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首页> 外文期刊>ACS Omega >Underpinning the Interaction between NO2 and CuO Nanoplatelets at Room Temperature by Tailoring Synthesis Reaction Base and Time
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Underpinning the Interaction between NO2 and CuO Nanoplatelets at Room Temperature by Tailoring Synthesis Reaction Base and Time

机译:通过定制反应的碱和时间来支撑室温下NO2和CuO纳米片的相互作用。

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An approach to tailor the morphology and sensing characteristics of CuO nanoplatelets for selective detection of NO2 gas is of great significance and an important step toward achieving the challenge of improving air quality and in assuring the safety of mining operations. As a result, in this study, we report on the NO2 room temperature gas-sensing characteristics of CuO nanoplatelets and the underlying mechanism toward the gas-sensing performance by altering the synthesis reaction base and time. High sensitivity of ~40 ppm–1 to NO2 gas at room temperature has been realized for gas sensors fabricated from CuO nanoplatelets, using NaOH as base for reaction times of 45 and 60 min, respectively at 75 °C. In both cases, the crystallite size, surface area, and hole concentration of the respective materials influenced the selectivity and sensitivity of the NO2 gas sensors. The mechanism underpinning the superior NO2 gas sensing are thoroughly discussed in terms of the crystallite size, hole concentration, and surface area as active sites for gas adsorption.
机译:定制CuO纳米片的形态和传感特性以选择性检测NO2气体的方法具有重要意义,并且是迈向改善空气质量和确保采矿作业安全的挑战的重要一步。结果,在这项研究中,我们报告了通过改变合成反应的基础和时间,CuO纳米片的NO2室温气敏特性及其对气敏性能的潜在机理。对于使用CuO纳米片制备的气体传感器,使用NaOH作为碱,在75°C下的反应时间分别为45分钟和60分钟,室温下对NO2气体的灵敏度高达〜40 ppm-1。在两种情况下,相应材料的微晶尺寸,表面积和空穴浓度都会影响NO2气体传感器的选择性和灵敏度。就微晶尺寸,空穴浓度和表面积作为吸附气体的活性位点而言,彻底讨论了支持卓越的NO2气体传感的机理。

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