4.5 Article

Negative differential conductance effect and electrical anisotropy of 2D ZrB2 monolayers

期刊

出版社

IOP PUBLISHING LTD
DOI: 10.1088/1361-648X/aaf5b2

关键词

nanodevices; electronic transport; negative differential conductance; density functional theory; non-equilibrium Green's function; two-dimensional materials; ZrB2 monolayer

资金

  1. US DOE-BES [DE-FG02-05ER46237]
  2. National Natural Science Foundation of China [11774079, U1704136]
  3. CSC [201708410368]
  4. Natural Science Foundation of Henan Province [162300410171]
  5. young backbone teacher training program of Henan province's higher education
  6. Science Foundation for the Excellent Youth Scholars of Henan Normal University [2016YQ05]
  7. High-Performance Computing Centre of Henan Normal University

向作者/读者索取更多资源

Two-dimensional (2D) metal-diboride ZrB2 monolayers was predicted theoretically as a stable new electronic material (Lopez-Bezanilla 2018 Phys. Rev. Mater 2 011002). Here, we investigate its electronic transport properties along the zigzag (z-ZrB2) and armchair (a-ZrB2) directions, using the density functional theory and non-equilibrium Green's function methods. Under low biases, the 2D ZrB2 shows a similar electrical transport along zigzag and armchair directions as electric current propagates mostly via the metallic Zr-Zr bonds. However, it shows an electrical anistropy under high biases, and its I-V curves along zigzag and armchair directions diverge as the bias voltage is higher than 1.4 V, as more directional B-B transmission channels are opened. Importantly, both z-ZrB2 and a-ZrB2 show a pronounced negative differential conductance (NDC) effect and hence they can be promising for the use in NDC-based nanodevices.

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