†Department of Electrical Engineering, University of Southern California, Los Angeles, California 90089, United States.
‡Department of Electrical Engineering, University of Jeddah, Abdullah Sulayman Street, Jeddah 22254, Saudi Arabia.
ACS Nano. 2015 May 26;9(5):5618-24. doi: 10.1021/acsnano.5b01961. Epub 2015 May 6.
The utilization of black phosphorus and its monolayer (phosphorene) and few-layers in field-effect transistors has attracted a lot of attention to this elemental two-dimensional material. Various studies on optimization of black phosphorus field-effect transistors, PN junctions, photodetectors, and other applications have been demonstrated. Although chemical sensing based on black phosphorus devices was theoretically predicted, there is still no experimental verification of such an important study of this material. In this article, we report on chemical sensing of nitrogen dioxide (NO2) using field-effect transistors based on multilayer black phosphorus. Black phosphorus sensors exhibited increased conduction upon NO2 exposure and excellent sensitivity for detection of NO2 down to 5 ppb. Moreover, when the multilayer black phosphorus field-effect transistor was exposed to NO2 concentrations of 5, 10, 20, and 40 ppb, its relative conduction change followed the Langmuir isotherm for molecules adsorbed on a surface. Additionally, on the basis of an exponential conductance change, the rate constants for adsorption and desorption of NO2 on black phosphorus were extracted for different NO2 concentrations, and they were in the range of 130-840 s. These results shed light on important electronic and sensing characteristics of black phosphorus, which can be utilized in future studies and applications.
黑磷及其单层(磷烯)和少数层在场效应晶体管中的应用引起了人们对这种元素二维材料的极大关注。已经展示了对黑磷场效应晶体管、PN 结、光电探测器和其他应用的优化的各种研究。尽管基于黑磷器件的化学传感在理论上已经被预测到,但对于这种材料的重要研究仍然没有实验验证。在本文中,我们报告了使用基于多层黑磷的场效应晶体管进行的二氧化氮(NO2)化学传感。黑磷传感器在暴露于 NO2 时表现出增强的传导性,并且对检测低至 5 ppb 的 NO2 具有出色的灵敏度。此外,当多层黑磷场效应晶体管暴露于 5、10、20 和 40 ppb 的 NO2 浓度时,其相对传导变化遵循分子在表面吸附的 Langmuir 等温线。此外,基于指数电导变化,提取了不同 NO2 浓度下 NO2 在黑磷上的吸附和脱附的速率常数,其范围在 130-840 s 之间。这些结果揭示了黑磷的重要电子和传感特性,可用于未来的研究和应用。