Departamento de Física de la Materia Condensada, Universidad Autónoma de Madrid, Madrid, E-28049, Spain.
Condensed Matter Physics Center (IFIMAC), Universidad Autónoma de Madrid, Madrid, E-28049, Spain.
Adv Mater. 2018 Jan;30(2). doi: 10.1002/adma.201703771. Epub 2017 Oct 27.
Antimonene, defined in sensu stricto as a single layer of antimony atoms, is recently the focus of numerous theoretical works predicting a variety of interesting properties and is quickly attracting the attention of the scientific community. However, what places antimonene in a different category from other 2D crystals is its strong spin-orbit coupling and a drastic evolution of its properties from the monolayer to the few-layer system. The recent isolation of this novel 2D material pushes the interest for antimonene even further. Here, a review of both theoretical predictions and experimental results is compiled. First, an account of the calculations anticipating an electronic band structure suitable for optoelectronics and thermoelectric applications in monolayer form and a topological semimetal in few-layer form is given. Second, the different approaches to produce antimonene-mechanical and liquid phase exfoliation, and epitaxial growth methods-are reviewed. In addition, this work also reports the main characterization techniques used to study this exotic material. This review provides insights for further exploring the appealing properties of antimonene and puts forward the opportunities and challenges for future applications from (opto)electronic device fabrication to biomedicine.
反式烯,狭义上定义为单层的锑原子,是最近众多理论工作的焦点,预测了各种各样的有趣的性质,并且迅速引起了科学界的关注。然而,使反式烯与其他二维晶体区分开来的是它的强自旋轨道耦合以及从单层到少层体系的性质的急剧演变。这种新型二维材料的最近分离进一步推动了人们对反式烯的兴趣。在这里,我们对理论预测和实验结果进行了综述。首先,我们介绍了单层形式适合光电和热电应用的电子能带结构的计算,并介绍了少层形式的拓扑半金属。其次,我们回顾了制备反式烯的不同方法,包括机械和液相剥离以及外延生长方法。此外,这项工作还报告了研究这种奇异材料的主要表征技术。本综述为进一步探索反式烯的诱人性质提供了深入的见解,并提出了从(光)电子器件制造到生物医学等未来应用的机遇和挑战。