纳米光子学
光子学
量子
量子计算机
量子细胞自动机
计算机科学
物理
光电子学
量子力学
作者
Nicholas C. Harris,Gregory R. Steinbrecher,Mihika Prabhu,Yoav Lahini,Jacob Mower,Darius Bunandar,Changchen Chen,Franco N. C. Wong,Tom Baehr‐Jones,Michael Hochberg,Seth Lloyd,Dirk Englund
出处
期刊:Nature Photonics
[Nature Portfolio]
日期:2017-06-19
卷期号:11 (7): 447-452
被引量:492
标识
DOI:10.1038/nphoton.2017.95
摘要
Environmental noise and disorder play critical roles in quantum particle and wave transport in complex media, including solid-state and biological systems. Recent work has predicted that coupling between noisy environments and disordered systems, in which coherent transport has been arrested due to localization effects, could actually enhance transport. Photonic integrated circuits are promising platforms for studying such effects, with a central goal being the development of large systems providing low-loss, high-fidelity control over all parameters of the transport problem. Here, we fully map the role of disorder in quantum transport using a nanophotonic processor consisting of a mesh of 88 generalized beamsplitters programmable on microsecond timescales. Over 64,400 transport experiments, we observe several distinct transport regimes, including environment-assisted quantum transport and the ''quantum Goldilocks'' regime in strong, statically disordered discrete-time systems. Low loss and high-fidelity programmable transformations make this nanophotonic processor a promising platform for many-boson quantum simulation experiments.
科研通智能强力驱动
Strongly Powered by AbleSci AI