Versatile synthesis of uniform mesoporous superparticles from stable monomicelle units.

IF 13.1 1区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Zaiwang Zhao, Pengfei Zhang, Yujuan Zhao, Lipeng Wang, Jie Zhang, Fanxing Bu, Wanhai Zhou, Ruizheng Zhao, Xingmiao Zhang, Zirui Lv, Yupu Liu, Yuan Xia, Wei Zhang, Tiancong Zhao, Dongliang Chao, Wei Li, Dongyuan Zhao
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Abstract

Superstructures with architectural complexity and unique functionalities are promising for a variety of practical applications in many fields, including mechanics, sensing, photonics, catalysis, drug delivery and energy storage/conversion. In the past five years, a number of attempts have been made to build superparticles based on amphiphilic polymeric micelle units, but most have failed owing to their inherent poor stability. Determining how to stabilize micelles and control their superassembly is critical to obtaining the desired mesoporous superparticles. Here we provide a detailed procedure for the preparation of ultrastable polymeric monomicelle building units, the creation of a library of ultrasmall organic-inorganic nanohybrids, the modular superassembly of monomicelles into hierarchical superstructures and creation of novel multilevel mesoporous superstructures. The protocol enables precise control of the number of monomicelle units and the derived mesopores for superparticles. We show that ultrafine nanohybrids display enhanced mechanical antipressure performance compared with pristine polymeric micelles, and describe the functional characterization of mesoporous superstructures that exhibit excellent oxygen reduction reactivity. Except for the time (4.5 d) needed for the preparation of the triblock polystyrene-block-poly(4-vinylpyridine)-block-poly(ethylene oxide) PS-PVP-PEO or the polystyrene-block-poly(acrylic acid)-block-poly(ethylene oxide) (PS-PAA-PEO) copolymer, the synthesis of the ultrastable monomicelle, ultrafine organic-inorganic nanohybrids, hierarchical superstructures and mesoporous superparticles require ~6, 30, 8 and 24 h, respectively. The time needed for all characterizations and applications are 18 and 10 h, respectively.

利用稳定的单微粒单元多用途合成均匀的介孔超微粒。
具有结构复杂性和独特功能性的超结构有望在机械、传感、光子学、催化、药物输送和能量存储/转换等多个领域实现各种实际应用。在过去的五年中,人们曾多次尝试以两亲性聚合物胶束单元为基础构建超级粒子,但由于其固有的低稳定性,大多数尝试都以失败告终。确定如何稳定胶束并控制其超组装是获得理想的介孔超微粒的关键。在此,我们提供了制备超稳定聚合物单胶束构建单元、创建超小型有机-无机纳米混合物库、将单胶束模块化超组装成分层超结构以及创建新型多级介孔超结构的详细步骤。该方案能够精确控制单微粒单元的数量和超微粒的衍生介孔。我们的研究表明,与原始聚合物胶束相比,超细纳米混合物显示出更强的机械抗压性能,并描述了介孔上层结构的功能特性,这些结构显示出优异的氧还原反应活性。除了制备微胶囊所需的时间(4.5 d)外,合成超稳定单胶束、超细有机-无机纳米杂化物、分层超结构和介孔超微粒分别需要 ~6、30、8 和 24 h。所有表征和应用所需的时间分别为 18 和 10 小时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nature Protocols
Nature Protocols 生物-生化研究方法
CiteScore
29.10
自引率
0.70%
发文量
128
审稿时长
4 months
期刊介绍: Nature Protocols focuses on publishing protocols used to address significant biological and biomedical science research questions, including methods grounded in physics and chemistry with practical applications to biological problems. The journal caters to a primary audience of research scientists and, as such, exclusively publishes protocols with research applications. Protocols primarily aimed at influencing patient management and treatment decisions are not featured. The specific techniques covered encompass a wide range, including but not limited to: Biochemistry, Cell biology, Cell culture, Chemical modification, Computational biology, Developmental biology, Epigenomics, Genetic analysis, Genetic modification, Genomics, Imaging, Immunology, Isolation, purification, and separation, Lipidomics, Metabolomics, Microbiology, Model organisms, Nanotechnology, Neuroscience, Nucleic-acid-based molecular biology, Pharmacology, Plant biology, Protein analysis, Proteomics, Spectroscopy, Structural biology, Synthetic chemistry, Tissue culture, Toxicology, and Virology.
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