Lei Huanyu, Liu Yuchu, Liu Tong, Guo Qing-Yun, Yan Xiao-Yun, Wang Yicong, Zhang Wei, Su Zebin, Huang Jiahao, Xu Wei, Bian Feng-Gang, Huang Mingjun, Cheng Stephen Z D
South China Advanced Institute for Soft Matter Science and Technology, School of Emergent Soft Matter, South China University of Technology, Guangzhou, 510640, China.
Department of Polymer Science, School of Polymer Science and Polymer Engineering, The University of Akron, Akron, OH 44325-3909, USA.
Angew Chem Int Ed Engl. 2022 Jul 11;61(28):e202203433. doi: 10.1002/anie.202203433. Epub 2022 May 23.
The hierarchical self-assembly process opens up great potential for the construction of nanostructural superlattices. Precise regulation of self-assembled superlattices, however, remains a challenge. Even when the primary molecules are precise, the supramolecular motifs (or secondary building blocks) can vary dramatically. In the present work, we propose the concept of unimolecular nanoparticles (UMNPs). The UMNPs act as the supramolecular motif and directly pack into the superlattices. A highly branched giant molecule is presented. We systematically explore its conformations and the superlattice of this giant molecule. Moreover, intriguing complex phases are discovered when blending this UMNP with other conventional giant molecules. These binary mixtures provide direct evidence to support our previously proposed self-sorting process in the self-assembly of "soft alloys". The concept of UMNPs offers a unique approach toward more precise regulation of self-assembled superlattices in soft matter.
分级自组装过程为纳米结构超晶格的构建开辟了巨大潜力。然而,精确调控自组装超晶格仍然是一个挑战。即使初级分子精确无误,超分子基序(或二级结构单元)也可能有很大差异。在本工作中,我们提出了单分子纳米颗粒(UMNPs)的概念。UMNPs作为超分子基序,直接堆积形成超晶格。我们展示了一种高度支化的巨型分子。我们系统地探索了它的构象以及这种巨型分子的超晶格。此外,当将这种UMNP与其他传统巨型分子混合时,发现了有趣的复杂相。这些二元混合物为我们之前提出的“软合金”自组装中的自分类过程提供了直接证据。UMNPs的概念为更精确调控软物质中的自组装超晶格提供了一种独特方法。