在VIS-NIR频谱中运行的光子气体传感器的进展:结构,材料和性能
Nourhan Rasheed1, Xun Li1, Mohamed Bakr1,2
1Department of Electrical and Computing Engineering, McMaster University, Hamilton, ON L8S 4L8, Canada.
Sensors (Basel, Switzerland)
|March 14, 2026
概括
光子集成电路 (PIC) 提供先进的气体传感,克服了传统方法的局限性. 本综述详细介绍了PIC传感器技术,材料以及未来用于自主监控的AI集成.
科学领域:
- 光子学 是一个光子学.
- 化学传感器 化学传感器
- 材料科学 材料科学 材料科学
背景情况:
- 传统的气体监测方法在实时准确性和灵敏度方面存在局限性.
- 光子集成电路 (PIC) 由于其高性能和小型化,提供了一个有前途的替代方案.
研究的目的:
- 提供对基于PIC的最先进气体传感器的全面审查.
- 分析不同的传感机制,材料平台和设备架构.
- 讨论当前的局限性和未来的前景,包括AI集成.
主要方法:
- 基于共振和基于吸收的传感原理的概述.
- 详细检查材料平台:,化,聚合物,石化玻璃和二维材料.
- 设备拓的比较:波导,微环共振器,马赫-泽恩德干扰仪和超表面.
主要成果:
- PIC在检测危险气体方面表现出高度的灵敏度和选择性.
- 性能基准,包括检测极限 (LoD),在各种PIC传感器设计中进行比较.
- 不同的材料平台和设备拓对特定应用具有明显的优势.
结论:
- 在气体传感技术方面,PICs是显著的进步.
- 对新型材料的进一步研究和人工智能集成可以导致完全自主感应设备.
- PIC气体传感器对于环境,工业和医疗监测至关重要.
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