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基于等离子体互连电路的片上复杂表面等离激元极化子和波导模式的控制与检测

On chip control and detection of complex SPP and waveguide modes based on plasmonic interconnect circuits.

作者信息

Zhang Canran, Xu Yijing, Tao Hui, Wang Pan, Cui Yunkang, Wang Qilong

机构信息

Joint International Research Laboratory of Information Display and Visualization, School of Electronic Science and Engineering, Southeast University, Nanjing 210096, China.

Department of Mathematics and Physics, Nanjing Institute of Technology, Nanjing 211167, China.

出版信息

Nanophotonics. 2024 Sep 9;13(23):4243-4254. doi: 10.1515/nanoph-2024-0298. eCollection 2024 Nov.

Abstract

Optical interconnects, leveraging surface plasmon modes, are revolutionizing high-performance computing and AI, overcoming the limitations of electrical interconnects in speed, energy efficiency, and miniaturization. These nanoscale photonic circuits integrate on-chip light manipulation and signal conversion, marking significant advancements in optoelectronics and data processing efficiency. Here, we present a novel plasmonic interconnect circuit, by introducing refractive index matching layer, the device supports both pure SPP and different hybrid modes, allowing selective excitation and transmission based on light wavelength and polarization, followed by photocurrent conversion. We optimized the coupling gratings to fine-tune transmission modes around specific near-infrared wavelengths for effective electrical detection. Simulation results align with experimental data, confirming the device's ability to detect complex optical modes. This advancement broadens the applications of plasmonic interconnects in high-speed, compact optoelectronic and sensor technologies, enabling more versatile nanoscale optical signal processing and transmission.

摘要

利用表面等离激元模式的光互连正在彻底改变高性能计算和人工智能,克服了电互连在速度、能源效率和小型化方面的局限性。这些纳米级光子电路集成了片上光操纵和信号转换,标志着光电子学和数据处理效率取得了重大进展。在此,我们展示了一种新型等离激元互连电路,通过引入折射率匹配层,该器件支持纯表面等离激元极化激元(SPP)和不同的混合模式,允许基于光波长和偏振进行选择性激发和传输,随后进行光电流转换。我们优化了耦合光栅,以在特定近红外波长附近微调传输模式,实现有效的电检测。模拟结果与实验数据相符,证实了该器件检测复杂光学模式的能力。这一进展拓宽了等离激元互连在高速、紧凑光电子和传感器技术中的应用,实现了更通用的纳米级光信号处理和传输。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a6a/11636411/3c46988eb904/j_nanoph-2024-0298_fig_001.jpg

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