Kausar Abu Sulaiman Mohammad Zahid, Reza Ahmed Wasif, Latef Tarik Abdul, Ullah Mohammad Habib, Karim Mohammad Ershadul
Department of Electrical Engineering, Faculty of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia.
Faculty of Law, University of Malaya, 50603 Kuala Lumpur, Malaysia.
Sensors (Basel). 2015 Apr 15;15(4):8787-831. doi: 10.3390/s150408787.
The concept of optical antennas in physical optics is still evolving. Like the antennas used in the radio frequency (RF) regime, the aspiration of optical antennas is to localize the free propagating radiation energy, and vice versa. For this purpose, optical antennas utilize the distinctive properties of metal nanostructures, which are strong plasmonic coupling elements at the optical regime. The concept of optical antennas is being advanced technologically and they are projected to be substitute devices for detection in the millimeter, infrared, and visible regimes. At present, their potential benefits in light detection, which include polarization dependency, tunability, and quick response times have been successfully demonstrated. Optical antennas also can be seen as directionally responsive elements for point detectors. This review provides an overview of the historical background of the topic, along with the basic concepts and parameters of optical antennas. One of the major parts of this review covers the use of optical antennas in biosensing, presenting biosensing applications with a broad description using different types of data. We have also mentioned the basic challenges in the path of the universal use of optical biosensors, where we have also discussed some legal matters.
物理光学中光学天线的概念仍在不断发展。与射频(RF)领域中使用的天线一样,光学天线的目标是将自由传播的辐射能量局部化,反之亦然。为此,光学天线利用了金属纳米结构的独特特性,这些特性在光学领域是强等离子体耦合元件。光学天线的概念正在技术上取得进展,预计它们将成为毫米波、红外和可见光领域检测的替代设备。目前,它们在光检测方面的潜在优势,包括偏振依赖性、可调谐性和快速响应时间,已经得到成功证明。光学天线也可被视为点探测器的定向响应元件。本综述概述了该主题的历史背景,以及光学天线的基本概念和参数。本综述的主要部分之一涵盖了光学天线在生物传感中的应用,使用不同类型的数据对生物传感应用进行了广泛描述。我们还提到了通用光学生物传感器应用道路上的基本挑战,其中我们也讨论了一些法律问题。