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Enhanced sensing performance of ZnO nanostructures-based gas sensors: A review

机译:增强ZnO纳米结构的气体传感器的感测性能:综述

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Metal oxide semiconductors-based gas sensors have been extensively explored due to their high sensing response, cost-effectivity, long-term stability, and simple fabrication. However, their utilization at low operating temperature is still challenging. Thus, reduction in power consumption is highly essential for long-term usage of gas sensors. ZnO nanostructures-based gas sensors are one of the most eligible candidates where a real-time detection of explosive and toxic gases is needed. On this subject, numerous efforts have been made to improve the sensing response at reduced working temperature with the assistance of various methods. In this report, several techniques related to the synthesis of ZnO nanostructures and their efficient performance in sensing are reviewed. The report primarily focuses on different means of improving the sensing properties, such as functionalization of noble metal nanoparticles, doping of metals, inclusion of carbonaceous nanomaterials, using nanocomposites of different MO x , UV activation, and post-treatment method of high-energy irradiation on ZnO nanostructures, with their possible sensing mechanisms. This study will therefore shed light on future proposals of ZnO-based gas sensors showing high sensitivity even at low operating temperature.
机译:由于它们的高感测响应,成本效率,长期稳定性和简单的制造,金属氧化物半导体的气体传感器已被广泛探索。然而,它们在低操作温度下的利用仍然挑战。因此,功耗的降低对于气体传感器的长期使用非常重要。基于ZnO纳米结构的气体传感器是最符合条件的候选人之一,需要实时检测炸药和有毒气体。在这个问题上,通过各种方法的帮助,已经使许多努力改善了减少的工作温度下的传感响应。在本报告中,综述了若干与合成ZnO纳米结构的技术及其在传感中的有效性能。该报告主要专注于改善感测性能的不同手段,例如贵金属纳米粒子的官能化,金属掺杂,使用不同MO X,UV激活和高能照射后处理方法的纳米复合材料,包括纳米复合材料在ZnO纳米结构上,具有可能的感测机制。因此,这项研究将在未来的基于ZnO的气体传感器的建议上阐明,即使在低工作温度下也表现出高灵敏度。

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