Shukla Vineeta
Nuclear Condensed Matter Physics Laboratory, Department of Physics, Indian Institute of Technology Kharagpur-721302 India
Nanoscale Adv. 2020 Jan 9;2(3):962-990. doi: 10.1039/c9na00663j. eCollection 2020 Mar 17.
Two dimensional (2D) carbonaceous materials such as graphene and its derivatives, , graphdiyne, have enormous potential possibilities in major fields of scientific research. Theoretically, it has been proposed that the perfect atomic lattice arrangement of these materials is responsible for their outstanding physical and chemical properties, and also for their poor magnetic properties. Experimentally, it is difficult to obtain a perfect atomic lattice of carbon atoms due to the appearance of structural disorder. This structural disorder is generated during the growth or synthesis of carbon-related materials. Investigations of structural disorder reveal that it can offer both advantages and disadvantages depending on the application. For instance, disorder reduces the thermal and mechanical stability, and deteriorates the performance of 2D carbon-based electronic devices. The most interesting effect of structural disorder can be seen in the field of magnetism. Disorder not only creates magnetic ordering within 2D carbon materials but also influences the local electronic structure, which opens the door for future spintronic devices. Although various studies on the disorder induced magnetism of 2D carbon materials are available in the literature, some parts of the above field have still not been fully exploited. This review presents existing work for the future development of 2D carbon-based devices.
二维(2D)碳质材料,如石墨烯及其衍生物、石墨炔,在主要科研领域具有巨大的潜在可能性。从理论上讲,有人提出这些材料完美的原子晶格排列造就了它们出色的物理和化学性质,同时也导致了它们较差的磁性。在实验中,由于结构无序的出现,很难获得完美的碳原子晶格。这种结构无序是在碳相关材料的生长或合成过程中产生的。对结构无序的研究表明,根据应用的不同,它既有优点也有缺点。例如,无序会降低热稳定性和机械稳定性,并使二维碳基电子器件的性能变差。结构无序最有趣的影响可以在磁性领域看到。无序不仅会在二维碳材料中产生磁有序,还会影响局部电子结构,这为未来的自旋电子器件打开了大门。尽管文献中有各种关于二维碳材料无序诱导磁性的研究,但上述领域的一些部分仍未得到充分开发。本综述介绍了二维碳基器件未来发展的现有工作。