Liquid Crystal Institute and Chemical Physics Interdisciplinary Program, Kent State University, Kent, Ohio, 44242, USA.
Materials and Manufacturing Directorate, Air Force Research Laboratory, Wright-Patterson AFB, Ohio, 45433, USA.
Chemistry. 2019 Jan 28;25(6):1369-1378. doi: 10.1002/chem.201802927. Epub 2018 Nov 21.
Owing to their dynamic attributes, non-covalent supramolecular interactions have enabled a new paradigm in the design and fabrication of multifunctional material systems with programmable properties, performances, and reconfigurable traits. Recently, the "halogen bond" has become an enticing supramolecular synthetic tool that displays a plethora of promising and advantageous characteristics. Consequently, this versatile and dynamic non-covalent interaction has been extensively harnessed in various fields such as crystal engineering, self-assembly, materials science, polymer chemistry, biochemistry, medicinal chemistry and nanotechnology. In recent years, halogen bonding has emerged as a tunable supramolecular synthetic tool in the design of functional liquid-crystalline materials with adjustable phases and properties. In this Concept article, the use of halogen bond in the field of stimuli-responsive smart soft materials, that is, liquid crystals is discussed. The design, synthesis and characterization of molecular and macromolecular liquid crystalline materials are described and the modulation of their properties has been emphasized. The power of halogen bonding in offering a large variety of functional liquid crystalline materials from readily accessible mesomorphic and non-mesomorphic complementary building blocks is highlighted. The article concludes with a perspective on the challenges and opportunities in this emerging endeavor towards the realization of enabling and elegant dynamic functional materials.
由于其动态属性,非共价超分子相互作用为设计和制造具有可编程性质、性能和可重构特性的多功能材料系统提供了新的范例。最近,“卤键”已成为一种诱人的超分子合成工具,具有许多有前途和有利的特点。因此,这种多功能和动态的非共价相互作用已广泛应用于晶体工程、自组装、材料科学、聚合物化学、生物化学、药物化学和纳米技术等各个领域。近年来,卤键在设计具有可调相和性质的功能液晶材料方面已成为一种可调超分子合成工具。在本文中,讨论了卤键在响应性智能软材料领域,即液晶中的应用。描述了分子和高分子液晶材料的设计、合成和表征,并强调了其性质的调制。卤键在提供从现成的介晶和非介晶互补构建块中获得各种功能液晶材料方面的强大功能得到了强调。本文最后对这一新兴领域的挑战和机遇进行了展望,以期实现功能齐全且优雅的动态功能材料。