论文标题
在低温温度下,高度稳定且完全可调的开放微腔平台
A highly stable and fully tunable open microcavity platform at cryogenic temperatures
论文作者
论文摘要
开放式微腔是增强固态量子和纳米系统的光结合相互作用的强大工具,并且是推进量子技术应用程序的关键。为此,腔体应同时满足两个相互矛盾的要求 - 完全可调能够应对材料的空间和光谱不均匀性,并且在低温环境中运行中的最高稳定性以维持共振条件。为了应对这一挑战,我们开发了一个完全可调的,开放式的,基于纤维的Fabry-Pérot微型腔平台,该平台也可以在闭合周期低温恒温器中的噪声水平提高下进行操作。它包括定制设计的单片微和纳米定位元件,最大毫米尺度的行进范围,在闭合周期低温恒温器中仅15 pm RMS的被动腔长度稳定性,在更安静的流动流cryostat中下午5点。可以通过主动稳定来进一步改善这一点,并且在腔体镜之间的直接机械接触中获得了更高的稳定性,在闭合循环冷冻冷却器的安静阶段中,RMS得出0:8 pm。该平台提供了具有高技巧和较小模式体积的低温腔的操作,可强烈增强光 - 物质相互作用,从而为具有多种量子和纳米材料的实验开辟了新的可能性。
Open-access microcavities are a powerful tool to enhance light-matter interactions for solid-state quantum and nano systems and are key to advance applications in quantum technologies. For this purpose, the cavities should simultaneously meet two conflicting requirements - full tunability to cope with spatial and spectral inhomogeneities of a material, and highest stability under operation in a cryogenic environment to maintain resonance conditions. To tackle this challenge, we have developed a fully-tunable, open-access, fiber-based Fabry-Pérot microcavity platform which can be operated also under increased noise levels in a closed-cycle cryostat. It comprises custom-designed monolithic micro- and nanopositioning elements with up to mm-scale travel range that achieve a passive cavity length stability at low temperature of only 15 pm rms in a closed-cycle cryostat, and 5 pm in a more quiet flow cryostat. This can be further improved by active stabilization, and even higher stability is obtained under direct mechanical contact between the cavity mirrors, yielding 0:8 pm rms during the quiet phase of the closed-cycle cryo cooler. The platform provides operation of cryogenic cavities with high finesse and small mode volume for strong enhancement of light-matter interactions, opening up novel possibilities for experiments with a great variety of quantum and nano materials.