds the mechanical loss by four orders of magnitude. The stability of the resultant spring is robust to changes in laser power and detuning, and allows purely passive self-locking of the cavity. Our results open up a new way of trapping and cooling macroscopic objects for optomechanical experiments.
机译:在过去的三十年中,人们已经掌握了对微观粒子的精确光学控制,如今原子,分子和纳米粒子通常以非凡的精度被捕获和冷却,从而使量子现象的研究得以迅速发展。在宏观对象上实现相同级别的控制有望在精度测量,量子信息处理和量子力学的基础测试方面带来进一步的进步。但是,由于光腔的动态响应延迟,以辐射压力为主的腔光机械系统(所谓的“光学弹簧”)固有地不稳定。在这里,我们演示了用于克级机械振荡器的完全稳定的单光束光阱。辐射压力与热光反馈的相互作用产生的阻尼比机械损耗超出了四个数量级。合成弹簧的稳定性对于激光功率的变化和失谐具有鲁棒性,并且允许腔体的纯粹被动自锁。我们的研究结果为光机械实验开辟了一种捕获和冷却宏观物体的新方法。

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