论文标题

单个光子的下调作为多体定位的探针

Down-conversion of a single photon as a probe of many-body localization

论文作者

Mehta, Nitish, Kuzmin, Roman, Ciuti, Cristiano, Manucharyan, Vladimir E.

论文摘要

粒子到更多颗粒中的衰减是相互作用的量子系统的普遍现象,发生在山脉,核反应堆或固体中。在非线性培养基中,即使是单个光子也会以相同的总能量向下转换(分裂)衰减,以相同的总能量,以费米的黄金法则给出的速度。但是,如果培养基是有限的,并且仅支持量化模式,则能源保护条件不能精确匹配。在这种情况下,光子的命运成为多体定位(MBL)的长期问题,该问题最初是在限制于量子点的单个费米 - 液态准粒子的生命周期中表达为Gedanken实验的。在这里,我们使用超导多模式腔实施了这样的实验,其非线性是为了强烈违反光子数量保护而定制的。所得的相互作用试图将单个光子激发转换为低能光子的淋浴,但由于MBL机制而失败,该机构在腔体的静态波模式频率下表现为多粒子共振的醒目光谱良好结构。每个共振都被确定为由宽频率范围的光子组成的多体辐射状态,而不是遵守费米的黄金法则理论。我们的结果引入了一个新的平台,以探索MBL的基础知识,而不必控制许多原子或Qubits。

Decay of a particle into more particles is a ubiquitous phenomenon to interacting quantum systems, taking place in colliders, nuclear reactors, or solids. In a non-linear medium, even a single photon would decay by down-converting (splitting) into lower frequency photons with the same total energy, at a rate given by Fermi's Golden Rule. However, the energy conservation condition cannot be matched precisely if the medium is finite and only supports quantized modes. In this case, the photon's fate becomes the long-standing question of many-body localization (MBL), originally formulated as a gedanken experiment for the lifetime of a single Fermi-liquid quasiparticle confined to a quantum dot. Here we implement such an experiment using a superconducting multi-mode cavity, the non-linearity of which was tailored to strongly violate the photon number conservation. The resulting interaction attempts to convert a single photon excitation into a shower of low-energy photons, but fails due to the MBL mechanism, which manifests as a striking spectral fine structure of multi-particle resonances at the cavity's standing wave mode frequencies. Each resonance was identified as a many-body state of radiation composed of photons from a broad frequency range, and not obeying the Fermi's Golden Rule theory. Our result introduces a new platform to explore fundamentals of MBL without having to control many atoms or qubits.

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