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首页> 外文期刊>ACS Omega >Ethanol Gas Sensing by a Zn-Terminated ZnO(0001) Bulk Single-Crystalline Substrate
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Ethanol Gas Sensing by a Zn-Terminated ZnO(0001) Bulk Single-Crystalline Substrate

机译:通过Zn封端的ZnO(0001)批量单晶基材对乙醇气体感测

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Metal oxide semiconductor gas sensors have been widely studied for the selective detection of various gases with trace concentrations. The identification of the reaction scheme governing the gas sensing response is crucial for further development; however, the mechanism of ethanol (EtOH) gas sensing by ZnO is still controversial despite being one of the most intensively studied target gas and sensing material combinations. In this work, for the first time, the detailed mechanism of EtOH sensing by ZnO is studied by using a bulk single-crystalline substrate, which has a well-defined stoichiometry and atomic arrangement, as the sensing material. The sensing response is substantial on the ZnO substrate even with a millimeter-size thickness, and it becomes larger with resistance of the substrate. The large sensing response is described in terms of the adsorption/desorption of the oxygen species on the substrate surface, namely, oxygen ionosorption. The valence state of the ionosorbed oxygen involved in EtOH sensing is identified to be O~(2–) regardless of the temperature. The increase in the sensing response with the temperature is attributed to the enhanced oxidation rate of the EtOH molecule on the surface as analyzed by pulsed-jet temperature-programmed desorption mass spectrometry, which has been newly developed for analyzing surface reactions in simulated working conditions.
机译:已经广泛研究了金属氧化物半导体气体传感器,用于选择性地检测痕量浓度的各种气体。鉴定控制气体传感响应的反应方案对于进一步发展至关重要;然而,ZnO的乙醇(EtOH)气体感应的机制仍然是争议的,尽管是最强烈地研究的目标气体和传感材料组合之一。在这项工作中,首次使用ZnO的EtOH感测的详细机制是通过使用具有明确定义的化学计量和原子布置的散装单晶基板来研究ZnO的详细机制,其作为传感材料。感测响应即使具有毫米尺寸的厚度,感测响应在ZnO衬底上是大大的,并且由于基板的电阻而变大。就基材表面上的氧物质的吸附/解吸而言,描述了大的传感响应,即氧离子吸收。鉴定EtOH感测中涉及的离子吸附氧的价态是o〜(2-),无论温度如何。随着脉冲喷射温度编程的解吸质谱法分析的分析,对表面的感测响应的增加归因于表面上的EtOH分子的增强氧化速率,这已被新开发用于分析模拟工作条件下的表面反应。

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