Physical–Chemical Coupling Coassembly Approach to Branched Magnetic Mesoporous Nanochains with Adjustable Surface Roughness

Author:

Huang Xirui1,Liu Minchao1,Lu Qianqian1,Lv Kexin1,Wang Lipeng1,Yin Sixing1,Yuan Minjia2,Li Qi2,Li Xiaomin1,Zhao Tiancong1,Zhao Dongyuan1ORCID

Affiliation:

1. College of Chemistry and Materials Department of Chemistry Laboratory of Advanced Materials Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials State Key Laboratory of Molecular Engineering of Polymers Collaborative Innovation Center of Chemistry for Energy Materials (2011‐iChEM) Fudan University Shanghai 200433 China

2. Shanghai Qiran Biotechnology Co., Ltd Shanghai 201702 China

Abstract

AbstractSelf‐assembly processes triggered by physical or chemical driving forces have been applied to fabricate hierarchical materials with subtle nanostructures. However, various physicochemical processes often interfere with each other, and their precise control has remained a great challenge. Here, in this paper, a rational synthesis of 1D magnetite‐chain and mesoporous‐silica‐nanorod (Fe3O4&mSiO2) branched magnetic nanochains via a physical–chemical coupling coassembly approach is reported. Magnetic‐field‐induced assembly of magnetite Fe3O4 nanoparticles and isotropic/anisotropic assembly of mesoporous silica are coupled to obtain the delicate 1D branched magnetic mesoporous nanochains. The nanochains with a length of 2–3 µm in length are composed of aligned Fe3O4@mSiO2 nanospheres with a diameter of 150 nm and sticked‐out 300 nm long mSiO2 branches. By properly coordinating the multiple assembly processes, the density and length of mSiO2 branches can well be adjusted. Because of the unique rough surface and length in correspondence to bacteria, the designed 1D Fe3O4&mSiO2 branched magnetic nanochains show strong bacterial adhesion and pressuring ability, performing bacterial inhibition over 60% at a low concentration (15 µg mL−1). This cooperative coassembly strategy deepens the understanding of the micro‐nanoscale assembly process and lays a foundation for the preparation of the assembly with adjustable surface structures and the subsequent construction of complex multilevel structures.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Natural Science Foundation of Shanghai Municipality

Shanghai Rising-Star Program

Qatar National Research Fund

Publisher

Wiley

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