Zheng Peiru, Jiang Yanyan, Li Hui, Dai Xinyue
Key Laboratory for Liquid-Solid Structural Evolution and Processing of Materials, Ministry of Education, Shandong University Jinan 250061 P. R. China
School of Life Sciences, Shanghai University Shanghai 200444 P. R. China
RSC Adv. 2022 Sep 12;12(40):25872-25880. doi: 10.1039/d2ra04677f.
Edge reconstructions of two-dimensional (2D) materials play a central role in determining the electronic transport properties of nanodevices. However, it is not feasible to study the relationship between edge reconstruction and electronic properties using experimental methods because of the complexity of the experimental environment and the diversity of edge reconstruction. Herein, we have combined density functional theory (DFT) calculations and the nonequilibrium Green's function (NEGF) method to investigate the inner physical mechanism of platinum diselenide (PtSe) nanoribbons, revealing distinctive negative differential resistance (NDR) behaviors in different nanoribbons with various edge reconstructions. The armchair PtSe nanoribbons with different edge reconstructions are all metallic, while the zigzag PtSe nanoribbons are semiconducting when the ratio of Pt to Se atoms at the edge is 1 : 2. These results reveal the internal source of the difference in the electron transport properties of PtSe nanoribbons with different edge reconstructions, providing new ideas for the design of novel multifunctional PtSe semiconducting and conducting electronic nanodevices with NDR properties.
二维(2D)材料的边缘重构在决定纳米器件的电子输运特性方面起着核心作用。然而,由于实验环境的复杂性和边缘重构的多样性,使用实验方法研究边缘重构与电子性质之间的关系是不可行的。在此,我们结合密度泛函理论(DFT)计算和非平衡格林函数(NEGF)方法来研究二硒化铂(PtSe)纳米带的内部物理机制,揭示了具有不同边缘重构的不同纳米带中独特的负微分电阻(NDR)行为。具有不同边缘重构的扶手椅状PtSe纳米带均为金属性,而当边缘处Pt与Se原子的比例为1∶2时,锯齿状PtSe纳米带为半导体性。这些结果揭示了具有不同边缘重构的PtSe纳米带电子输运性质差异的内在根源,为设计具有NDR特性的新型多功能PtSe半导体和导电电子纳米器件提供了新思路。