School of Life Sciences, Institute of Life Science and Green Development, Key Laboratory of Brain-Like Neuromorphic Devices and Systems of Hebei Province, College of Electronic and Information Engineering, Hebei University, Baoding, 071002, China.
Collaborative Innovation Center for Optoelectronic Science and Technology, International Collaborative Laboratory of 2D Materials for Optoelectronics Science and Technology of Ministry of Education, Institute of Microscale Optoelectronics, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen, 518060, P. R. China.
Adv Sci (Weinh). 2023 Mar;10(7):e2203889. doi: 10.1002/advs.202203889. Epub 2023 Jan 22.
In the past few decades, 2D layer materials have gradually become a central focus in materials science owing to their uniquely layered structural qualities and good optoelectronic properties. However, in the development of 2D materials, several disadvantages, such as limited types of materials and the inability to synthesize large-scale materials, severely confine their application. Therefore, further exploration of new materials and preparation methods is necessary to meet technological developmental needs. Organic molecular materials have the advantage of being customizable. Therefore, if organic molecular and 2D materials are combined, the resulting 2D organic materials would have excellent optical and electrical properties. In addition, through this combination, the free design and large-scale synthesis of 2D materials can be realized in principle. Furthermore, 2D organic materials exhibit excellent properties and unique functionalities along with great potential for developing sensors, biomedicine, and electronics. In this review, 2D organic materials are divided into five categories. The preparation methods and material properties of each class of materials are also described in detail. Notably, to comprehensively understand each material's advantages, the latest research applications for each material are presented in detail and summarized. Finally, the future development and application prospects of 2D organic materials are briefly discussed.
在过去的几十年中,二维(2D)层状材料由于其独特的层状结构特性和良好的光电性能,逐渐成为材料科学的研究重点。然而,在 2D 材料的发展过程中,材料种类有限和无法大规模合成等缺点严重限制了其应用。因此,需要进一步探索新材料和制备方法,以满足技术发展的需求。有机分子材料具有可定制的优势。因此,如果将有机分子和 2D 材料结合,所得到的 2D 有机材料将具有优异的光学和电学性能。此外,通过这种结合,可以在原理上实现 2D 材料的自由设计和大规模合成。此外,2D 有机材料具有出色的性能和独特的功能,在开发传感器、生物医药和电子等领域具有巨大的潜力。在本综述中,2D 有机材料被分为五类。详细描述了每类材料的制备方法和材料性能。值得注意的是,为了全面了解每种材料的优势,详细介绍并总结了每种材料的最新研究应用。最后,简要讨论了 2D 有机材料的未来发展和应用前景。