POROUS SILICON NANOSYSTEMS FOR ETHANOL SENSOR

I. Olenych, L. Monastyrskii
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引用次数: 1

Abstract

Sensory elements based on hybrid films containing porous silicon and reduced graphene oxide nanostructures have been created. A decrease in electrical resistance and an increase in the capacitance of sensor elements in the AC mode due to the adsorption of ethanol molecules have been registered. To assess the sensory properties of hybrid films, the concentration dependences of the adsorption ability in the 0–4.5% range were determined and the dynamic characteristics of ethanol sensors based on them were studied. It was found that sensor films with different ratios of porous silicon and reduced graphene oxide nanoparticles have the maximum sensitivity to ethanol in different concentration ranges. The functional properties of hybrid films can be controlled by changing the proportions of their components. The reaction time of sensory elements to changes in the concentration of ethanol molecules is 40–50 s. The obtained results expand the perspective of the application of nanosystems based on porous silicon in sensor devices.
乙醇传感器用多孔硅纳米系统
基于含有多孔硅和还原氧化石墨烯纳米结构的杂化膜的传感元件已经被创造出来。在交流模式下,由于乙醇分子的吸附,传感器元件的电阻降低,电容增加。为了评估混合膜的传感性能,测定了0-4.5%范围内乙醇吸附能力的浓度依赖性,并基于此研究了乙醇传感器的动态特性。研究发现,不同比例的多孔硅和还原氧化石墨烯纳米颗粒的传感器膜对不同浓度范围内的乙醇具有最大的灵敏度。杂化膜的功能特性可以通过改变其组分的比例来控制。感觉元件对乙醇分子浓度变化的反应时间为40 ~ 50 s。所得结果拓展了基于多孔硅的纳米系统在传感器器件中的应用前景。
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