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降解-重构诱导各向异性外延生长制备不对称两嵌段和三嵌段介孔纳米复合材料。

Degradation-Restructuring Induced Anisotropic Epitaxial Growth for Fabrication of Asymmetric Diblock and Triblock Mesoporous Nanocomposites.

机构信息

Department of Chemistry and Laboratory of Advanced Materials, State Key Laboratory of Molecular Engineering of Polymers and iChEM (Collaborative Innovation Center of Chemistry for Energy Materials), Fudan University, Shanghai, 200433, P. R. China.

Queensland Micro- and Nanotechnology Centre, Griffith University, Brisbane, QLD 4111, Australia.

出版信息

Adv Mater. 2017 Aug;29(30). doi: 10.1002/adma.201701652. Epub 2017 Jun 12.

Abstract

A novel degradation-restructuring induced anisotropic epitaxial growth strategy is demonstrated for the synthesis of uniform 1D diblock and triblock silica mesoporous asymmetric nanorods with controllable rod length (50 nm to 2 µm) and very high surface area of 1200 m g . The asymmetric diblock mesoporous silica nanocomposites are composed of a 1D mesoporous organosilicate nanorod with highly ordered hexagonal mesostructure, and a closely connected dense SiO nanosphere located only on one side of the nanorods. Furthermore, the triblock mesoporous silica nanocomposites constituted by a cubic mesostructured nanocube, a nanosphere with radial mesopores, and a hexagonal mesostructured nanorod can also be fabricated with the anisotropic growth of mesopores. Owing to the ultrahigh surface area, unique 1D mesochannels, and functionality asymmetry, the obtained match-like asymmetric Au-NR@SiO &EPMO (EPMO = ethane bridged periodic mesoporous organosilica) mesoporous nanorods can be used as an ideal nanocarrier for the near-infrared photothermal triggered controllable releasing of drug molecules.

摘要

一种新颖的降解-重构诱导各向异性外延生长策略被证明可用于合成具有可控棒长(50nm 至 2μm)和超高比表面积(1200m2/g)的均匀一维二嵌段和三嵌段硅质介孔不对称纳米棒。不对称的二嵌段介孔硅纳米复合材料由具有高度有序六方介孔结构的一维介孔有机硅纳米棒和仅位于纳米棒一侧的紧密相连的致密 SiO2 纳米球组成。此外,通过介孔的各向异性生长,也可以制备由立方介孔纳米立方体、具有径向介孔的纳米球和六方介孔纳米棒组成的三嵌段介孔硅纳米复合材料。由于超高的比表面积、独特的一维介孔通道和功能不对称性,所得到的类似匹配的不对称 Au-NR@SiO2 和 EPMO(EPMO = 乙烷桥联周期性介孔有机硅)介孔纳米棒可用作近红外光热触发可控释放药物分子的理想纳米载体。

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