Wang Xin, Wang Zongrui, Wang Xiang, Kang Fangyuan, Gu Qianfeng, Zhang Qichun
Department of Materials Science and Engineering, City University of Hong Kong, Hong Kong SAR, 999077, P. R. China.
State Key Laboratory of Organic-Inorganic Composites, Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, China.
Angew Chem Int Ed Engl. 2024 Dec 16;63(51):e202416181. doi: 10.1002/anie.202416181. Epub 2024 Oct 31.
Organic cocrystals, representing one type of new functional materials, have gathered significant interest in various engineering areas. Owing to their diverse stacking modes, rich intermolecular interactions and abundant functional components, the physicochemical properties of organic cocrystals can be tailored to meet different requirements and exhibit novel characteristics. The past few years have witnessed the rapid development of organic cocrystals in both fundamental characteristics and various applications. Beyond the typical properties like ambipolarity, emission tuning ability, ferroelectricity, etc. that are previously well demonstrated, many novel, impressive and cutting-edge properties and applications of cocrystals are also emerged and advanced recently. Especially during the nearest five years, photothermal conversion, room-temperature phosphorescence, thermally activated delay fluorescence, circularly polarized luminescence, organic solid-state lasers, near-infrared sensing, photocatalysis, batteries, and stimuli responses have been reported. In this review, these new properties are carefully summarized. Besides, some neoteric architecture and methodologies, such as host-guest structures and machine learning-based screening, are introduced. Finally, the potential future developments and expectations for organic cocrystals are discussed for further investigations on multiple functions and applications.
有机共晶体作为一种新型功能材料,在各个工程领域引起了广泛关注。由于其多样的堆积模式、丰富的分子间相互作用和大量的功能组分,有机共晶体的物理化学性质可以被定制以满足不同需求并展现出新颖的特性。在过去几年中,有机共晶体在基本特性和各种应用方面都取得了快速发展。除了之前已充分证明的典型性质,如双极性、发射调谐能力、铁电性等,共晶体的许多新颖、令人印象深刻和前沿的性质及应用也在近期出现并得到了发展。特别是在最近五年中,已经报道了光热转换、室温磷光、热激活延迟荧光、圆偏振发光、有机固态激光器、近红外传感、光催化、电池以及刺激响应等方面的研究。在这篇综述中,对这些新性质进行了详细总结。此外,还介绍了一些新的结构和方法,如主客体结构和基于机器学习的筛选方法。最后,讨论了有机共晶体未来潜在的发展方向和期望,以便对其多功能性和应用进行进一步研究。