化学
氧化还原
胶束
纳米棒
纳米材料
阳离子聚合
水溶液
纳米技术
纳米颗粒
金属
电化学
化学工程
组合化学
水溶液中的金属离子
紧身衣
电解质
铜
离子
模板
锌
过渡金属
原位
自组装
半反应
离子键合
化学反应
多硫化物
膜
无机化学
作者
Yao Lu,Jiawei Tao,LI Zh,Shuang Wang,Xiaomin Cai,Huibin Qiu
摘要
Living crystallization-driven self-assembly (CDSA) has developed as a versatile and programmable strategy for constructing multidimensional micellar nanostructures. While corona modification facilitates the tailored fabrication of diverse functional materials, the crystalline core is substantially underexplored for postassembly functionalization. Herein, we find that water-soluble polyferrocenylsilane-b-poly(2-vinylpyridine) micelles featuring a quaternized corona allow full compatibility and permeation of hydrophilic oxidants, thereby enabling in situ redox reactions with the reductive polyferrocenylsilane core. This permits the direct preparation of a series of metallic nanomaterials, such as MnO2, Fe(OH)3, Pt, Pd, and Ru, under ambient conditions with the addition of anionic oxidants including MnO4-, FeO42-, PtCl42-, PdCl42-, and RuCl52-. On the contrary, when cationic oxidants (e.g., Ag+, Au3+, and Rh3+) are added, the redox reaction is impeded by the electrostatic repulsion with the positively charged corona. Interestingly, the addition of electrolyte (e.g., KNO3) would remarkably relieve the kinetic barrier of ion diffusion and hence facilitate the formation of metal nanorods or nanoparticle chains. Moreover, in situ redox reactions on micellar brushes fabricated through surface-initiated living CDSA further enable the formation of vertical MnO2 nanoarray and Ag nanochain networks, showing appealing potential applications in aqueous zinc ion batteries and flexible electronic devices.
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