Department of Polymer Engineering, Pukyong National University, 45 Yongso-ro, Nam-gu, Busan, 48513, Republic of Korea.
Department of Chemical Engineering, Pukyong National University, 45 Yongso-ro, Nam-gu, Busan, 48513, Republic of Korea.
Anal Chim Acta. 2020 Sep 22;1131:80-89. doi: 10.1016/j.aca.2020.07.035. Epub 2020 Jul 30.
Sharp-tipped anisotropic silver (Ag) nanostructures are attracting increasing attention because of their unusual optical properties. However, the sharp tips make such nanostructures thermodynamically unstable; thus, they have been considered unsuitable for use in colorimetric sensing because of their tendency to aggregate or transform in a solution state. In the present study, a colorimetric sensing platform for detecting bromide (Br) in an aqueous medium was developed. The platform is based on the localized surface plasmon resonance (LSPR) properties of Ag nanoprisms with sharp tips. The key to using such Ag nanocrystals with extreme anisotropic structures is to adopt a solid-phase sensing platform. A Ag-nanoprism-embedded tough hydrogel with interpenetrating polymer networks was synthesized via aqueous-phase polymerization and crosslinking processes. The Ag nanoprisms immobilized inside the hydrogel were stable and did not exhibit aggregation or degradation over time; specifically, when the hydrogel was dried, the nanoprisms retained their inherent LSPR properties for an extended period. By taking advantage of the rapid and spontaneous morphological transformation of Ag nanoprisms inside the hybrid hydrogel exposed to Br and the corresponding changes in their LSPR properties, we designed a plasmonic sensing platform for the sensitive and selective detection of Br in an aqueous medium. The proposed colorimetric sensing platform was found to exhibit a wide sensing range and high selectivity, with a low limit of detection (LOD) of 10 μM, and offers substantial advantages over previously developed systems; specifically, it is portable, eco-friendly, safe to use and handle, stable for extended periods, and enables naked-eye detection. We believe that the as-proposed sensing platform can be used as a point-of-care analytical tool for detecting Br in a broad range of samples.
具有锐利尖端的各向异性银(Ag)纳米结构由于其独特的光学性质而受到越来越多的关注。然而,由于尖端的存在,使得这些纳米结构在热力学上不稳定;因此,由于它们在溶液状态下倾向于聚集或转变,因此被认为不适合用于比色传感。在本研究中,开发了一种用于在水介质中检测溴化物(Br)的比色传感平台。该平台基于具有锐利尖端的 Ag 纳米棱镜的局域表面等离子体共振(LSPR)性质。使用具有极端各向异性结构的 Ag 纳米晶体的关键是采用固相传感平台。通过水相聚合和交联过程合成了具有互穿聚合物网络的嵌入 Ag 纳米棱镜的坚韧水凝胶。固定在水凝胶内部的 Ag 纳米棱镜是稳定的,并且随着时间的推移不会发生聚集或降解;特别是,当水凝胶干燥时,纳米棱镜保留了其固有 LSPR 性质,延长了时间。利用暴露于 Br 的混合水凝胶内部 Ag 纳米棱镜的快速和自发形态转变以及它们的 LSPR 性质的相应变化,我们设计了一种用于在水介质中对 Br 进行灵敏和选择性检测的等离子体传感平台。所提出的比色传感平台表现出宽的传感范围和高选择性,检测限(LOD)低至 10 μM,与以前开发的系统相比具有显著优势;具体而言,它便携、环保、使用和处理安全、稳定且可进行肉眼检测。我们相信,所提出的传感平台可用作广泛样品中 Br 检测的即时分析工具。