Research Advance on the Sensing Characteristics of Refractive Index Sensors Based on Electromagnetic Metamaterials

IF 1.5 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER
Zongli Wang, Xin Wang, Junlin Wang
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引用次数: 3

Abstract

Among different sensing platforms, metamaterials composed of subwavelength or deep subwavelength sized metal resonance elements arrays that are etched on semiconductor substrates or dielectric substrates exhibit excellent characteristics due to the strong localization and enhancement of resonance electromagnetic fields. As a new type of detection method, metamaterial sensors can break through the resolution limit of traditional sensors for a small amount of substance and have the advantages of high sensitivity, fast response, and simple measurement. Significant enhancement of the sensing characteristics of metamaterial sensors was realized by optimizing microstructures (single split-ring, double split-ring, nested split-ring, asymmetric split-ring, three-dimensional split-ring, etc.), using ultrathin substrates or low-index substrate materials, etching away local substrate, and integrating microfluidic channel, etc. This paper mainly reviews the research advance on the improvement of sensing characteristics from optimizing resonance structures and changing substrate materials and morphology. Furthermore, the sensing mechanism and main characteristic parameters of metamaterial sensors are introduced in detail, and the development trend and challenge of metamaterial sensing applications are prospected. It is believed that metamaterial sensors will have potential broader application prospects in environmental monitoring, food safety control, and biosensing in the future.
基于电磁超材料的折射率传感器传感特性研究进展
在不同的传感平台中,由亚波长或深亚波长大小的金属谐振元件阵列组成的超材料蚀刻在半导体衬底或介电衬底上,由于共振电磁场的强定位和增强而表现出优异的特性。超材料传感器作为一种新型的检测方法,可以突破传统传感器对少量物质的分辨率限制,具有灵敏度高、响应快、测量简单等优点。通过优化微结构(单分裂环、双分裂环、嵌套分裂环、非对称分裂环、三维分裂环等)、采用超薄衬底或低折射率衬底材料、蚀刻局部衬底、集成微流控通道等方法,实现了超材料传感器传感特性的显著增强。本文主要从优化谐振结构、改变衬底材料和形貌等方面综述了改善传感特性的研究进展。详细介绍了超材料传感器的传感机理和主要特征参数,展望了超材料传感应用的发展趋势和挑战。相信未来超材料传感器在环境监测、食品安全控制、生物传感等方面具有潜在的广阔应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in Condensed Matter Physics
Advances in Condensed Matter Physics PHYSICS, CONDENSED MATTER-
CiteScore
2.30
自引率
0.00%
发文量
33
审稿时长
6-12 weeks
期刊介绍: Advances in Condensed Matter Physics publishes articles on the experimental and theoretical study of the physics of materials in solid, liquid, amorphous, and exotic states. Papers consider the quantum, classical, and statistical mechanics of materials; their structure, dynamics, and phase transitions; and their magnetic, electronic, thermal, and optical properties. Submission of original research, and focused review articles, is welcomed from researchers from across the entire condensed matter physics community.
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