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红磷:一种用于室温下 NO 气体传感的本征半导体。

Red Phosphorus: An Elementary Semiconductor for Room-Temperature NO Gas Sensing.

机构信息

Department of Electronic Engineering , The Chinese University of Hong Kong , Shatin, New Territories , Hong Kong SAR , China.

State Key Laboratory of Material Processing and Die & Mould Technology, Department of Materials Science and Engineering , Huazhong University of Science and Technology , Luoyu Road , Wuhan , 430074 , China.

出版信息

ACS Sens. 2018 Dec 28;3(12):2629-2636. doi: 10.1021/acssensors.8b01041. Epub 2018 Dec 3.

Abstract

Black and blue phosphorus (both allotropes of elementary phosphorus) have recently been widely explored as an active material for electronic devices, and their potential in gas sensing applications has been demonstrated. On the other hand, amorphous red phosphorus (a-RP), a much cheaper and readily available phosphorus allotrope, has seldom been investigated as an electronic material, and its gas sensing properties have never been studied. In this work we have investigated these properties of a-RP by combining experimental characterizations with theoretical calculations. We found that a-RP exhibited an amphoteric character for detecting both commonly regarded reducing and oxidizing gas molecules, featuring a negative correlation between the electrical resistance of a-RP and the gas concentration. Interestingly, the a-RP based sensors appear to be particularly suitable for room-temperature NO detection, exhibiting excellent sensitivity and selectivity, as well as fast temporal response and recovery. A unique sensing feature of a-RP toward NO was identified, which is associated with the expansion of P-P bonds upon NO chemisorption. Based on density functional theory calculations we proposed a physiochemical model to elaborate the synergistic effects of the P-P bond expansion and Langmuir isotherm adsorption on the electronic properties and gas sensing processes of a-RP.

摘要

黑磷和蓝磷(均为磷的同素异形体)最近被广泛探索作为电子器件的活性材料,其在气体传感应用中的潜力已得到证实。另一方面,无定形红磷(a-RP),一种更便宜且易于获得的磷同素异形体,作为电子材料很少被研究,其气体传感性能也从未被研究过。在这项工作中,我们通过将实验表征与理论计算相结合,研究了 a-RP 的这些性质。我们发现 a-RP 对检测通常被认为是还原和氧化气体分子都表现出两性特征,a-RP 的电阻与气体浓度之间存在负相关。有趣的是,基于 a-RP 的传感器似乎特别适合室温下的 NO 检测,表现出优异的灵敏度和选择性,以及快速的时间响应和恢复。我们确定了 a-RP 对 NO 的独特传感特性,这与 NO 化学吸附时 P-P 键的扩展有关。基于密度泛函理论计算,我们提出了一个物理化学模型,详细阐述了 P-P 键扩展和 Langmuir 等温吸附对 a-RP 电子性质和气体传感过程的协同作用。

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