论文标题

一项关于小分子在阿森烯上吸附的第一原理研究:在阿森烯,苯乙烯,磷烯和Inse中氧化动力学的比较

A First-Principles Study on the Adsorption of Small Molecules on Arsenene: Comparison of Oxidation Kinetics in Arsenene, Antimonene, Phosphorene and InSe

论文作者

Kistanov, Andrey A., Khadiullin, Salavat Kh., Dmitriev, Sergey V., Korznikova, Elena A.

论文摘要

Arsenene是一种新的V二维(2D)半导体材料以外的磷烯和偶然材料,最近对其各种有趣的特性具有越来越多的关注,可以通过与各种分子的化学反应来改变或故意使其功能化。这项工作提供了有关阿森烯与小分子的相互作用的系统研究,包括H2,NH3,O2,H2O,NO和NO2。可以预测,O2,H2O,NO和NO2是强大的受体,而NH3则是捐助者。重要的是,它显示出H2和Arsenene之间可忽略的电荷转移,该电荷转移比H2和磷烯之间的电荷转移低十倍,比H2,INSE和INSE和反烯烯低约千倍。发现Arsenene上O2分裂的计算能屏障低至0.67 eV。因此,原始的阿森烯可能像其他V 2D材料一样在环境条件下很容易氧化。另一方面,H2O在阿森烯中的受体作用与抗氨基和INSE的病例类似,可能有助于通过形成酸来防止质子转移H2O和O物种之间的质子转移,从而抑制了阿森宁的进一步结构降解。由于H2O分子的受体作用,可以避免与环境相互作用时2D层的结构分解,因为研究可以从公共V 2D材料的比较中预测。但是,由于与其他小型环境分子的牢固相互作用,仍需要保护阿森烯。目前的工作提供了保护阿森烯免受结构降解和调节其电子特性的可能方法,这对于材料合成,存储和应用很有用。

Arsenene, a new group V two-dimensional (2D) semiconducting material beyond phosphorene and antimonene, has recently gained an increasing attention owning to its various interesting properties which can be altered or intentionally functionalized by chemical reactions with various molecules. This work provides a systematic study on the interactions of arsenene with the small molecules, including H2, NH3, O2, H2O, NO, and NO2. It is predicted that O2, H2O, NO, and NO2 are strong acceptors, while NH3 serves as a donor. Importantly, it is shown a negligible charge transfer between H2 and arsenene which is ten times lower than that between H2 and phosphorene and about thousand times lower than that between H2 and InSe and antimonene. The calculated energy barrier for O2 splitting on arsenene is found to be as low as 0.67 eV. Thus, pristine arsenene may easily oxidize in ambient conditions as other group V 2D materials. On the other hand, the acceptor role of H2O on arsenene, similarly to the cases of antimonene and InSe, may help to prevent the proton transfer between H2O and O species by forming acids, which suppresses further structural degradation of arsenene. The structural decomposition of the 2D layers upon interaction with the environment may be avoided due to the acceptor role of H2O molecules as the study predicts from the comparison of common group V 2D materials. However, the protection for arsenene is still required due to its strong interaction with other small environmental molecules. The present work renders the possible ways to protect arsenene from structure degradation and to modulate its electronic properties, which is useful for the material synthesis, storage and applications.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源