Yin Yun, Zhang Yajing, Xie Qiuping, He Yunxiang, Guo Junling
BMI Center for Biomass Materials and Nanointerfaces, College of Biomass Science and Engineering, Sichuan University, Chengdu, Sichuan 610065, China.
National Engineering Laboratory for Clean Technology of Leather Manufacture, Sichuan University, Chengdu, Sichuan 610065, China.
Chempluschem. 2024 May;89(5):e202300695. doi: 10.1002/cplu.202300695. Epub 2024 Jan 22.
Nature has exhibited a high degree of control over the structures and functions. Supramolecules have been utilized to mimic the subtle assembly in nature. However, sophisticated synthesis of molecular skeletons or programmable design of the driving forces raises great challenges in fabricating high-level superstructures in a controlled manner. Natural polyphenols show great promises as building blocks for a diverse of assemblies with controlled structures and functionalities. The intrinsically embedded phenolic groups (i. e., catechol and galloyl groups) are readily forming multiple molecular interactions, including coordination, hydrogen bonding, and π-π interactions with various materials of inorganic particles, organic compounds, synthetic polymers, and biomacromolecules, providing the self-assembled structures or nanocoating on surfaces. Subsequent assembly occurred by further bonding of polyphenols to construct supraparticles. To gain control over the self-assembly, the key lies in the interplay among the molecular interactions with one or two being dominant. In this Perspective, we introduce the representative polyphenol-based assemblies and their derived supraparticles to exhibit the effective harness of the controlled self-assembly by polyphenols.
自然界对结构和功能展现出了高度的控制。超分子已被用于模拟自然界中的精细组装。然而,分子骨架的复杂合成或驱动力的可编程设计在以可控方式构建高级超结构方面带来了巨大挑战。天然多酚作为具有可控结构和功能的各种组装体的构建单元显示出巨大潜力。其内在嵌入的酚基(即儿茶酚和没食子酰基)易于与无机颗粒、有机化合物、合成聚合物和生物大分子等各种材料形成多种分子相互作用,包括配位、氢键和π-π相互作用,从而在表面提供自组装结构或纳米涂层。随后,多酚通过进一步键合发生组装以构建超粒子。要实现对自组装的控制,关键在于分子相互作用之间的相互作用,其中一种或两种相互作用占主导地位。在这篇综述中,我们介绍了具有代表性的基于多酚的组装体及其衍生的超粒子,以展示多酚对可控自组装的有效利用。