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基于5,10,15,20-四苯基卟啉镍(II)(TPPNi)和氧化锌(ZnO)纳米复合材料的集成电容式和电阻式双模式相对湿度传感器

Integrated Capacitive- and Resistive-Type Bimodal Relative Humidity Sensor Based on 5,10,15,20-Tetraphenylporphyrinatonickel(II) (TPPNi) and Zinc Oxide (ZnO) Nanocomposite.

作者信息

Akram Rizwan, Saleem Muhammad, Farooq Zahid, Yaseen Muhammad, Almohaimeed Ziyad M, Zafar Qayyum

机构信息

Department of Electrical Engineering, College of Engineering, Qassim University, P.O. Box 6677, Buraydah 51452, Saudi Arabia.

Department of Physics, University of Management and Technology, Lahore 54000, Pakistan.

出版信息

ACS Omega. 2022 Aug 21;7(34):30590-30600. doi: 10.1021/acsomega.2c04313. eCollection 2022 Aug 30.

Abstract

The development of high-performance humidity sensors to cater for a plethora of applications, ranging from agriculture to intelligent medical monitoring systems, calls for the selection of a reliable and ultrasensitive sensing material. A simplistic device architecture, robust quantification of ambient relative humidity (% RH), and compatibility with the contemporary integrated circuit technology make a bimodal (capacitive and resistive) surface-type sensor to be a prominent choice for device fabrication. Herein, we have proposed and demonstrated a facile realization of a 5,10,15,20-tetraphenylporphyrinatonickel (II)-zinc oxide (TPPNi-ZnO) nanocomposite-based bimodal surface-type % RH sensor. The TPPNi macromolecule and ZnO nanoparticles have been synthesized by an eco-benign microwave-assisted technique and a thermal-budget chemical precipitation method, respectively. It is speculated from the morpohological study that specific surface area improvement, via the provision of ZnO nanoparticles on micro-pyramidal structures of TPPNi, may reinforce the sensing properties of the fabricated humidity sensor. The relative humidity sensing capacitive and resistive characteristics of the sensor have been monitored in 40-85% relative humidity (% RH) bandwidth. The fabricated sensor under the biasing conditions of 1 V of applied bias ( ) and 500 Hz AC test frequency exhibits a significantly higher sensitivity of 387.03 pF/% RH and 95.79 kΩ/% RH in bimodal operation. The average values of both the response and recovery times of the capacitive sensor have been estimated to be ∼30 s. It has also been debated why this high degree of sensitivity and considerable reduction in response/recovery time has been obtained. In addition, the intense and wide bandwidth spectral response of the TPPNi-ZnO nanocomposite indicates that it may also be utilized as a potential light-harvesting heterostructured nanohybrid in future studies.

摘要

为满足从农业到智能医疗监测系统等众多应用的需求,开发高性能湿度传感器需要选择可靠且超灵敏的传感材料。简单的器件结构、对环境相对湿度(%RH)的稳健量化以及与当代集成电路技术的兼容性,使得双峰(电容式和电阻式)表面型传感器成为器件制造的突出选择。在此,我们提出并展示了一种基于5,10,15,20-四苯基卟啉镍(II)-氧化锌(TPPNi-ZnO)纳米复合材料的双峰表面型%RH传感器的简易实现方法。TPPNi大分子和ZnO纳米颗粒分别通过生态友好的微波辅助技术和热预算化学沉淀法合成。从形态学研究推测,通过在TPPNi的微金字塔结构上提供ZnO纳米颗粒来提高比表面积,可能会增强所制造湿度传感器的传感性能。该传感器的相对湿度传感电容和电阻特性已在40-85%相对湿度(%RH)带宽内进行监测。在1V施加偏压( )和500Hz交流测试频率的偏置条件下制造的传感器,在双峰操作中表现出显著更高的灵敏度,分别为387.03pF/%RH和95.79kΩ/%RH。电容式传感器的响应和恢复时间的平均值估计约为30s。还讨论了为何获得如此高的灵敏度以及响应/恢复时间大幅缩短的原因。此外,TPPNi-ZnO纳米复合材料强烈且宽带的光谱响应表明,在未来研究中它也可能被用作潜在的光捕获异质结构纳米杂化物。

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