Department of Biomaterials, College of Materials, Xiamen University , Xiamen 361005, China.
Institute of Advanced Synthesis, School of Chemistry and Molecular Engineering, Jiangsu National Synergetic Innovation Center for Advanced Materials, Nanjing Tech University , Nanjing 211816, China.
ACS Nano. 2017 Mar 28;11(3):2756-2763. doi: 10.1021/acsnano.6b07777. Epub 2017 Mar 10.
Ultrathin nanowires (NWs) are considered to be ideal building blocks for the assembly of complex nanostructures toward future nanodevices. The polymer/particle duality of ultrathin NWs plays an important role in the study of solution phase self-assembly behavior of ultrathin NWs; yet it has not been fully exploited. Herein, we demonstrate the effects of the polymer/particle duality of ultrathin NWs on the morphologies of assembled complex nanostructures. The length of ultrathin AuNWs directly correlates with the flexibility of NWs and affects the polymer-like assembly of NWs, while the concentration of surfactants determines interfacial tension and ligand-solvent interactions and affects both polymer-like and colloidal assembly of NWs. By fine-tuning these two factors, ultrathin AuNWs can swing between "soft" and "hard" building blocks, and highly uniform nanorings, nanograins, nanobundles, and superlattice-like nanospheres are obtained. The different assembly behavior of long and short NWs can be considered as two components to construct anisotropic complex nanostructures, in analogy with the fabrication of polymer-inorganic nanoparticle hybrid nanostructures. We synthesized anisotropic structures of Au nanodiamond rings and nanonecklaces by the coassembly of polymer-like long NWs with particle-like short NWs or Au nanoparticles. This strategy could potentially be extended to the organization of anisotropic complex nanostructures with other ultrathin NW systems in the future.
超瘦纳米线(NWs)被认为是组装复杂纳米结构以用于未来纳米器件的理想构建块。超瘦 NW 的聚合物/颗粒二元性在超瘦 NW 的溶液相自组装行为的研究中起着重要作用;然而,它尚未得到充分利用。在此,我们展示了超瘦 NW 的聚合物/颗粒二元性对组装复杂纳米结构形态的影响。超瘦 AuNWs 的长度与 NWs 的柔韧性直接相关,并影响 NWs 的类聚合物组装,而表面活性剂的浓度决定了界面张力和配体-溶剂相互作用,并影响 NWs 的类聚合物和胶体组装。通过精细调整这两个因素,超瘦 AuNWs 可以在“软”和“硬”构建块之间摇摆,并获得高度均匀的纳米环、纳米颗粒、纳米束和超晶格状纳米球。长和短 NW 的不同组装行为可以被认为是构建各向异性复杂纳米结构的两个组件,类似于聚合物-无机纳米粒子杂化纳米结构的制造。我们通过聚合物状长 NWs 与颗粒状短 NWs 或 Au 纳米颗粒的共组装合成了各向异性的 Au 纳米金刚石环和纳米项链结构。该策略将来可能会扩展到其他超瘦 NW 系统中各向异性复杂纳米结构的组织。