多孔硅基燃料电池型酒精蒸气传感器

IF 4.9 3区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Pinar Duzgun, Cigdem Nuhoglu, Sureyya Aydin Yuksel
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引用次数: 0

摘要

在这项研究中,首次在文献中提出了基于银/多孔硅/nSi肖特基二极管的燃料电池型酒精蒸汽传感器。这种结构在室温下产生类似燃料电池的短路电流,而不需要任何外部电源。采用两种不同形态的PS层制作传感器,并研究了其对酒精蒸汽灵敏度的影响。在50-350 ppm范围内使用四种不同醇(甲醇、乙醇、2-丙醇和丁醇)进行酒精蒸气测试的装置检测到所有具有不同短路电流变化的醇。我们的传感器,被确定对最低碳链的甲醇具有最高的灵敏度,根据碳链长度降低其灵敏度。虽然两种PS结构的二极管的势垒高度随着甲醇蒸气浓度的增加而线性降低,但在具有较少海绵状峰面积的PS层状器件中,反向偏置击穿电压发生了向较低电压的转变。当对PS层的形态、光学和结构特征进行综合考察时,发现在初始条件下,形态特性对二极管参数起决定性作用,并且这些参数受到不同水平的酒精蒸气的影响,并且具有相似的关系。在室温和常压下,传感器在甲醇蒸气(50-350 ppm)中产生的短路电流取决于酒精蒸气浓度,在1.00和150 nA.cm - 2之间变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Porous silicon based fuel cell type alcohol vapor sensor
In this study, fuel cell type alcohol vapor sensors based on Silver/Porous silicon/nSi Schottky diodes are presented for the first time in the literature. The structures produce fuel cell-like short circuit current with alcohol vapor at room temperature without requiring any external power source. The sensors were produced with PS layers with two different morphologies and their effects on alcohol vapor sensitivity were investigated. It was determined that the devices subjected to alcohol vapor tests using four different alcohols (methanol, ethanol, 2-propanol and butanol) in the range of 50–350 ppm detected all alcohols with different short circuit current changes. Our sensors, which were determined to have the highest sensitivity to methanol with the lowest carbon chain, decrease their sensitivity depending on the carbon chain length. While the barrier height of the diodes for both PS structures decreases linearly with increasing methanol vapor concentration, a shift towards lower voltages occurred in the reverse bias breakdown voltages in the PS layered device with less sponge-like peak areas. When the morphological, optical and structural characterizations of the PS layers were examined together, it was seen that the morphological properties were decisive for the diode parameters at the initial conditions and that these parameters were affected by alcohol vapor at different levels and with similar relationships. The short circuit current created by the sensors in methanol vapor (50–350 ppm) at room temperature and atmospheric pressure, depending on the alcohol vapor concentration, varied between 1.00 and 150 nA.cm−2.
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来源期刊
Sensors and Actuators A-physical
Sensors and Actuators A-physical 工程技术-工程:电子与电气
CiteScore
8.10
自引率
6.50%
发文量
630
审稿时长
49 days
期刊介绍: Sensors and Actuators A: Physical brings together multidisciplinary interests in one journal entirely devoted to disseminating information on all aspects of research and development of solid-state devices for transducing physical signals. Sensors and Actuators A: Physical regularly publishes original papers, letters to the Editors and from time to time invited review articles within the following device areas: • Fundamentals and Physics, such as: classification of effects, physical effects, measurement theory, modelling of sensors, measurement standards, measurement errors, units and constants, time and frequency measurement. Modeling papers should bring new modeling techniques to the field and be supported by experimental results. • Materials and their Processing, such as: piezoelectric materials, polymers, metal oxides, III-V and II-VI semiconductors, thick and thin films, optical glass fibres, amorphous, polycrystalline and monocrystalline silicon. • Optoelectronic sensors, such as: photovoltaic diodes, photoconductors, photodiodes, phototransistors, positron-sensitive photodetectors, optoisolators, photodiode arrays, charge-coupled devices, light-emitting diodes, injection lasers and liquid-crystal displays. • Mechanical sensors, such as: metallic, thin-film and semiconductor strain gauges, diffused silicon pressure sensors, silicon accelerometers, solid-state displacement transducers, piezo junction devices, piezoelectric field-effect transducers (PiFETs), tunnel-diode strain sensors, surface acoustic wave devices, silicon micromechanical switches, solid-state flow meters and electronic flow controllers. Etc...
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