论文标题
Casimir弹簧和宏观腔体光学机械稀释
Casimir spring and dilution in macroscopic cavity optomechanics
论文作者
论文摘要
Casimir力在1948年被预测为零点能量之间宏观体之间产生的力。在有限温度下,已经表明,由于热量而不是零点能量,存在热Casimir力,并且越来越多的实验表征了在一系列温度和距离处的效果。此外,在腔体光学机械快速发展的领域中,还有一项努力来操纵声子并增强连贯性。我们通过将金属sin膜与光子重输入腔耦合,通过首次观察Casimir春季和宏观光学机械稀释来展示一种实现这一目标的新方法。空间局部化的Casimir春季模拟的吸引人的无接触式边界条件通过耗散稀释导致应变和声学连贯性的增加。这项工作是一种通过热光子操纵声子的新方法,导致``原位''可重新配置机械状态,减少损失机制并创建新型的声学非线性类型 - 均在室温下。
The Casimir force was predicted in 1948 as a force arising between macroscopic bodies from the zero-point energy. At finite temperatures it has been shown that a thermal Casimir force exists due to thermal rather than zero-point energy and there are a growing number of experiments that characterise the effect at a range of temperatures and distances. Additionally, in the rapidly evolving field of cavity optomechanics there is an endeavor to manipulate phonons and enhance coherence. We demonstrate a new way to achieve this through the first observation of Casimir spring and dilution in macroscopic optomechanics, by coupling a metallic SiN membrane to a photonic re-entrant cavity. The attraction of the spatially-localised Casimir spring mimics a non-contacting boundary condition giving rise to increased strain and acoustic coherence through dissipation dilution. This work invents a new way to manipulate phonons via thermal photons leading to ``in situ'' reconfigurable mechanical states, to reduce loss mechanisms and to create new types of acoustic non-linearity -- all at room temperature.