Deng Kerong, Luo Zhishan, Tan Li, Quan Zewei
Department of Chemistry, Academy for Advanced Interdisciplinary Studies, Key Laboratory of Energy Conversion and Storage Technologies, Ministry of Education, Southern University of Science and Technology (SUSTech), Shenzhen, Guangdong 518055, China.
Chem Soc Rev. 2020 Jul 21. doi: 10.1039/d0cs00541j.
Self-assembly of colloidal nanoparticles (NPs) into superstructures offers a flexible and promising pathway to manipulate the nanometer-sized particles and thus make full use of their unique properties. This bottom-up strategy builds a bridge between the NP regime and a new class of transformative materials across multiple length scales for technological applications. In this field, anisotropic NPs with size- and shape-dependent physical properties as self-assembly building blocks have long fascinated scientists. Self-assembly of anisotropic NPs not only opens up exciting opportunities to engineer a variety of intriguing and complex superlattice architectures, but also provides access to discover emergent collective properties that stem from their ordered arrangement. Thus, this has stimulated enormous research interests in both fundamental science and technological applications. This present review comprehensively summarizes the latest advances in this area, and highlights their rich packing behaviors from the viewpoint of NP shape. We provide the basics of the experimental techniques to produce NP superstructures and structural characterization tools, and detail the delicate assembled structures. Then the current understanding of the assembly dynamics is discussed with the assistance of in situ studies, followed by emergent collective properties from these NP assemblies. Finally, we end this article with the remaining challenges and outlook, hoping to encourage further research in this field.
胶体纳米颗粒(NPs)自组装成超结构为操控纳米级颗粒提供了一条灵活且前景广阔的途径,从而能够充分利用其独特性质。这种自下而上的策略在NP体系与一类用于技术应用的跨越多个长度尺度的新型变革性材料之间架起了一座桥梁。在该领域,具有尺寸和形状依赖物理性质的各向异性NPs作为自组装构建基元长期以来一直吸引着科学家。各向异性NPs的自组装不仅为设计各种引人入胜且复杂的超晶格结构开辟了令人兴奋的机会,还提供了发现源于其有序排列的新兴集体性质的途径。因此,这激发了基础科学和技术应用方面的巨大研究兴趣。本综述全面总结了该领域的最新进展,并从NP形状的角度突出了它们丰富的堆积行为。我们提供了制备NP超结构的实验技术基础和结构表征工具,并详细介绍了精细的组装结构。然后借助原位研究讨论了当前对组装动力学的理解,接着介绍了这些NP组装体的新兴集体性质。最后,我们以剩余的挑战和展望结束本文,希望鼓励该领域的进一步研究。