Institute of New Energy, State Key Laboratory of Heavy Oil Processing, China University of Petroleum (Beijing), Beijing, 102249, China.
Beijing National Laboratory for Molecular Sciences, Key Laboratory of Analytical Chemistry for Living Biosystems, Institute of Chemistry, The Chinese Academy of Sciences, Beijing, 100190, China.
Small. 2015 Dec 2;11(45):5984-6008. doi: 10.1002/smll.201501783. Epub 2015 Oct 5.
Studies on the self-assembly of nanoparticles have been a hot topic in nanotechnology for decades and still remain relevant for the present and future due to their tunable collective properties as well as their remarkable applications to a wide range of fields. The novel properties of nanoparticle assemblies arise from their internal interactions and assemblies with the desired architecture key to constructing novel nanodevices. Therefore, a comprehensive understanding of the interparticle forces of nanoparticle self-assemblies is a pre-requisite to the design and control of the assembly processes, so as to fabricate the ideal nanomaterial and nanoproducts. Here, different categories of interparticle forces are classified and discussed according to their origins, behaviors and functions during the assembly processes, and the induced collective properties of the corresponding nanoparticle assemblies. Common interparticle forces, such as van der Waals forces, electrostatic interactions, electromagnetic dipole-dipole interactions, hydrogen bonds, solvophonic interactions, and depletion interactions are discussed in detail. In addition, new categories of assembly principles are summarized and introduced. These are termed template-mediated interactions and shape-complementary interactions. A deep understanding of the interactions inside self-assembled nanoparticles, and a broader perspective for the future synthesis and fabrication of these promising nanomaterials is provided.
几十年来,纳米粒子的自组装研究一直是纳米技术领域的热门话题,由于其可调谐的集体性质以及在广泛领域中的显著应用,它在现在和未来仍然具有重要意义。纳米粒子组装的新颖性质源于其内部相互作用和所需结构的组装,这对于构建新型纳米器件至关重要。因此,全面了解纳米粒子自组装的粒子间力是设计和控制组装过程的前提,以制造理想的纳米材料和纳米产品。在这里,根据其起源、在组装过程中的行为和功能,以及相应的纳米粒子组装的诱导集体性质,对不同类别的粒子间力进行了分类和讨论。详细讨论了常见的粒子间力,如范德华力、静电相互作用、电磁偶极子-偶极子相互作用、氢键、溶剂化相互作用和耗尽相互作用。此外,还总结并介绍了新的组装原理类别。这些被称为模板介导相互作用和形状互补相互作用。深入了解自组装纳米粒子内部的相互作用,并为未来这些有前途的纳米材料的合成和制造提供更广阔的视角。