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设计各向异性无机纳米胶囊:类聚合物超薄金纳米线的自组装

Designing anisotropic inorganic nanocapsules self-assembly of polymer-like ultrathin Au nanowires.

作者信息

Li Xingyun, Zhang Sai, Chen Yuan, Wang Shanshan, Xu Qingchi, Xu Jun

机构信息

Department of Physics, Research Institute for Biomimetics and Soft Matter, Fujian Provincial Key Laboratory for Soft Functional Materials, Xiamen University, Xiamen 361005, Fujian, China.

Department of Biomedical Engineering, College of Design and Engineering, National University of Singapore, Singapore 119077.

出版信息

Nanoscale. 2022 Jul 21;14(28):10060-10066. doi: 10.1039/d2nr01749k.

Abstract

Anisotropic assembly of nanomaterials into hollow structures is an attractive technique in biomedicine and biosensing. Commonly used polymer materials are easy to assemble yet it is hard to form anisotropic morphologies. Here in this work, we successfully prepared a novel gold nanocapsule with an anisotropic ellipsoidal shape and cavity structure by the self-assembly of ultrathin Au nanowires. The assembly mechanism is further studied by tuning the assembly conditions such as nanowire concentration, solvent composition, and temperature. It is found that the controlling forces of the nanowire assembly process are mainly the symmetric interfacial tension and the asymmetric nanowire deformation potential, which contribute together to result in anisotropic nanocapsules. Finally, the obtained Au nanocapsules were used as nanocarriers to load pyrene as a model drug, showing great drug loading ability and pH-responsive drug release behavior. We believe that this unique anisotropic assembly product will bring new insights into nanostructure design and soft matter research.

摘要

将纳米材料各向异性组装成中空结构是生物医学和生物传感领域一项颇具吸引力的技术。常用的聚合物材料易于组装,但难以形成各向异性形态。在本工作中,我们通过超薄金纳米线的自组装成功制备了一种具有各向异性椭圆形形状和空腔结构的新型金纳米胶囊。通过调节组装条件,如纳米线浓度、溶剂组成和温度,进一步研究了组装机制。研究发现,纳米线组装过程的控制因素主要是对称界面张力和不对称纳米线变形势,它们共同作用导致了各向异性纳米胶囊的形成。最后,将所得的金纳米胶囊用作纳米载体来负载芘作为模型药物,表现出优异的载药能力和pH响应性药物释放行为。我们相信,这种独特的各向异性组装产物将为纳米结构设计和软物质研究带来新的见解。

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