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Selective ethanol gas sensing performance of flower-shaped CuO composed of thin nanoplates

机译:选择性乙醇气体感应性能,由薄纳米板组成的花形CUO

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摘要

Ethanol is one of the volatile organic compounds as well as organic pollutants that is essentially to be monitored using high response sensors. Semiconducting metal oxide nanostructures can be the potential sensor material for high-performance ethanol sensing application. Herein, we present the fabrication and characterization of highly sensitive and selective ethanol gas sensor based on flower-shaped CuO composed of thin nanoplates synthesized by facile hydrothermal process. The prepared flower-shaped CuO was examined by various techniques viz FESEM, XRD, EDS, elemental mapping, HRTEM, SAED, UV-visible spectroscopy, FTIR spectroscopy, and Raman spectroscopy, which confirmed the high-density growth, monoclinic crystal structure, and optical band gap of ~2.5 eV. The fabricated resistive sensor device based on flower-shaped CuO, at optimum experimental conditions, i.e., 250 °C, 100 ppm ethanol concentration, exhibited a high sensing response of 241%, while, at 10 ppm of ethanol concentration, the response was observed to be 5%. The transient responses as well as the stability of the sensor were analyzed and reported here. The selectivity of CuO sensor device was studied for NO_2, CO_2, CO, and CH_4 gases and remarkably it was seen that the developed gas sensor devices demonstrated outstanding selectivity toward ethanol gas. Finally, the gas response mechanism of the fabricated resistive ethanol gas sensor was explained on the basis of the ionosorption model.
机译:乙醇是挥发性有机化合物之一以及基本上使用高响应传感器监测的有机污染物。半导体金属氧化物纳米结构可以是用于高性能乙醇传感施用的潜在传感器材料。在此,我们介绍了基于由薄纳米板组成的薄纳米层的高敏感和选择性乙醇气体传感器的制造和表征,其由容易水热法合成的薄纳米板组成。通过各种技术Viz FeSem,XRD,EDS,元素映射,HRTEM,SAED,UV可见光谱,FTIR光谱和拉曼光谱检查制备的花形CUO,证实了高密度生长,单胶晶结构和光带隙〜2.5 eV。基于花形CuO的制造电阻传感器装置,即在最佳实验条件下,即250℃,100ppm乙醇浓度,表现出241%的高感测响应,而在10ppm的乙醇浓度下,观察到响应为5%。在此分析并报告传感器的瞬态反应以及传感器的稳定性。 CUO传感器装置的选择性用于NO_2,CO_2,CO和CH_4气体,显着看出,发达的气体传感器装置对乙醇气体的选择性表现出了出色的选择性。最后,基于离子吸收模型解释了制造的电阻乙醇气体传感器的气体响应机理。

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  • 来源
    《Journal of materials science》 |2021年第14期|18565-18579|共15页
  • 作者单位

    Department of Chemistry Faculty of Science and Arts Najran University P.O. Box 1988 Najran 11001 Kingdom of Saudi Arabia Promising Centre for Sensors and Electronic Devices (PCSED) Najran University P.O. Box 1988 Najran 11001 Kingdom of Saudi Arabia;

    Department of Chemistry Faculty of Science and Arts Najran University P.O. Box 1988 Najran 11001 Kingdom of Saudi Arabia Promising Centre for Sensors and Electronic Devices (PCSED) Najran University P.O. Box 1988 Najran 11001 Kingdom of Saudi Arabia;

    Promising Centre for Sensors and Electronic Devices (PCSED) Najran University P.O. Box 1988 Najran 11001 Kingdom of Saudi Arabia Department of Electrical Engineering Faculty of Engineering Najran University Najran 11001 Kingdom of Saudi Arabia Solar Energy Research Center School of Semiconductor and Chemical Engineering Jeoonbuk National University 567 Baekjedaero Deokjin-gu Jeonju-si Jeollabuk-do 54896 Republic of Korea;

    National Institute of Technology Nagaland Dimapur India;

    Department of Electrical Engineering Faculty of Engineering Najran University Najran 11001 Kingdom of Saudi Arabia Promising Centre for Sensors and Electronic Devices (PCSED) Najran University P.O. Box 1988 Najran 11001 Kingdom of Saudi Arabia Department of Physics Faculty of Science and Arts Najran University P.O. Box 1988 Najran 11001 Kingdom of Saudi Arabia;

    Promising Centre for Sensors and Electronic Devices (PCSED) Najran University P.O. Box 1988 Najran 11001 Kingdom of Saudi Arabia Empty Quarter Research Unit Department of Chemistry Faculty of Science and Arts Sharourah Branch Najran University Sharurah Kingdom of Saudi Arabia;

    Department of Materials Science University of Patras Rio 26504 Patras Greece;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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