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应变和水对平面内石墨烯/硅烯异质结构的电子结构和化学活性的影响。

Strain and water effects on the electronic structure and chemical activity of in-plane graphene/silicene heterostructure.

作者信息

Kistanov Andrey A, Cai Yongqing, Zhang Yong-Wei, Dmitriev Sergey V, Zhou Kun

机构信息

School of Mechanical and Aerospace Engineering, Nanyang Technological University, 639798 Singapore. Institute of High Performance Computing, Agency for Science, Technology and Research, 138632 Singapore.

出版信息

J Phys Condens Matter. 2017 Mar 8;29(9):095302. doi: 10.1088/1361-648X/aa57dc. Epub 2017 Jan 27.

Abstract

By using first-principles calculations, the electronic structure of planar and strained in-plane graphene/silicene heterostructure is studied. The heterostructure is found to be metallic in a strain range from  -7% (compression) to  +7% (tension). The effect of compressive/tensile strain on the chemical activity of the in-plane graphene/silicene heterostructure is examined by studying its interaction with the HO molecule. It shows that compressive/tensile strain is able to increase the binding energy of HO compared with the adsorption on a planar surface, and the charge transfer between the water molecule and the graphene/silicene sheet can be modulated by strain. Moreover, the presence of the boron-nitride (BN)-substrate significantly influences the chemical activity of the graphene/silicene heterostructure upon its interaction with the HO molecule and may cause an increase/decrease of the charge transfer between the HO molecule and the heterostructure. These findings provide insights into the modulation of electronic properties of the in-plane free-standing/substrate-supported graphene/silicene heterostructure, and render possible ways to control its electronic structure, carrier density and redox characteristics, which may be useful for its potential applications in nanoelectronics and gas sensors.

摘要

通过第一性原理计算,研究了平面和应变面内石墨烯/硅烯异质结构的电子结构。发现该异质结构在从 -7%(压缩)到 +7%(拉伸)的应变范围内呈金属性。通过研究平面内石墨烯/硅烯异质结构与 HO 分子的相互作用,考察了压缩/拉伸应变对其化学活性的影响。结果表明,与在平面表面上的吸附相比,压缩/拉伸应变能够增加 HO 的结合能,并且水分子与石墨烯/硅烯片之间的电荷转移可以通过应变来调节。此外,氮化硼(BN)衬底的存在在其与 HO 分子相互作用时显著影响石墨烯/硅烯异质结构的化学活性,并可能导致 HO 分子与异质结构之间电荷转移的增加/减少。这些发现为理解平面内独立/衬底支撑的石墨烯/硅烯异质结构的电子性质调制提供了见解,并给出了控制其电子结构、载流子密度和氧化还原特性的可能方法,这可能对其在纳米电子学和气体传感器中的潜在应用有用。

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