材料科学
半导体
接触电阻
光电子学
电接点
电场
电阻和电导
座舱增压
电阻率和电导率
数码产品
纳米技术
电气工程
复合材料
工程类
物理
图层(电子)
量子力学
作者
Yolanda Manzanares-Negro,Jiamin Quan,Maedeh Rassekh,Mohammed Moaied,Xiaoqin Li,Pablo Ares,J. J. Palacios,Julio Gómez‐Herrero,Cristina Gómez‐Navarro
出处
期刊:2D materials
[IOP Publishing]
日期:2023-03-07
卷期号:10 (2): 021003-021003
被引量:12
标识
DOI:10.1088/2053-1583/acc1f4
摘要
Abstract The performance of electronic and optoelectronic devices is dominated by charge carrier injection through the metal–semiconductor contacts. Therefore, creating low-resistance electrical contacts is one of the most critical challenges in the development of devices based on new materials, particularly in the case of two-dimensional semiconductors. Herein, we report a strategy to reduce the contact resistance of MoS 2 via local pressurization. We fabricated electrical contacts using an atomic force microscopy tip and applied variable pressure ranging from 0 to 25 GPa. By measuring the transverse electronic transport properties, we show that MoS 2 undergoes a reversible semiconducting-metallic transition under pressure. Planar devices in field effect configuration with electrical contacts performed at pressures above ∼15 GPa show up to 30-fold reduced contact resistance and up to 25-fold improved field-effect mobility when compared to those measured at low pressure. Theoretical simulations show that this enhanced performance is due to improved charge injection to the MoS 2 semiconductor channel through the metallic MoS 2 phase obtained by pressurization. Our results suggest a novel strategy for realizing improved contacts to MoS 2 devices by local pressurization and for exploring emergent phenomena under mechano-electric modulation.
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