Ganesh Kalathur Mohan, Bhaskar Seemesh, Cheerala Vijay Sai Krishna, Battampara Prajwal, Reddy Roopa, Neelakantan Sundaresan Chittor, Reddy Narendra, Ramamurthy Sai Sathish
STAR Laboratory, Department of Chemistry, Sri Sathya Sai Institute of Higher Learning, Prasanthi Nilayam Campus, Sri Sathya Sai District, Puttaparthi 515134, India.
Department of Electrical and Computer Engineering, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.
Nanomaterials (Basel). 2024 Jan 2;14(1):111. doi: 10.3390/nano14010111.
Point-of-care (POC) diagnostic platforms are globally employed in modern smart technologies to detect events or changes in the analyte concentration and provide qualitative and quantitative information in biosensing. Surface plasmon-coupled emission (SPCE) technology has emerged as an effective POC diagnostic tool for developing robust biosensing frameworks. The simplicity, robustness and relevance of the technology has attracted researchers in physical, chemical and biological milieu on account of its unique attributes such as high specificity, sensitivity, low background noise, highly polarized, sharply directional, excellent spectral resolution capabilities. In the past decade, numerous nano-fabrication methods have been developed for augmenting the performance of the conventional SPCE technology. Among them the utility of plasmonic gold nanoparticles (AuNPs) has enabled the demonstration of plethora of reliable biosensing platforms. Here, we review the nano-engineering and biosensing applications of AuNPs based on the shape, hollow morphology, metal-dielectric, nano-assembly and heterometallic nanohybrids under optical as well as biosensing competencies. The current review emphasizes the recent past and evaluates the latest advancements in the field to comprehend the futuristic scope and perspectives of exploiting Au nano-antennas for plasmonic hotspot generation in SPCE technology.
即时护理(POC)诊断平台在全球范围内被应用于现代智能技术中,以检测分析物浓度的变化或事件,并在生物传感中提供定性和定量信息。表面等离子体耦合发射(SPCE)技术已成为开发强大生物传感框架的有效POC诊断工具。该技术的简单性、稳健性和相关性因其独特属性,如高特异性、灵敏度、低背景噪声、高偏振性、尖锐方向性、出色的光谱分辨率能力,吸引了物理、化学和生物学领域的研究人员。在过去十年中,已开发出多种纳米制造方法来提高传统SPCE技术的性能。其中,等离子体金纳米颗粒(AuNP)的应用使众多可靠的生物传感平台得以展示。在此,我们基于光学以及生物传感能力,根据形状、中空形态、金属-电介质、纳米组装和异金属纳米杂化物,综述AuNP的纳米工程和生物传感应用。本综述着重于近期研究,并评估该领域的最新进展,以理解利用金纳米天线在SPCE技术中产生等离子体热点的未来前景和展望。