论文标题
超薄量子光源由非线性范德华晶体启用,具有消失的层间电子耦合
Ultrathin quantum light source enabled by a nonlinear van der Waals crystal with vanishing interlayer-electronic-coupling
论文作者
论文摘要
二维(2D)材料中的层间电子耦合可通过堆叠工程构成可调和新兴的特性。然而,它还带来了电子结构的显着演变和2D半导体中激子效应的衰减,这是通过迅速降低激发型光致发光和过渡金属二分法中的光学非线性的例证,当时单层将单层固定在货车范围内。在这里,我们报告了一种新颖的范德华晶体,氧化二氯二氯化物,具有消失的层间电子耦合和可扩展的第二次谐波产生强度,高达三个阶高,高于激子共鸣的单层WS2。重要的是,强的二阶非线性可以通过自发参数下转换(SPDC)过程,在薄片中,可以通过自发参数下转换(SPDC)过程进行相关。据我们所知,这是在2D层次材料中明确证明的第一个SPDC源,也是有史以来最薄的SPDC源。我们的工作为开发基于材料的超级芯片SPDC来源的范德华(Van der Waals)的途径,以及在古典和量子光学技术中的高性能光子调节器。
Interlayer electronic coupling in two-dimensional (2D) materials enables tunable and emergent properties by stacking engineering. However, it also brings significant evolution of electronic structures and attenuation of excitonic effects in 2D 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 novel van der Waals crystal, niobium oxide dichloride, featuring a vanishing interlayer electronic coupling and scalable second harmonic generation intensity of up to three orders higher than that of exciton-resonant monolayer WS2. Importantly, the strong second-order nonlinearity enables correlated parametric photon pair generation, via a spontaneous parametric down-conversion (SPDC) process, in flakes as thin as ~46 nm. To our knowledge, this is the first SPDC source unambiguously demonstrated in 2D 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, and high-performance photon modulators in both classical and quantum optical technologies.