Highly Regular Layered Structure via Dual‐Spatially–Confined Alignment of Nanosheets Enables High‐Performance Nanocomposites

Author:

Zhang Si‐Chao1,Hou YuanZhen2,Chen Si‐Ming1,He Zhen3,Wang Ze‐Yu1,Zhu YinBo2,Wu HengAn2,Gao Huai‐Ling12,Yu Shu‐Hong13ORCID

Affiliation:

1. Department of Chemistry New Cornerstone Science Laboratory Institute of Biomimetic Materials and Chemistry Anhui Engineering Laboratory of Biomimetic Materials Division of Nanomaterials and Chemistry Hefei National Research Center for Physical Sciences at the Microscale University of Science and Technology of China Hefei 230026 China

2. CAS Key Laboratory of Mechanical Behavior and Design of Materials Department of Modern Mechanics CAS Center for Excellence in Complex System Mechanics University of Science and Technology of China Hefei 230027 China

3. Department of Chemistry Department of Materials Science and Engineering Institute of Innovative Materials (I2M) Shenzhen Key Laboratory of Sustainable Biomimetic Materials Guangming Advanced Research Institute Southern University of Science and Technology Shenzhen 518055 China

Abstract

AbstractAssembling ultrathin nanosheets into layered structure represents one promising way to fabricate high‐performance nanocomposites. However, how to minimize the internal defects of the layered assemblies to fully exploit the intrinsic mechanical superiority of nanosheets remains challenging. Here, a dual‐scale spatially confined strategy for the co‐assembly of ultrathin nanosheets with different aspect ratios into a near‐perfect layered structure is developed. Large‐aspect–ratio (LAR) nanosheets are aligned due to the microscale confined space of a flat microfluidic channel, small‐aspect–ratio (SAR) nanosheets are aligned due to the nanoscale confined space between adjacent LAR nanosheets. During this co‐assembly process, SAR nanosheets can flatten LAR nanosheets, thus reducing wrinkles and pores of the assemblies. Benefiting from the precise alignment (orientation degree of 90.74%) of different‐sized nanosheets, efficient stress transfer between nanosheets and interlayer matrix is achieved, resulting in layered nanocomposites with multiscale mechanical enhancement and superior fatigue durability (100 000 bending cycles). The proposed co‐assembly strategy can be used to orderly integrate high‐quality nanosheets with different sizes or diverse functions toward high‐performance or multifunctional nanocomposites.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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