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Selective detection of CO at room temperature with CuO nanoplatelets sensor for indoor air quality monitoring manifested by crystallinity

机译:使用CuO纳米血小板传感器选择性检测室温下的CO,以监测结晶度来监测室内空气质量

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The fabrication of sensitive CO gas sensors with low ppm detection is very imperative for human health, since longer exposure to CO gas can lead to dizziness, loss of consciousness and vomiting, and in severe cases death. As a result, herein, we report on the CO room temperature gas sensing characteristics of CuO nanoplatelets based gas sensor synthesized using the hydrothermal method at 100 and 200 degrees C for various reaction times. A size-dependent contraction on the crystallite sizes, due to the decrease in platelet size, was observed for the CuO nanoplatelets grown at 200 degrees C, at various reaction times. The crystal quality and crystallinity improved for nanoplatelets prepared at 100 degrees C and decreased for those prepared at 200 degrees C at various reactions times. The CuO-B-1 based sensor prepared for 6 h at 200 degrees C demonstrated enhanced response (R-a-R-g/R-a = 15) and rapid response time (ca. 81 s) towards 20 ppm CO gas (in 35% relative humidity) at room temperature, pleasing multiple parameters required for a good sensor. The improved sensing performance for CuO-B-1 is justified by enhanced crystallinity, resulting from low resistivity and high carrier mobility, which resulted in a more pronounced change in sensor resistance compared to its counterparts. The higher stability for the CuO-B-1 based sensor in the presence of relative humidity makes it a suitable candidate for detection of CO in a normal environment. Furthermore, the possible sensing mechanism of the CuO-B-1 based sensor towards CO gas is discussed.
机译:制造低ppm检测灵敏度的CO气体传感器对于人类健康非常重要,因为长时间暴露于CO气体会导致头晕,意识丧失和呕吐,严重时甚至会导致死亡。结果,在本文中,我们报告了使用水热法在100和200摄氏度下针对各种反应时间合成的基于CuO纳米片基的气体传感器的CO室温气体传感特性。对于在200℃下生长的CuO纳米片,在不同的反应时间,由于血小板尺寸的减小,观察到了微晶尺寸的尺寸依赖性收缩。在各种反应时间下,在100摄氏度下制备的纳米片的晶体质量和结晶度提高,而在200摄氏度下制备的纳米片的晶体品质和结晶度降低。在200摄氏度下准备6小时的基于CuO-B-1的传感器在室温下表现出对20 ppm CO气体(相对湿度为35%)的增强响应(RaRg / Ra = 15)和快速响应时间(约81 s)。温度,令人愉悦的传感器需要多个参数。低电阻率和高载流子迁移率可提高结晶度,从而证明对CuO-B-1的改进的传感性能是合理的,与同类产品相比,CuO-B-1的传感电阻变化更为明显。在相对湿度下,基于CuO-B-1的传感器具有更高的稳定性,使其成为在正常环境中检测CO的合适候选者。此外,讨论了基于CuO-B-1的传感器对CO气体的可能的传感机制。

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