Xu Ye-Long, Fegadolli William S, Gan Lin, Lu Ming-Hui, Liu Xiao-Ping, Li Zhi-Yuan, Scherer Axel, Chen Yan-Feng
National Laboratory of Solid State Microstructures, Nanjing University, Nanjing, Jiangsu 210093, China.
Department of Physics and Kavli Nanoscience Institute, California Institute of Technology, Pasadena, California 91125, USA.
Nat Commun. 2016 Apr 20;7:11319. doi: 10.1038/ncomms11319.
As an important electron transportation phenomenon, Bloch oscillations have been extensively studied in condensed matter. Due to the similarity in wave properties between electrons and other quantum particles, Bloch oscillations have been observed in atom lattices, photonic lattices, and so on. One of the many distinct advantages for choosing these systems over the regular electronic systems is the versatility in engineering artificial potentials. Here by utilizing dissipative elements in a CMOS-compatible photonic platform to create a periodic complex potential and by exploiting the emerging concept of parity-time synthetic photonics, we experimentally realize spatial Bloch oscillations in a non-Hermitian photonic system on a chip level. Our demonstration may have significant impact in the field of quantum simulation by following the recent trend of moving complicated table-top quantum optics experiments onto the fully integrated CMOS-compatible silicon platform.
作为一种重要的电子输运现象,布洛赫振荡在凝聚态物质中已得到广泛研究。由于电子与其他量子粒子在波动性质上的相似性,布洛赫振荡已在原子晶格、光子晶格等中被观测到。相较于常规电子系统,选择这些系统的众多显著优势之一在于工程人工势方面的通用性。在此,我们通过在与CMOS兼容的光子平台中利用耗散元件来创建周期性复势,并借助奇偶时间合成光子学这一新兴概念,在芯片层面的非厄米光子系统中通过实验实现了空间布洛赫振荡。遵循将复杂的桌面量子光学实验转移到完全集成的与CMOS兼容的硅平台这一最新趋势,我们的演示可能会在量子模拟领域产生重大影响。