Zhao Guoke, Zhu Hongwei
State Key Lab of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing, 100084, China.
Adv Mater. 2020 Jun;32(22):e1905756. doi: 10.1002/adma.201905756. Epub 2020 Apr 6.
Cation-π interactions are common in nature, especially in organisms. Their profound influences in chemistry, physics, and biology have been continuously investigated since they were discovered in 1981. However, the importance of cation-π interactions in materials science, regarding carbonaceous nanomaterials, has just been realized. The interplay between cations and delocalized polarizable π electrons of graphene would bring about significant changes to the intrinsic characteristics of graphene and greatly affect the device performance based on graphene and its derivatives. Here, the cation-π interactions in graphene containing systems for water treatment applications (e.g., separation membranes, adsorbents) are highlighted. The cross-linking effects caused by cation-π interactions contribute to membrane stability and selectivity and enhanced adsorption. Their roles in dominating the performance of graphene-based structures for other specific applications are also discussed. Relevant theoretical modeling and calculations are summarized to offer an in-depth understanding of the underlying mechanisms which can help in designing more functional materials and structures. Perspectives on the potential directions that deserve effort are also presented.
阳离子-π相互作用在自然界中普遍存在,尤其是在生物体中。自1981年被发现以来,它们在化学、物理和生物学方面的深远影响一直受到持续研究。然而,阳离子-π相互作用在材料科学中对于碳质纳米材料的重要性才刚刚被认识到。阳离子与石墨烯离域的可极化π电子之间的相互作用会给石墨烯的固有特性带来显著变化,并极大地影响基于石墨烯及其衍生物的器件性能。在此,重点介绍了用于水处理应用(如分离膜、吸附剂)的含石墨烯体系中的阳离子-π相互作用。阳离子-π相互作用引起的交联效应有助于提高膜的稳定性和选择性以及增强吸附。还讨论了它们在主导基于石墨烯的结构用于其他特定应用时的性能方面所起的作用。总结了相关的理论建模和计算,以深入了解其潜在机制,这有助于设计更多功能性材料和结构。还提出了值得努力的潜在方向的展望。