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包含具有光学各向异性的单晶胶体阵列的光子微胶囊。

Photonic Microcapsules Containing Single-Crystal Colloidal Arrays with Optical Anisotropy.

作者信息

Choi Tae Min, Lee Gun Ho, Kim Young-Seok, Park Jin-Gyu, Hwang Hyerim, Kim Shin-Hyun

机构信息

Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.

Korea Electronics Technology Institute (KETI), Seongnam, 13509, Republic of Korea.

出版信息

Adv Mater. 2019 May;31(18):e1900693. doi: 10.1002/adma.201900693. Epub 2019 Mar 15.

Abstract

Colloidal particles with a repulsive interparticle potential spontaneously form crystalline lattices, which are used as a motif for photonic materials. It is difficult to predict the crystal arrangement in spherical volume as lattices are incompatible with a spherical surface. Here, the optimum arrangement of charged colloids is experimentally investigated by encapsulating them in double-emulsion drops. Under conditions of strong interparticle repulsion, the colloidal crystal rapidly grows from the surface toward the center of the microcapsule, forming an onion-like arrangement. By contrast, for weak repulsion, crystallites slowly grow and fuse through rearrangement to form a single-crystal phase. Single-crystal structure is energetically favorable even for strong repulsion. Nevertheless, a high energy barrier to colloidal rearrangement kinetically arrests the onion-like structure formed by heterogeneous nucleation. Unlike the isotropic onion-shaped product, the anisotropic single-crystal-containing microcapsules selectively display-at certain orientations but not others-one of the distinct colors from the various crystal planes.

摘要

具有排斥性粒子间势的胶体颗粒会自发形成晶格,这些晶格被用作光子材料的一种结构单元。由于晶格与球形表面不相容,因此很难预测球体体积内的晶体排列。在这里,通过将带电胶体封装在双乳液滴中来对其最佳排列进行实验研究。在粒子间强排斥条件下,胶体晶体从微胶囊表面迅速向中心生长,形成类似洋葱的排列。相比之下,对于弱排斥情况,微晶缓慢生长并通过重排融合形成单晶相。即使对于强排斥,单晶结构在能量上也是有利的。然而,胶体重排的高能垒在动力学上阻止了由异质成核形成的类似洋葱的结构。与各向同性的洋葱状产物不同,含有各向异性单晶的微胶囊在某些特定取向上而非其他取向上选择性地显示出不同晶面的独特颜色之一。

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