论文标题
分形网络中量子传输的灯光
Shining Light on Quantum Transport in Fractal Networks
论文作者
论文摘要
分形是引人入胜的结构,不仅是因为它们的美学吸引力,而且还因为它们允许研究非整体维度的物理特性。在这些非常规的系统中,可能会发挥无数的内在特征,例如分形维度,光谱维度或分形几何形状。尽管有丰富的理论和数值研究,但在分形网络中进行的实验仍然难以捉摸。在这里,我们通过在分形光子晶格中以渐进式传播长度进行连续的时间量子步行,从而实验研究了分形网络中的量子传输。光子充当步行者,并在注入一个初始位点后在晶格中演变。我们在不同的传播长度上通过光子演化模式以及对方差和p'olya数的分析推出了传输性能,这些分析是根据模式的概率分布来计算的。与经典分形相反,我们观察到仅由分形维控制的异常运输。另外,从正常运输到异常转运的过渡高度取决于分形几何形状的临界点。我们的实验允许以定量的方式验证物理定律,并以前所未有的细节揭示运输动力学,从而为理解受分形控制的更复杂的量子现象的理解打开了途径。
Fractals are fascinating structures, not only for their aesthetic appeal, but also because they allow for the investigation of physical properties in non-integer dimensions. In these unconventional systems, a myriad of intrinsic features might come into play, such as the fractal dimension, the spectral dimension, or the fractal geometry. Despite abundant theoretical and numerical studies, experiments in fractal networks remain elusive. Here, we experimentally investigate quantum transport in fractal networks by performing continuous-time quantum walks in fractal photonic lattices with incremental propagation lengths. Photons act as the walkers and evolve in the lattices after being injected into one initial site. We unveil the transport properties through the photon evolution pattern at different propagation lengths and the analysis of the variance and the P'olya number, which are calculated based on the probability distribution of the patterns. Contrarily to classical fractals, we observe anomalous transport governed solely by the fractal dimension. In addition, the critical point at which there is a transition from normal to anomalous transport is highly dependent on the fractal geometry. Our experiment allows the verification of physical laws in a quantitative manner and reveals the transport dynamics with unprecedented detail, thus opening a path to the understanding of more complex quantum phenomena governed by fractality.