Min Yuanhong, Wang Yi
Chongqing Key Laboratory of Green Synthesis and Applications, College of Chemistry, Chongqing Normal University, Chongqing, China.
Front Chem. 2020 May 19;8:411. doi: 10.3389/fchem.2020.00411. eCollection 2020.
Metal nanocrystals with well-controlled shape and unique localized surface plasmon resonance (LSPR) properties have attracted tremendous attention in both fundamental studies and applications. Compared with monometallic counterparts, bimetallic nanocrystals endow scientists with more opportunities to precisely tailor their LSPR and thus achieve excellent performances for various purposes. The aim of this mini review is to present the recent process in manipulating bimetallic nanostructures with tunable LSPR and their applications for sensing. We first highlight several significant strategies in controlling the elemental ratio and spatial arrangement of bimetallic nanocrystals, followed by discussing on the relationship between their composition/morphology and LSPR properties. We then focus on the plasmonic sensors based on the LSPR peak shift, which can be well-controlled by seed-mediated growth and selective etching. This review provides insights of understanding the "rules" involving in the formation of bimetallic nanocrystals with different structures and desired LSPR properties, and also forecasts the development directions of plasmonic sensors in the future.
具有形状可控且独特的局域表面等离子体共振(LSPR)特性的金属纳米晶体在基础研究和应用领域都引起了极大关注。与单金属纳米晶体相比,双金属纳米晶体为科学家提供了更多机会来精确调整其LSPR,从而实现各种用途的优异性能。本综述的目的是介绍在操控具有可调LSPR的双金属纳米结构及其传感应用方面的最新进展。我们首先重点介绍几种控制双金属纳米晶体元素比例和空间排列的重要策略,接着讨论其组成/形态与LSPR特性之间的关系。然后,我们关注基于LSPR峰位移的等离子体传感器,其可通过种子介导生长和选择性蚀刻得到很好的控制。本综述为理解涉及形成具有不同结构和所需LSPR特性的双金属纳米晶体的“规则”提供了见解,同时也预测了未来等离子体传感器的发展方向。