球形胶体光子晶体。
Spherical colloidal photonic crystals.
机构信息
State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University , Nanjing 210096, China.
出版信息
Acc Chem Res. 2014 Dec 16;47(12):3632-42. doi: 10.1021/ar500317s. Epub 2014 Nov 13.
CONSPECTUS
Colloidal photonic crystals (PhCs), periodically arranged monodisperse nanoparticles, have emerged as one of the most promising materials for light manipulation because of their photonic band gaps (PBGs), which affect photons in a manner similar to the effect of semiconductor energy band gaps on electrons. The PBGs arise due to the periodic modulation of the refractive index between the building nanoparticles and the surrounding medium in space with subwavelength period. This leads to light with certain wavelengths or frequencies located in the PBG being prohibited from propagating. Because of this special property, the fabrication and application of colloidal PhCs have attracted increasing interest from researchers. The most simple and economical method for fabrication of colloidal PhCs is the bottom-up approach of nanoparticle self-assembly. Common colloidal PhCs from this approach in nature are gem opals, which are made from the ordered assembly and deposition of spherical silica nanoparticles after years of siliceous sedimentation and compression. Besides naturally occurring opals, a variety of manmade colloidal PhCs with thin film or bulk morphology have also been developed. In principle, because of the effect of Bragg diffraction, these PhC materials show different structural colors when observed from different angles, resulting in brilliant colors and important applications. However, this angle dependence is disadvantageous for the construction of some optical materials and devices in which wide viewing angles are desired. Recently, a series of colloidal PhC materials with spherical macroscopic morphology have been created. Because of their spherical symmetry, the PBGs of spherical colloidal PhCs are independent of rotation under illumination of the surface at a fixed incident angle of the light, broadening the perspective of their applications. Based on droplet templates containing colloidal nanoparticles, these spherical colloidal PhCs can be generated by evaporation-induced nanoparticle crystallization or polymerization of ordered nanoparticle crystallization arrays. In particular, because microfluidics was used for the generation of the droplet templates, the development of spherical colloidal PhCs has progressed significantly. These new strategies not only ensure monodispersity, but also increase the structural and functional diversity of the PhC beads, paving the way for the development of advanced optoelectronic devices. In this Account, we present the research progress on spherical colloidal PhCs, including their design, preparation, and potential applications. We outline various types of spherical colloidal PhCs, such as close-packed, non-close-packed, inverse opal, biphasic or multiphasic Janus structured, and core-shell structured geometries. Based on their unique optical properties, applications of the spherical colloidal PhCs for displays, sensors, barcodes, and cell culture microcarriers are presented. Future developments of the spherical colloidal PhC materials are also envisioned.
概述
胶体光子晶体(PhC)是由单分散纳米颗粒周期性排列而成的,由于其光子带隙(PBG),成为了一种最有前途的用于操控光的材料,这种带隙类似于半导体能隙对电子的影响。PBG 是由于构建纳米颗粒与空间中周围介质之间的折射率周期性调制而产生的,其周期小于亚波长。这导致具有一定波长或频率的光被禁止在 PBG 中传播。由于这种特殊性质,胶体 PhC 的制造和应用引起了研究人员越来越多的兴趣。制造胶体 PhC 最简单和经济的方法是自下而上的纳米颗粒自组装方法。自然界中最常见的胶体 PhC 是蛋白石,它是由经过多年硅质沉淀和压缩后有序组装和沉积的球形二氧化硅纳米颗粒制成的。除了天然蛋白石外,还开发了各种具有薄膜或块状形态的人造胶体 PhC。原则上,由于布拉格衍射的影响,这些 PhC 材料从不同角度观察时会呈现出不同的结构颜色,从而产生鲜艳的色彩,并具有重要的应用。然而,这种角度依赖性不利于构建某些需要宽视角的光学材料和器件。最近,一系列具有球形宏观形态的胶体 PhC 材料已经被制造出来。由于其球形对称性,在固定入射角的光照射下,球形胶体 PhC 的 PBG 不随表面的旋转而变化,从而拓宽了其应用前景。基于包含胶体纳米颗粒的液滴模板,通过蒸发诱导纳米颗粒结晶或有序纳米颗粒结晶阵列的聚合,可以生成这些球形胶体 PhC。特别是,由于微流控技术用于生成液滴模板,因此球形胶体 PhC 的发展取得了显著进展。这些新策略不仅确保了单分散性,而且增加了 PhC 珠的结构和功能多样性,为开发先进的光电设备铺平了道路。在本专题介绍中,我们展示了球形胶体 PhC 的研究进展,包括其设计、制备和潜在应用。我们概述了各种类型的球形胶体 PhC,例如密堆积、非密堆积、反蛋白石、双相或多相 Janus 结构以及核壳结构。基于其独特的光学特性,介绍了球形胶体 PhC 在显示器、传感器、条形码和细胞培养微载体中的应用。还展望了球形胶体 PhC 材料的未来发展。