General Synthesis of Ultrafine Monodispersed Hybrid Nanoparticles from Highly Stable Monomicelles.

Zhao, Zaiwang; Wang, Xiao; Jing, Xinxin; Zhao, Yujuan; Lan, Kun; Zhang, Wei; Duan, Linlin; Guo, Dingyi et al. · Adv Mater · 2021

basic_science · Level V

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Abstract

Ultrafine nanoparticles with organic-inorganic hybridization have essential roles in myriad applications. Over the past three decades, although various efforts on the formation of organic or inorganic ultrasmall nanoparticles have been made, ultrafine organic-inorganic hybrid nanoparticles have scarcely been achieved. Herein, a family of ultrasmall hybrid nanoparticles with a monodisperse, uniform size is synthesized by a facile thermo-kinetics-mediated copolymer monomicelle approach. These thermo-kinetics-mediated monomicelles with amphiphilic ABC triblock copolymers are structurally robust due to their solidified polystyrene core, endowing them with ultrahigh thermodynamic stability, which is difficult to achieve using Pluronic surfactant-based micelles (e.g., F127). This great stability combined with a core-shell-corona structure makes the monodispersed monomicelles a robust template for the precise synthesis of ultrasmall hybrid nanoparticles with a highly uniform size. As a demonstration, the obtained micelles/SiO<sub>2</sub> hybrid nanoparticles display ultrafine sizes, excellent uniformity, monodispersity, and tunable structural parameters (diameters: 24-47 nm and thin shell thickness: 2.0-4.0 nm). Notably, this approach is universal for creating a variety of multifunctional ultrasmall hybrid nanostructures, involving organic/organic micelle/polymers (polydopamine) nanoparticles, organic/inorganic micelle/metal oxides (ZnO, TiO<sub>2</sub> , Fe<sub>2</sub> O<sub>3</sub> ), micelle/hydroxides (Co(OH)<sub>2</sub> ), micelle/noble metals (Ag), and micelle/TiO<sub>2</sub> /SiO<sub>2</sub> hybrid composites. As a proof of concept, the ultrasmall micelle/SiO<sub>2</sub> hybrid nanoparticles demonstrate superior toughness as biomimetic materials.