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首页> 外文期刊>ACS applied materials & interfaces >Metal Oxide Gas Sensors with Au Nanocluster Catalytic Overlayer: Toward Tuning Gas Selectivity and Response Using a Novel Bilayer Sensor Design
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Metal Oxide Gas Sensors with Au Nanocluster Catalytic Overlayer: Toward Tuning Gas Selectivity and Response Using a Novel Bilayer Sensor Design

机译:具有AU纳米光栅催化叠层的金属氧化物气体传感器:使用新颖的双层传感器设计调整气体选择性和反应

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Noble metals or oxide catalysts have traditionally been loaded or doped to enhance the gas sensing properties of oxide semiconductor chemiresistors. However, the selective detection of various chemicals for a wide range of new applications remains a challenging problem. In this paper, we propose a novel bilayer design with an oxide chemiresistor sensing layer and nanoscale catalytic Au overlayer to provide high controllability for gas sensing characteristics. The Au nanocluster overlayer significantly enhances the methylbenzene response of a SnO2 thick film sensor by reforming gases into more reactive species and suppresses the responses to reactive interference gases through oxidative filtering, leading to excellent selectivity to methylbenzene. Gas sensing characteristics can be tuned by controlling the morphology, amount, and number density of Au nanoclusters through the variation in the Au coating thickness (0.5-3 nm) and thermal annealing conditions (0.5-4 h at 550 degrees C). Furthermore, the general validity of the proposed Au-coated bilayer sensor design was confirmed through the enhancement of response and selectivity toward methylbenzenes by coating Au nanoclusters onto ZnO and Co3O4 sensors. The sensing mechanism, advantages, and potential applications of bilayer sensors are discussed from the perspective of the separation of sensing and catalytic reactions, as well as the reforming and oxidation of analyte gases in association with the configuration of the sensing layer and Au catalytic overlayer.
机译:传统上装载或掺杂贵金属或氧化物催化剂以增强氧化物半导体切片的气体传感性能。然而,各种新应用的各种化学品的选择性检测仍然是一个具有挑战性的问题。在本文中,我们提出了一种新颖的双层设计,具有氧化物化学晶体传感层和纳米级催化AU覆盖器,以提供高可控性的气体传感特性。 Au纳米簇重叠层通过将气体重整为更多的反应性物质而显着提高了SnO2厚膜传感器的甲基苯响应,并通过氧化过滤抑制对反应性干涉气体的反应,导致对甲基苯的优异选择性。可以通过通过Au涂层厚度(0.5-3nm)和热退火条件(0.5-4小时在550℃)的变化来调节气体传感特性。此外,通过涂覆Au纳米能器在ZnO和CO3O4传感器上,通过增强响应和选择性来确认所提出的Au涂覆的双层传感器设计的一般有效性。双层传感器的感测机理,优点和潜在应用是从感测和催化反应的分离的看法讨论的,以及与传感层和Au催化覆盖层的构造结合的分析物气体的重整和氧化。

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