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具有类似西兰花形态的蛋黄壳型磁性介孔硅微球的结构工程用于高效催化和增强细胞摄取。

Structure Engineering of Yolk-Shell Magnetic Mesoporous Silica Microspheres with Broccoli-Like Morphology for Efficient Catalysis and Enhanced Cellular Uptake.

机构信息

Department of Chemistry, Department of Gastroenterology, Zhongshan Hospital of Fudan University, State Key Laboratory of Molecular Engineering of Polymers, Fudan University, Shanghai, 200433, China.

Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu, 610051, China.

出版信息

Small. 2021 Feb;17(8):e2006925. doi: 10.1002/smll.202006925. Epub 2021 Feb 1.

Abstract

Yolk-shell magnetic mesoporous microspheres exhibit potential applications in biomedicine, bioseparation, and catalysis. Most previous reports focus on establishing various interface assembly strategies to construct yolk-shell mesoporous structures, while little work has been done to control their surface topology and study their relevant applications. Herein, a unique kind of broccoli-like yolk-shell magnetic mesoporous silica (YS-BMM) microsphere is fabricated through a surfactant-free kinetic controlled interface assembly strategy. The obtained YS-BMM microspheres possess a well-defined structure consisting of a magnetic core, middle void, mesoporous silica shell with tunable surface roughness, large superparamagnetism (36.4 emu g ), high specific surface area (174 m g ), and large mesopores of 10.9 nm. Thanks to these merits and properties, the YS-BMM microspheres are demonstrated to be an ideal support for immobilization of ultrafine Pt nanoparticles (≈3.7 nm) and serve as superior nanocatalysts for hydrogenation of 4-nitrophenol with yield of over 90% and good magnetic recyclability. Furthermore, YS-BMM microspheres show excellent biocompatibility and can be easily phagocytosed by osteoclasts, revealing a potential candidate in sustained drug release in orthopedic disease therapy.

摘要

蛋黄壳型磁介孔微球在生物医药、生物分离和催化领域具有潜在的应用价值。大多数先前的报道集中在建立各种界面组装策略来构建蛋黄壳介孔结构,而很少有工作致力于控制其表面拓扑结构并研究其相关应用。本文通过无表面活性剂的动力学控制界面组装策略,制备了一种独特的西兰花状蛋黄壳型磁介孔硅(YS-BMM)微球。所得到的 YS-BMM 微球具有由磁性核、中间空隙、表面粗糙度可调的介孔硅壳组成的明确结构,具有超顺磁性(36.4 emu g)、高比表面积(174 m g)和大的介孔(10.9nm)。由于这些优点和特性,YS-BMM 微球被证明是固定超细微铂纳米粒子(≈3.7nm)的理想载体,并作为 4-硝基苯酚加氢反应的优良纳米催化剂,产率超过 90%,且具有良好的磁可回收性。此外,YS-BMM 微球具有良好的生物相容性,可被破骨细胞轻易吞噬,有望成为骨科疾病治疗中药物持续释放的候选材料。

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