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首页> 外文期刊>Nanoscale >Interfacial-assembly engineering of asymmetric magnetic-mesoporous organosilica nanocomposites with tunable architectures
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Interfacial-assembly engineering of asymmetric magnetic-mesoporous organosilica nanocomposites with tunable architectures

机译:具有可调结构的不对称磁介孔有机硅纳米复合材料的界面组装工程

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摘要

The asymmetric morphology of nanomaterials plays a crucial role in regulating their physical and chemical properties, which can be tuned by two key factors: (i) interfacial interaction between seed particles and growth materials (anisotropic island nucleation) and (ii) reaction kinetics of the growth material (growth approach). However, controllable preparation of asymmetric nanoarchitectures is a daunting challenge because it is difficult to tune the interfacial energy profile of a nanoparticle. Here, we report an interfacial-assembly strategy that makes use of different surfactant/organosilica-oligomer micelles to actively regulate interfacial energy profiles, thus enabling controllable preparation of well-defined asymmetric nanoarchitectures (i.e., organosilica nano-tails) on magnetic Fe3O4 nanoparticles. For our magnetic nanocomposite system, the assembly structure of surfactant/organosilica-oligomer micelles and the interfacial electrostatic interaction are found to play critical roles in controlling the nucleation and architectures of asymmetric magnetic-mesoporous organosilica nanocomposite particles (AMMO-NCPs). Surfactant/organosilica-oligomer micelles with a one-dimensional wormlike linear structure could strengthen the interfacial assembly behavior between seed particles and growth materials, and thus achieved the longest tail length (25 μm) exceeding the previously reported highest recorded value (2.5 μm) of one order of magnitude. In addition, clickable AMMO-NCPs can employ a thiol–ene click reaction to modify their surface with a broad range of functional groups, such as amines, carboxyls, and even long alkyl chains, which allows for expanding functionalities. We demonstrate that C18 alkyl-grafted AMMO-NCPs can self-assemble into self-standing membranes with robust superhydrophobicity. In addition, carboxyl-modified AMMO-NCPs exhibit excellent adsorption capacity for cationic compounds. This study paves the way for designing and synthesizing asymmetric nanomaterials, which possess immense potential for future engineering applications in nanomaterial assembly, nanoreactors, biosensing, drug delivery, and beyond.
机译:纳米材料的非对称形态起着在调节身体和至关重要的作用化学性质,可以由两个关键因素:(i)界面之间的相互作用种子颗粒和增长(各向异性材料岛成核)和(2)的反应动力学材料(增长方法)。可控制备非对称因为nanoarchitectures是一项艰巨的挑战很难调整界面能量纳米颗粒的简介。interfacial-assembly利用的策略不同的表面活性剂/ organosilica-oligomer胶束,积极调节界面能配置文件,从而实现可控制备定义良好的非对称nanoarchitectures(例如,organosilica nano-tails)磁Fe3O4纳米粒子。系统,组装结构表面活性剂/ organosilica-oligomer胶束和界面静电相互作用在控制起着至关重要的作用成核和体系结构的不对称magnetic-mesoporous organosilica纳米复合材料表面活性剂/ organosilica-oligomer胶束一维的线性结构加强界面组装行为种子粒子和增长之间的材料,和从而达到最长的尾巴长度(25μm)超过了之前报道最高记录值(2.5μm)的一个顺序大小。采用thiol-ene点击修改他们的反应与广泛的表面官能团,如胺、烷基羧基,甚至长链,它允许扩大功能。alkyl-grafted AMMO-NCPs可以自组装成独立的膜与健壮superhydrophobicity。carboxyl-modified AMMO-NCPs展览优秀的吸附阳离子化合物的能力。研究为设计和铺平了道路不对称合成纳米材料,拥有巨大的潜在未来的工程应用纳米材料组装,若nanoreactors,药物输送,超越。

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