论文标题
在室温下可调腔中光的稳态超流量
Steady-state superfluidity of light in a tunable cavity at room temperature
论文作者
论文摘要
在某些条件下,预计非线性腔中的光不会像超氟一样流动。到目前为止,在稳态的液态氦气温度下,或在室温下以较高的时间标准的室温下观察到一部分部分(即极化)超氟。在这里,我们首次报告了超流腔光子光子(不是极地)的签名。在针对缺陷发射光子流体时,我们会观察到在临界强度高于临界速度以上的反向散射的抑制。室温和稳态的光子超流量由于我们充满油腔的热量非线性而出现。数值模拟定性地重现了我们的实验观察结果,并揭示了粘性光子流体如何在油的热弛豫时间内重新组织为超流体。我们的结果建立了热光非线性腔,作为在室温下探测光子超流体的平台,并提供了使用结构化镜子探索任意潜在景观中超流体的观点。
Light in a nonlinear cavity is expected to flow without friction -- like a superfluid -- under certain conditions. Until now, part-light part-matter (i.e., polariton) superfluids have been observed either at liquid helium temperatures in steady state, or at room temperature for sub-picosecond timescales. Here we report signatures of superfluid cavity photons (not polaritons) for the first time. When launching a photon fluid against a defect, we observe a suppression of backscattering above a critical intensity and below a critical velocity. Room-temperature and steady-state photon superfluidity emerges thanks to the strong thermo-optical nonlinearity of our oil-filled cavity. Numerical simulations qualitatively reproduce our experimental observations, and reveal how a viscous photon fluid reorganizes into a superfluid within the thermal relaxation time of the oil. Our results establish thermo-optical nonlinear cavities as platforms for probing photon superfluidity at room temperature, and offer perspectives for exploring superfluidity in arbitrary potential landscapes using structured mirrors.