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从声回廊模式谐振器到生物化学传感器。

From Whispering Gallery Mode Resonators to Biochemical Sensors.

机构信息

Department of Electrical & Systems Engineering, Washington University, One Brookings Drive Green Hall 2120F, St. Louis, Missouri 63130, United States.

出版信息

ACS Sens. 2023 Jul 28;8(7):2440-2470. doi: 10.1021/acssensors.2c02876. Epub 2023 Jun 30.

Abstract

Optical biosensors are frontrunners for the rapid and real-time detection of analytes, particularly for low concentrations. Among them, whispering gallery mode (WGM) resonators have recently attracted a growing focus due to their robust optomechanical features and high sensitivity, measuring down to single binding events in small volumes. In this review, we provide a broad overview of WGM sensors along with critical advice and additional "tips and tricks" to make them more accessible to both biochemical and optical communities. Their structures, fabrication methods, materials, and surface functionalization chemistries are discussed. We propose this reflection under a pedagogical approach to describe and explain these biochemical sensors with a particular focus on the most recent achievements in the field. In addition to highlighting the advantages of WGM sensors, we also discuss and suggest strategies to overcome their current limitations, leaving room for further development as practical tools in various applications. We aim to provide new insights and combine different knowledge and perspectives to advance the development of the next generation of WGM biosensors. With their unique advantages and compatibility with different sensing modalities, these biosensors have the potential to become major game changers for biomedical and environmental monitoring, among many other relevant target applications.

摘要

光学生物传感器是快速实时分析物检测的领跑者,特别是对于低浓度分析物。在这些传感器中,回音壁模式(WGM)谐振器由于其强大的光机械特性和高灵敏度,能够在小体积中测量到单个结合事件,因此最近受到越来越多的关注。在这篇综述中,我们提供了 WGM 传感器的广泛概述,以及关键的建议和其他“提示和技巧”,以使它们更容易被生物化学和光学两个领域的人员所接受。我们讨论了它们的结构、制造方法、材料和表面功能化化学。我们提出这种反思是为了以一种教学方法来描述和解释这些生化传感器,特别关注该领域的最新成就。除了突出 WGM 传感器的优势外,我们还讨论并提出了克服其当前限制的策略,为进一步开发作为各种应用中实际工具的下一代 WGM 生物传感器留出了空间。我们旨在提供新的见解,并结合不同的知识和观点,推动下一代 WGM 生物传感器的发展。由于具有独特的优势和与不同传感模式的兼容性,这些生物传感器有可能成为生物医学和环境监测等众多相关目标应用的主要变革者。

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