多孔钙钛矿膜陶瓷湿度传感器的电容性研究

Hamid Farahani, R. Wagiran, G. Urban
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引用次数: 1

摘要

本研究在钛酸锶钡钙钛矿纳米复合材料的基础上,掺杂不同浓度的氧化镁纳米颗粒,制备并研究了陶瓷电容式湿度传感器。每个掺杂物的传感元件的粒径从56 nm到35 nm不等。用阻抗谱法研究了大块钙钛矿(球团)与水蒸气的相互作用。从体频率-电容谱中观察到,即使在低RH值下,离子输运也存在。大量样品的EIS结果证实质子转移仅通过电荷转移动力学进行,而不是扩散到金属(高达90% RH)。在所提出的传感器中,含有3 mol%氧化镁的器件在20-95% RH范围内表现出最大的电容变化(21 pF - 25200 pF),灵敏度为335 pF/RH%,在60% RH时最大迟滞为5.2% RH。其余掺杂量对主钙钛矿的影响为负。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Capacitive Properties of Ceramic Humidity Sensors Made from Porous Perovskite Films
In this research, ceramic-based capacitive humidity sensors based on the barium strontium titanate perovskite nanocomposite and doped with the various concentrations of magnesia nanoparticles were fabricated and investigated. The particle size of the sensing elements is varied from 56 nm to 35 nm per dopant surcharges. The interaction between bulk perovskites (pellet) and water vapor was studied by impedance spectroscopy. Presence of the ionic transport even at low RH values is observed from the bulk frequency-capacitance spectra. The EIS results of the bulk sample confirm that the proton transfer operates only by charge transfer kinetics and not diffusion process to metals (up to 90% RH). Among all the proposed sensors, the device contains of 3 mol% magnesia exhibits the most capacitance change (21 pF – 25200 pF) with the sensitivity of 335 pF/RH% in the range of 20–95% RH, and a maximum hysteresis of 5.2% RH at 60% RH. The impact of rest of dopant values on the main perovskite is negative.
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