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二维薄片的液压微成型

Hydroplastic Micromolding of 2D Sheets.

作者信息

Guo Fan, Wang Yue, Jiang Yanqiu, Li Zeshen, Xu Zhen, Zhao Xiaoli, Guo Tingbiao, Jiang Wei, Gao Chao

机构信息

National Special Superfine Powder Engineering Research Center, Nanjing University of Science and Technology, 1 Guanghua Road, Nanjing, 210094, P. R. China.

MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Key Laboratory of Adsorption and Separation Materials & Technologies of Zhejiang Province, Zhejiang University, 38 Zheda Road, Hangzhou, 310027, P. R. China.

出版信息

Adv Mater. 2021 Jun;33(25):e2008116. doi: 10.1002/adma.202008116. Epub 2021 May 14.

Abstract

Processing 2D sheets into desired structures with high precision is of great importance for fabrication and application of their assemblies. Solution processing of 2D sheets from dilute dispersions is a commonly used method but offers limited control over feature size precision owing to the extreme volume shrinkage. Plastic processing from the solid state is therefore a preferable approach to achieve high precision. However, plastic processing is intrinsically hampered by strong interlayer interactions of the 2D sheet solids. Here, a hydroplastic molding method to shape layered solids of 2D sheets with micrometer-scale precision under ambient conditions is reported. The dried 2D layered solids are plasticized by intercalated solvents, affording plastic near-solid compounds that enable local plastic deformation. Such an intercalated solvent-induced hydroplasticity is found in a broad family of 2D materials, for example graphene, MoS , and MXene. The hydroplastic molding enables fabrication of complex spatial structures (knurling, origami) and microimprinted tubular structures down to diameters of 390 nm with good fidelity. The method enhances the structural accuracy and enriches the structural diversity of 2D macroassemblies, thus providing a feasible strategy to tune their electrical, optical, and other functional properties.

摘要

将二维薄片加工成具有高精度的所需结构对于其组件的制造和应用至关重要。从稀分散体中对二维薄片进行溶液加工是一种常用方法,但由于极端的体积收缩,对特征尺寸精度的控制有限。因此,固态塑性加工是实现高精度的一种更可取的方法。然而,塑性加工本质上受到二维薄片固体强烈层间相互作用的阻碍。在此,报道了一种在环境条件下以微米级精度对二维薄片的层状固体进行成型的水塑性成型方法。干燥的二维层状固体通过插层溶剂进行增塑,得到能够实现局部塑性变形的塑性近固体化合物。在广泛的二维材料家族中发现了这种插层溶剂诱导的水塑性,例如石墨烯、二硫化钼和MXene。水塑性成型能够制造复杂的空间结构(滚花、折纸)以及直径低至390纳米的微压印管状结构,且具有良好的保真度。该方法提高了二维宏观组件的结构精度并丰富了其结构多样性,从而为调节其电学、光学和其他功能特性提供了一种可行的策略。

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