Valleytronics公司
光子
纳米光子学
物理
手性(物理)
电子
光子纠缠
光子学
光电子学
凝聚态物理
量子纠缠
光学
粒子物理学
自旋电子学
对称性破坏
手征对称破缺
量子力学
铁磁性
Nambu–Jona Lasinio模型
量子
作者
Yang Chen,Shuhang Qian,Kai Wang,Xiangyuan Xing,Andrew T. S. Wee,Kian Ping Loh,Bing Wang,Dong Wu,Jiaru Chu,Andrea Alù,Peixiang Lu,Cheng‐Wei Qiu
标识
DOI:10.1038/s41565-022-01217-x
摘要
Valleytronics is a promising candidate to address low-energy signal transport on chip, leveraging the valley pseudospin of electrons as a new degree of freedom to encode, process and store information1,2,3,4,5,6,7. However, valley-carrier nanocircuitry is still elusive, because it essentially requires valley transport that overcomes three simultaneous challenges: high fidelity, high directionality and room-temperature operation. Here we experimentally demonstrate a nanophotonic circuit that can route valley indices of a WS2 monolayer unidirectionally via the chirality of photons. Two propagating modes are supported in the gap area of the circuit and interfere with each other to generate beating patterns, which exhibit complementary profiles for circular dipoles of different handedness. Based on the spin-dependent beating patterns, we showcase valley fidelity of chiral photons up to 98%, and the circulation directionality is measured to be 0.44 ± 0.04 at room temperature. The proposed nanocircuit can not only enable the construction of large-scale valleytronic networks but also serve as an interactive interface to integrate valleytronics3,4,5, spintronics8,9,10 and integrated photonics11,12,13, opening new possibilities for hybrid spin-valley-photon ecosystems at the nanoscale.
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