论文标题

非线性光学机械制度中的机械振荡器温度计

Mechanical oscillator thermometry in the nonlinear optomechanical regime

论文作者

Montenegro, Victor, Genoni, Marco G., Bayat, Abolfazl, Paris, Matteo G. A.

论文摘要

光学机械系统是可控光结合相互作用的有前途的平台。当机械振荡器冷却到几乎达到其基态时,他们能够提供几种基本和实用的新颖特征。在此框架中,测量振荡器的有效温度可能是这些系统表征的最相关步骤。在常规方案中,腔体被强烈驱动,整体系统由线性(高斯保存)哈密顿式式驱动很好地描述。在这里,我们通过通过非高斯辐射压力相互作用来考虑未发光的光力学系统,偏离了该制度。为了测量最初处于热状态的机械振荡器的温度,我们使用光作为探针与之相互作用并创建纠缠状态。我们表明,光学探针具有非线性相,是由于非高斯相互作用而产生的,并经历了不连贯的相扩散过程。为了有效地从纠缠的光态状态推断温度,我们建议在同型探测器之前使用非线性Kerr培养基。值得注意的是,放置Kerr培养基可提高精度,几乎饱和由量子Fisher信息给出的最终量子。此外,它还简化了温度测定过程,因为它可以独立于温度的同源局相选择,从而避免了对自适应感测方案的需求。

Optomechanical systems are promising platforms for controlled light-matter interactions. They are capable of providing several fundamental and practical novel features when the mechanical oscillator is cooled down to nearly reach its ground state. In this framework, measuring the effective temperature of the oscillator is perhaps the most relevant step in the characterization of those systems. In conventional schemes, the cavity is driven strongly, and the overall system is well-described by a linear (Gaussian preserving) Hamiltonian. Here, we depart from this regime by considering an undriven optomechanical system via non-Gaussian radiation-pressure interaction. To measure the temperature of the mechanical oscillator, initially in a thermal state, we use light as a probe to coherently interact with it and create an entangled state. We show that the optical probe gets a nonlinear phase, resulting from the non-Gaussian interaction, and undergoes an incoherent phase diffusion process. To efficiently infer the temperature from the entangled light-matter state, we propose using a nonlinear Kerr medium before a homodyne detector. Remarkably, placing the Kerr medium enhances the precision to nearly saturate the ultimate quantum bound given by the quantum Fisher information. Furthermore, it also simplifies the thermometry procedure as it makes the choice of the homodyne local phase independent of the temperature, which avoids the need for adaptive sensing protocols.

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