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宽带超表面和光电镊子应用的前景。

The perspectives of broadband metasurfaces and photo-electric tweezer applications.

作者信息

Lee Geon, Yu Eui-Sang, Ryu Yong-Sang, Seo Minah

机构信息

Sensor System Research Center, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea.

Department of Physics and Astronomy, Seoul National University, Seoul 08826, Republic of Korea.

出版信息

Nanophotonics. 2022 Jan 24;11(9):1783-1808. doi: 10.1515/nanoph-2021-0711. eCollection 2022 Apr.

Abstract

With strong demands of real-time monitoring of biomolecules or environmental pollutants, overcoming technical hurdles on control and detection of freely diffusive nanoscale objects become a question of issue to solve in a variety of research fields. Most existing optical techniques inevitably require labeling to the target material, which sometimes denature the measuring biomaterials. For highly efficient real-time monitoring without complicated pretreatment or labeling, many successes in development of label-free or non-destructive detection techniques via increased sensitivity were accomplished by the additional structures. Metasurface-based two-dimensional photonic/electric devices have recently represented extraordinary performances in both manipulation and sensing for various small particles and biochemical species, repeatedly overcoming the limit of detection achieved right before. In parallel, various metasurface-based devices were also introduced promoting transportation of targets into optical hotspot sites, overcoming diffusion limits. We noted this point, therefore, reviewed two major research fields such as metasurface-assisted material sensing and transportation technologies that have contributed to present prospective sensing technologies, then showed perspective views on how great synergy can be created when two technologies are cleverly integrated. Recently, a trend of conceptual merging of optical detection and transporting schemes beyond both diffraction limit and diffusion limit leads to a creation of exceptional performance in molecular detections. In this review, the trends of the latest technologies accomplishing this purpose by hybridization of various composite materials and functional metasurfaces will be introduced.

摘要

随着对生物分子或环境污染物进行实时监测的强烈需求,克服自由扩散纳米级物体控制和检测方面的技术障碍成为各个研究领域亟待解决的问题。大多数现有的光学技术不可避免地需要对目标材料进行标记,这有时会使测量的生物材料变性。为了在无需复杂预处理或标记的情况下进行高效实时监测,通过增加灵敏度在开发无标记或无损检测技术方面取得了许多成功,这得益于额外的结构。基于超表面的二维光子/电子器件最近在各种小颗粒和生化物质的操纵和传感方面都表现出非凡的性能,不断突破之前所达到的检测极限。同时,还引入了各种基于超表面的器件来促进目标向光学热点区域的传输,克服扩散限制。我们注意到了这一点,因此回顾了两个主要研究领域,即有助于当前前瞻性传感技术的超表面辅助材料传感和传输技术,然后展示了将这两种技术巧妙整合时如何产生巨大协同效应的前瞻性观点。最近,超越衍射极限和扩散极限的光学检测和传输方案概念融合的趋势在分子检测中带来了卓越性能的创造。在本综述中,将介绍通过各种复合材料与功能超表面的杂交实现这一目的的最新技术趋势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d59/11501245/40025ba8bf0b/j_nanoph-2021-0711_fig_003.jpg

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