AMME-LECAP, EA4528, International Laboratory, Institut des Matériaux de Rouen, Université et INSA de Rouen, BP12, 76801 Saint Etienne du Rouvray Cedex, France.
Int J Mol Sci. 2013 Jan 24;14(2):2303-33. doi: 10.3390/ijms14022303.
The construction of "smart" materials able to perform specific functions at the molecular scale through the application of various stimuli is highly attractive but still challenging. The most recent applications indicate that the outstanding flexibility of self-assembled architectures can be employed as a powerful tool for the development of innovative molecular devices, functional surfaces and smart nanomaterials. Structural flexibility of these materials is known to be conferred by weak intermolecular forces involved in self-assembly strategies. However, some fundamental mechanisms responsible for conformational lability remain unexplored. Furthermore, the role played by stronger bonds, such as coordination, ionic and covalent bonding, is sometimes neglected while they can be employed readily to produce mechanically robust but also chemically reversible structures. In this review, recent applications of structural flexibility and molecular motions in self-assembled nanostructures are discussed. Special focus is given to advanced materials exhibiting significant performance changes after an external stimulus is applied, such as light exposure, pH variation, heat treatment or electromagnetic field. The crucial role played by strong intra- and weak intermolecular interactions on structural lability and responsiveness is highlighted.
通过应用各种刺激来构建能够在分子尺度上执行特定功能的“智能”材料具有很大的吸引力,但仍然具有挑战性。最近的应用表明,自组装结构的出色灵活性可以用作开发创新的分子器件、功能表面和智能纳米材料的强大工具。这些材料的结构灵活性已知是由自组装策略中涉及的弱分子间力赋予的。然而,一些负责构象不稳定的基本机制仍未得到探索。此外,虽然配位、离子和共价键等较强的键可以很容易地用于制造机械坚固但化学可逆的结构,但它们的作用有时被忽视了。在这篇综述中,讨论了自组装纳米结构中结构灵活性和分子运动的最新应用。特别关注的是在施加外部刺激后表现出显著性能变化的先进材料,例如光暴露、pH 值变化、热处理或电磁场。强调了强内和弱分子间相互作用在结构灵活性和响应性方面的关键作用。