Tongtong Kang 1,2†Boyu Fan 3†Jun Qin 1,2Weihao Yang 1,2[ ... ]Lei Bi 1,2,*
Author Affiliations
Abstract
1 National Engineering Research Center of Electromagnetic Radiation Control Materials, University of Electronic Science and Technology of China, Chengdu 610054, China
2 State Key Laboratory of Electronic Thin-Films and Integrated Devices, University of Electronic Science and Technology of China, Chengdu 610054, China
3 Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu 610054, China
4 College of Optoelectronic Engineering, Chengdu University of Information Technology, Chengdu 610225, China
5 State Key Laboratory of Vanadium and Titanium Resources Comprehensive Utilization, Panzhihua 617000, China
6 Microsystem & Terahertz Research Center, China Academy of Engineering Physics (CAEP), Chengdu 610200, China
7 Institute of Electronic Engineering, China Academy of Engineering Physics (CAEP), Mianyang 621900, China
Active metasurfaces whose optical properties can be tuned by an external stimulus have attracted great research interest recently. Introduction of VO2 phase change material in all-dielectric metasurfaces has been demonstrated to modulate the resonance wavelength and amplitude in the visible to near-infrared wavelength range. In this study, we report a mid-infrared active metasurface based on Si/VO2 hybrid meta-atoms. By incorporating VO2 thin films in different locations of Si/VO2 all-dielectric nanodisks, we demonstrate different modulation amplitude of the electric or magnetic resonance scattering cross sections, leading to drastically different transmission spectrum upon VO2 insulator to metal phase transition. The physical mechanism is originated from the field profiles of the resonance modes, which interact with VO2 differently depending on its locations. Based on this mechanism, we experimentally demonstrated a large modulation of the transmittance from 82% to 28% at the 4.6 μm wavelength. Our work demonstrates a promising potential of VO2-based active all-dielectric metasurface for mid-infrared photonic applications such as infrared camouflage, chemical/biomedical sensing, optical neuromorphic computing, and multispectral imaging.
Photonics Research
2022, 10(2): 02000373
作者单位
摘要
1 天津大学微电子学院,天津 300072
2 天津大学智能与计算学部,天津 300072
3 天津市成像与感知微电子技术重点实验室,天津 300072
人工神经网络在各类激光技术中有着广泛应用,但是传统的流水展开架构加速器无法处理激光焊接参数提取、激光诱导击穿光谱分析等计算任务所需的多种反向传播(BP)神经网络。本课题组基于Xilinx PYNQ-Z2开发平台设计并实现了一种面向激光焊接技术的BP神经网络可配置型计算加速器架构。采用可配置架构设计和复用运算单元互连的方式,硬件电路可拟合成多种BP网络结构,加速器具有灵活的可配置性;同时,采用基于多级缓存结构的数据读取方法,解决了加速器运算阵列在读入数据时因多次访问片外存储器而导致的读取速度的瓶颈。基于实际激光焊接参数数据集的计算结果表明,所设计的加速器可以高效地加速具有多种神经元数量的BP神经网络。与嵌入式处理平台相比,加速器的典型网络运算性能平均有10.5倍的提升,神经元数目超过100的大型网络运算性能有56.4倍的提升,并且处理速度优于改进前于同一平台实现的普通加速器。
机器视觉 工业光学计量 BP神经网络 人工神经网络加速器 现场可编程门阵列 
激光与光电子学进展
2022, 59(2): 0214001
Author Affiliations
Abstract
An optical fiber sensor for ultrathin layer sensing based on short-range surface plasmon polariton (SRSPP) is proposed, and the sensing characteristics are theoretically analyzed. Simulation results indicate that even for a detecting layer much thinner than the vacuum wavelength, a resolution as high as 3.7\times 10-6 RIU can be obtained. Moreover, an average thickness-detection sensitivity of 6.2 dB/nm is obtained, which enables the sensor to detect the thickness variation of the ultrathin layer up to tens of nanometers. The sensitive region of thickness could be adjusted by tuning the structure parameters.
060.2370 Fiber optics sensors 250.5403 Plasmonics 280.1415 Biological sensing and sensors 
Chinese Optics Letters
2014, 12(1): 010602

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