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合成维度集成等离子体拓扑哈珀纳米链的近场成像

Near-field imaging of synthetic dimensional integrated plasmonic topological Harper nanochains.

作者信息

Yan Qiuchen, Zhao Boheng, Lyu Qinghong, Li Yaolong, Chu Saisai, Lu Cuicui, Hu Xiaoyong, Chan C T, Gong Qihuang

机构信息

State Key Laboratory for Mesoscopic Physics & Department of Physics, Collaborative Innovation Center of Quantum Matter & Frontiers Science Center for Nano-optoelectronics, Peking University, Beijing, China.

Key Laboratory of Advanced Optoelectronic Quantum Architecture and Measurements of Ministry of Education, Beijing Key Laboratory of Nanophotonics and Ultrafine Optoelectronic Systems, Center for Interdisciplinary Science of Optical Quantum and NEMS Integration, School of Physics, Beijing Institute of Technology, Beijing, China.

出版信息

Nat Commun. 2025 Mar 16;16(1):2592. doi: 10.1038/s41467-025-57747-0.

Abstract

Topological photonics offers immense potential for applications in integrated photonic devices and information processing chips. Aubry-André-Harper model provides a platform for exploring new physics and practical applications. However, the on-chip integration of an ultracompact Aubry-André-Harper plasmonic topological insulator has encountered two limitations: the strict precision requirements for coupling parameters during sample preparation and the presence of hotspots in the nanogaps between plasmonic nanostructures, which impede direct near-field measurements. In this work, we propose a novel approach to address these challenges by integrating gold nanodisks with connecting waveguides. The topological properties of the Aubry-André-Harper configuration are directly characterized using photoemission electron microscopy. Connecting gold nanodisks with short gold waveguides of varying widths ensures compliance with the stringent precision requirements for sample nanofabrication and minimizes the impact of plasmon hotspots. We also successfully excite nanodisks in odd or even positions of trivial staggered nanochains by using incident left- or right-circularly polarized light. This approach effectively enables polarization-multiplexing control, offering a promising method for further manipulating and refining plasmonic nanochains and their potential applications. This work provides direct in-situ measurements of topological states at the nanoscale, advancing the foundational research and practical applications of controlling synthetic dimensions in integrated plasmonic topological photonics.

摘要

拓扑光子学在集成光子器件和信息处理芯片的应用中具有巨大潜力。奥布里 - 安德烈 - 哈珀模型为探索新物理和实际应用提供了一个平台。然而,超紧凑型奥布里 - 安德烈 - 哈珀等离子体拓扑绝缘体的片上集成遇到了两个限制:样品制备过程中耦合参数的严格精度要求以及等离子体纳米结构之间纳米间隙中热点的存在,这阻碍了直接近场测量。在这项工作中,我们提出了一种新颖的方法来应对这些挑战,即将金纳米盘与连接波导集成。利用光发射电子显微镜直接表征奥布里 - 安德烈 - 哈珀构型的拓扑性质。将金纳米盘与不同宽度的短金波导相连,确保符合样品纳米加工的严格精度要求,并将等离子体热点的影响降至最低。我们还通过使用左旋或右旋圆偏振入射光成功地激发了平凡交错纳米链奇数或偶数位置的纳米盘。这种方法有效地实现了偏振复用控制,为进一步操纵和优化等离子体纳米链及其潜在应用提供了一种有前景的方法。这项工作提供了纳米尺度拓扑态的直接原位测量,推动了集成等离子体拓扑光子学中控制合成维度的基础研究和实际应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3abf/11911440/59bdb7cf5847/41467_2025_57747_Fig1_HTML.jpg

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