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调控碳化硅表面态以控制石墨烯/碳化硅中的载流子传输

Modulating the Surface State of SiC to Control Carrier Transport in Graphene/SiC.

作者信息

Jia Yuping, Sun Xiaojuan, Shi Zhiming, Jiang Ke, Liu Henan, Ben Jianwei, Li Dabing

机构信息

State Key Laboratory of Luminescence and Applications, Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun, 130033, P. R. China.

University of Chinese Academy of Sciences, Beijing, 100039, P. R. China.

出版信息

Small. 2018 Jun;14(26):e1801273. doi: 10.1002/smll.201801273. Epub 2018 May 28.

Abstract

Silicon carbide (SiC) with epitaxial graphene (EG/SiC) shows a great potential in the applications of electronic and photoelectric devices. The performance of devices is primarily dependent on the interfacial heterojunction between graphene and SiC. Here, the band structure of the EG/SiC heterojunction is experimentally investigated by Kelvin probe force microscopy. The dependence of the barrier height at the EG/SiC heterojunction to the initial surface state of SiC is revealed. Both the barrier height and band bending tendency of the heterojunction can be modulated by controlling the surface state of SiC, leading to the tuned carrier transport behavior at the EG/SiC interface. The barrier height at the EG/SiC(000-1) interface is almost ten times that of the EG/SiC(0001) interface. As a result, the amount of carrier transport at the EG/SiC(000-1) interface is about ten times that of the EG/SiC(0001) interface. These results offer insights into the carrier transport behavior at the EG/SiC heterojunction by controlling the initial surface state of SiC, and this strategy can be extended in all devices with graphene as the top layer.

摘要

具有外延石墨烯的碳化硅(EG/SiC)在电子和光电器件应用中显示出巨大潜力。器件性能主要取决于石墨烯与SiC之间的界面异质结。在此,通过开尔文探针力显微镜对EG/SiC异质结的能带结构进行了实验研究。揭示了EG/SiC异质结处势垒高度对SiC初始表面状态的依赖性。通过控制SiC的表面状态,可以调节异质结的势垒高度和能带弯曲趋势,从而导致EG/SiC界面处载流子输运行为的调整。EG/SiC(000-1)界面处的势垒高度几乎是EG/SiC(0001)界面的十倍。因此,EG/SiC(000-1)界面处的载流子输运量约为EG/SiC(0001)界面的十倍。这些结果通过控制SiC的初始表面状态,为EG/SiC异质结处的载流子输运行为提供了见解,并且这种策略可以扩展到所有以石墨烯为顶层的器件中。

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