Department of Materials Science and Nanoengineering, Rice University, Houston, TX, 77005, USA.
Adv Mater. 2014 Jan;26(4):532-69. doi: 10.1002/adma.201303456. Epub 2013 Dec 12.
The engineering of optical and acoustic material functionalities via construction of ordered local and global architectures on various length scales commensurate with and well below the characteristic length scales of photons and phonons in the material is an indispensable and powerful means to develop novel materials. In the current mature status of photonics, polymers hold a pivotal role in various application areas such as light-emission, sensing, energy, and displays, with exclusive advantages despite their relatively low dielectric constants. Moreover, in the nascent field of phononics, polymers are expected to be a superior material platform due to the ability for readily fabricated complex polymer structures possessing a wide range of mechanical behaviors, complete phononic bandgaps, and resonant architectures. In this review, polymer-centric photonic and phononic crystals and metamaterials are highlighted, and basic concepts, fabrication techniques, selected functional polymers, applications, and emerging ideas are introduced.
通过在与材料中光子和声子的特征长度尺度相适应甚至低于该特征长度尺度的各种长度尺度上构建有序的局部和全局结构,对光学和声学材料功能进行工程设计,是开发新型材料不可或缺的有力手段。在当前光子学的成熟阶段,聚合物在发光、传感、能源和显示等各个应用领域中发挥着关键作用,尽管其介电常数相对较低,但具有独特的优势。此外,在新兴的声子学领域,聚合物有望成为一种优越的材料平台,因为其能够容易地制造具有广泛机械性能、完全声子带隙和共振结构的复杂聚合物结构。在这篇综述中,重点介绍了以聚合物为中心的光子晶体和声子晶体以及超材料,介绍了基本概念、制造技术、选定的功能聚合物、应用以及新兴的想法。