Department of Materials Science and Engineering, Center for Two-Dimensional and Layered Materials, Pennsylvania State University , University Park, Pennsylvania 16802, United States.
Department of Physics, Center for Two-Dimensional and Layered Materials, Pennsylvania State University , University Park, Pennsylvania 16802, United States.
ACS Nano. 2015 Dec 22;9(12):11509-39. doi: 10.1021/acsnano.5b05556. Epub 2015 Nov 24.
The isolation of graphene in 2004 from graphite was a defining moment for the "birth" of a field: two-dimensional (2D) materials. In recent years, there has been a rapidly increasing number of papers focusing on non-graphene layered materials, including transition-metal dichalcogenides (TMDs), because of the new properties and applications that emerge upon 2D confinement. Here, we review significant recent advances and important new developments in 2D materials "beyond graphene". We provide insight into the theoretical modeling and understanding of the van der Waals (vdW) forces that hold together the 2D layers in bulk solids, as well as their excitonic properties and growth morphologies. Additionally, we highlight recent breakthroughs in TMD synthesis and characterization and discuss the newest families of 2D materials, including monoelement 2D materials (i.e., silicene, phosphorene, etc.) and transition metal carbide- and carbon nitride-based MXenes. We then discuss the doping and functionalization of 2D materials beyond graphene that enable device applications, followed by advances in electronic, optoelectronic, and magnetic devices and theory. Finally, we provide perspectives on the future of 2D materials beyond graphene.
2004 年从石墨中分离出石墨烯是二维(2D)材料领域“诞生”的一个重要时刻。近年来,由于 2D 限制下出现的新特性和新应用,人们越来越关注非石墨烯层状材料,包括过渡金属二卤化物(TMD)。在此,我们综述了 2D 材料“超越石墨烯”的重要新进展和研究现状。我们深入探讨了大块体中范德华(vdW)力的理论模型和理解,以及它们的激子特性和生长形态。此外,我们重点介绍了 TMD 合成和表征的最新突破,并讨论了最新的二维材料家族,包括单元素二维材料(如硅烯、磷烯等)和基于过渡金属碳化物和氮化物的 MXenes。接下来,我们讨论了超越石墨烯的 2D 材料的掺杂和功能化,这些材料使器件应用成为可能,然后讨论了电子、光电和磁性器件及其理论的进展。最后,我们对 2D 材料超越石墨烯的未来发展进行了展望。