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由纳米粒子超晶格组装的宏观材料。

Macroscopic materials assembled from nanoparticle superlattices.

机构信息

Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.

出版信息

Nature. 2021 Mar;591(7851):586-591. doi: 10.1038/s41586-021-03355-z. Epub 2021 Mar 24.

Abstract

Nanoparticle assembly has been proposed as an ideal means to program the hierarchical organization of a material by using a selection of nanoscale components to build the entire material from the bottom up. Multiscale structural control is highly desirable because chemical composition, nanoscale ordering, microstructure and macroscopic form all affect physical properties. However, the chemical interactions that typically dictate nanoparticle ordering do not inherently provide any means to manipulate structure at larger length scales. Nanoparticle-based materials development therefore requires processing strategies to tailor micro- and macrostructure without sacrificing their self-assembled nanoscale arrangements. Here we demonstrate methods to rapidly assemble gram-scale quantities of faceted nanoparticle superlattice crystallites that can be further shaped into macroscopic objects in a manner analogous to the sintering of bulk solids. The key advance of this method is that the chemical interactions that govern nanoparticle assembly remain active during the subsequent processing steps, which enables the local nanoscale ordering of the particles to be preserved as the macroscopic materials are formed. The nano- and microstructure of the bulk solids can be tuned as a function of the size, chemical makeup and crystallographic symmetry of the superlattice crystallites, and the micro- and macrostructures can be controlled via subsequent processing steps. This work therefore provides a versatile method to simultaneously control structural organization across the molecular to macroscopic length scales.

摘要

纳米粒子组装被提议作为一种理想的方法来通过使用纳米级组件的选择来从底层构建整个材料来编程材料的层次结构组织。多尺度结构控制是非常理想的,因为化学成分、纳米级有序、微观结构和宏观形态都影响物理性质。然而,通常决定纳米粒子有序的化学相互作用本身并没有提供任何手段来在更大的长度尺度上操纵结构。因此,基于纳米粒子的材料开发需要加工策略来调整微结构和宏观结构,而不牺牲其自组装的纳米级排列。在这里,我们展示了快速组装克级数量的面心立方纳米粒子超晶格晶体的方法,这些晶体可以进一步被塑造成类似于大块固体烧结的宏观物体。该方法的关键进步是,控制纳米粒子组装的化学相互作用在随后的加工步骤中仍然保持活跃,这使得在形成宏观材料时可以保持颗粒的局部纳米级有序。大块固体的纳米和微观结构可以作为超晶格晶体的尺寸、化学组成和晶体对称性的函数进行调整,并且微结构和宏观结构可以通过后续的加工步骤进行控制。因此,这项工作提供了一种通用的方法,可以同时控制从分子到宏观长度尺度的结构组织。

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