Fermi Level Pinning Dependent 2D Semiconductor Devices: Challenges and Prospects

材料科学 半导体 肖特基势垒 范德瓦尔斯力 光电子学 费米能级 肖特基二极管 半导体器件 兴奋剂 纳米技术 接触电阻 凝聚态物理 工程物理 电子 物理 二极管 量子力学 分子 图层(电子)
作者
Xiaochi Liu,Min Sup Choi,E. H. Hwang,Won Jong Yoo,Jian Sun
出处
期刊:Advanced Materials [Wiley]
卷期号:34 (15): e2108425-e2108425 被引量:345
标识
DOI:10.1002/adma.202108425
摘要

Motivated by the high expectation for efficient electrostatic modulation of charge transport at very low voltages, atomically thin 2D materials with a range of bandgaps are investigated extensively for use in future semiconductor devices. However, researchers face formidable challenges in 2D device processing mainly originated from the out-of-plane van der Waals (vdW) structure of ultrathin 2D materials. As major challenges, untunable Schottky barrier height and the corresponding strong Fermi level pinning (FLP) at metal interfaces are observed unexpectedly with 2D vdW materials, giving rise to unmodulated semiconductor polarity, high contact resistance, and lowered device mobility. Here, FLP observed from recently developed 2D semiconductor devices is addressed differently from those observed from conventional semiconductor devices. It is understood that the observed FLP is attributed to inefficient doping into 2D materials, vdW gap present at the metal interface, and hybridized compounds formed under contacting metals. To provide readers with practical guidelines for the design of 2D devices, the impact of FLP occurring in 2D semiconductor devices is further reviewed by exploring various origins responsible for the FLP, effects of FLP on 2D device performances, and methods for improving metallic contact to 2D materials.
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