论文标题

激光冷却一个从室温靠近量子基态的中间系统的膜

Laser cooling a membrane-in-the-middle system close to the quantum ground state from room temperature

论文作者

Saarinen, Sampo A., Kralj, Nenad, Langman, Eric C., Tsaturyan, Yeghishe, Schliesser, Albert

论文摘要

量子科学和技术中的许多协议都需要以纯量子状态初始化系统。在巨大谐振器的运动状态的背景下,这使得在难以捉摸的量子古典过渡中研究基本物理,并以增强的敏感性来测量力和加速度。激光冷却一直是在量子基态以最简单的纯状态之一制备机械谐振器的首选方法。但是,为了克服热浴的加热和脱碳,通常必须与低温冷却结合使用。在这里,我们直接从室温下直接靠近量子地面状态的超晶格,软钳制的机械谐振器。为此,我们用一个光纤镜和一个声音晶体镜来实现多功能膜设置,该镜像在室温下达到接近统一的量子合作。此外,我们还引入了相干和基于测量的量子控制技术的强大组合,这使我们能够减轻热互调噪声。我们到达的最低占用率是30个声子,受测量不精确的限制。消除低温冷却的必要性应进一步促进光学量子技术的传播。

Many protocols in quantum science and technology require initializing a system in a pure quantum state. In the context of the motional state of massive resonators, this enables studying fundamental physics at the elusive quantum-classical transition, and measuring force and acceleration with enhanced sensitivity. Laser cooling has been a method of choice to prepare mechanical resonators in the quantum ground state, one of the simplest pure states. However, in order to overcome the heating and decoherence by the thermal bath, this usually has to be combined with cryogenic cooling. Here, we laser-cool an ultracoherent, soft-clamped mechanical resonator close to the quantum ground state directly from room temperature. To this end, we implement the versatile membrane-in-the-middle setup with one fiber mirror and one phononic crystal mirror, which reaches a quantum cooperativity close to unity already at room temperature. We furthermore introduce a powerful combination of coherent and measurement-based quantum control techniques, which allows us to mitigate thermal intermodulation noise. The lowest occupancy we reach is 30 phonons, limited by measurement imprecision. Doing away with the necessity for cryogenic cooling should further facilitate the spread of optomechanical quantum technologies.

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