Hsu Su-Wen, Rodarte Andrea L, Som Madhura, Arya Gaurav, Tao Andrea R
Department of NanoEngineering , University of California, San Diego , 9500 Gilman Drive, MC 0448 , La Jolla , California 92039-0448 , United States.
Chem Rev. 2018 Mar 28;118(6):3100-3120. doi: 10.1021/acs.chemrev.7b00364. Epub 2018 Feb 8.
Plasmonic nanostructures are extensively used building blocks for engineering optical materials and device architectures. Plasmonic nanocomposites (pNCs) are an emerging class of materials that integrate these nanostructures into hierarchical and often multifunctional systems. These pNCs can be highly customizable by modifying both the plasmonic and matrix components, as well as by controlling the nano- to macroscale morphology of the composite as a whole. Assembly at the nanoscale plays a particularly important role in the design of pNCs that exhibit complex or responsive optical function. Due to their scalability and tunability, pNCs provide a versatile platform for engineering new plasmonic materials and for facile integration into optoelectronic device architectures. This review provides a comprehensive survey of recent achievements in pNC structure, design, fabrication, and optical function, along with some examples of their application in optoelectronics and sensing.
等离子体纳米结构是用于设计光学材料和器件架构的广泛使用的构建块。等离子体纳米复合材料(pNCs)是一类新兴材料,它将这些纳米结构集成到分层且通常是多功能的系统中。通过修饰等离子体和基质成分,以及控制复合材料整体从纳米到宏观尺度的形态,这些pNCs可以高度定制。纳米级组装在展现复杂或响应性光学功能的pNCs设计中起着特别重要的作用。由于其可扩展性和可调性,pNCs为设计新型等离子体材料以及轻松集成到光电器件架构中提供了一个通用平台。本综述全面概述了pNCs在结构、设计、制造和光学功能方面的最新成果,以及它们在光电子学和传感中的一些应用实例。