范德瓦尔斯力
单层
光致发光
Crystal(编程语言)
材料科学
堆积
凝聚态物理
光子
半导体
联轴节(管道)
激子
分子物理学
化学物理
光电子学
纳米技术
物理
光学
分子
量子力学
核磁共振
计算机科学
冶金
程序设计语言
作者
Qiangbing Guo,Xiao‐Zhuo Qi,Lishu Zhang,Meng Gao,Sanlue Hu,Wenju Zhou,Wenjie Zang,Xiaoxu Zhao,Junyong Wang,Bingmin Yan,Mingquan Xu,Yunkun Wu,Goki Eda,Zewen Xiao,Shengyuan A. Yang,Huiyang Gou,Yuan Ping Feng,Guang‐Can Guo,Wu Zhou,Xi‐Feng Ren,Cheng‐Wei Qiu,Stephen J. Pennycook,Andrew T. S. Wee
出处
期刊:Nature
[Springer Nature]
日期:2023-01-04
卷期号:613 (7942): 53-59
被引量:116
标识
DOI:10.1038/s41586-022-05393-7
摘要
Interlayer electronic coupling in two-dimensional materials enables tunable and emergent properties by stacking engineering. However, it also results in significant evolution of electronic structures and attenuation of excitonic effects in two-dimensional semiconductors as exemplified by quickly degrading excitonic photoluminescence and optical nonlinearities in transition metal dichalcogenides when monolayers are stacked into van der Waals structures. Here we report a van der Waals crystal, niobium oxide dichloride (NbOCl2), featuring vanishing interlayer electronic coupling and monolayer-like excitonic behaviour in the bulk form, along with a scalable second-harmonic generation intensity of up to three orders higher than that in monolayer WS2. Notably, the strong second-order nonlinearity enables correlated parametric photon pair generation, through a spontaneous parametric down-conversion (SPDC) process, in flakes as thin as about 46 nm. To our knowledge, this is the first SPDC source unambiguously demonstrated in two-dimensional layered materials, and the thinnest SPDC source ever reported. Our work opens an avenue towards developing van der Waals material-based ultracompact on-chip SPDC sources as well as high-performance photon modulators in both classical and quantum optical technologies1–4. A van der Waals crystal, niobium oxide dichloride, with vanishing interlayer electronic coupling and considerable monolayer-like excitonic behaviour in the bulk, as well as strong and scalable second-order optical nonlinearity, is discovered, which enables a high-performance quantum light source.
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