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Hydrogen Gas Sensing Performances of p-Type Mn3O4 Nanosystems: The Role of Built-in Mn3O4/Ag and Mn3O4/SnO2 Junctions

机译:P型MN3O4纳米系统的氢气感测性能:内置Mn3O4 / Ag和Mn3O4 / SnO2结的作用

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摘要

Among oxide semiconductors, p-type Mn3O4 systems have been exploited in chemo-resistive sensors for various analytes, but their use in the detection of H2, an important, though flammable, energy vector, has been scarcely investigated. Herein, we report for the first time on the plasma assisted-chemical vapor deposition (PA-CVD) of Mn3O4 nanomaterials, and on their on-top functionalization with Ag and SnO2 by radio frequency (RF)-sputtering, followed by air annealing. The obtained Mn3O4-Ag and Mn3O4-SnO2 nanocomposites were characterized by the occurrence of phase-pure tetragonal α-Mn3O4 (hausmannite) and a controlled Ag and SnO2 dispersion. The system functional properties were tested towards H2 sensing, yielding detection limits of 18 and 11 ppm for Mn3O4-Ag and Mn3O4-SnO2 specimens, three orders of magnitude lower than the H2 explosion threshold. These performances were accompanied by responses up to 25% to 500 ppm H2 at 200 °C, superior to bare Mn3O4, and good selectivity against CH4 and CO2 as potential interferents. A rationale for the observed behavior, based upon the concurrence of built-in Schottky (Mn3O4/Ag) and p-n junctions (Mn3O4/SnO2), and of a direct chemical interplay between the system components, is proposed to discuss the observed activity enhancement, which paves the way to the development of gas monitoring equipments for safety end-uses.
机译:在氧化物半导体中,P型MN3O4系统已被利用在各种分析物中的化学电阻传感器中,但它们在检测H2的检测中,这是一种重要的,易燃能量载体,这一切都几乎没有研究过。在此,我们首次报告Mn3O4纳米材料的血浆辅助化学气相沉积(PA-CVD),以及通过射频(RF) - 晶体与Ag和SnO2的逆端官能化,其次是空气退火。通过发生相纯四方α-Mn3O4(Hausmannite)和受控Ag和SnO2分散体,表征所得Mn 3 O 4 -Ag和Mn 3 O 4-SnO2纳米复合材料。对MN3O4-Ag和Mn3O4-SnO2标本的18至11ppm的检测限,朝向H 2感测,对MN3O4-AG和MN3O4-SnO2标本的三个数量级低,产生系统功能性质,比H2爆炸阈值低三个数量级。这些性能伴随着高达25%至500ppm H 2的反应,在200℃下,优于裸MN3O4,并且对CH4和CO2的良好选择性是潜在的干扰。基于内置肖特基(MN3O4 / Ag)和PN结(MN3O4 / SnO2)和系统组分之间的直接化学相互作用的基于所观察到的行为的基本原理被提出讨论观察到的活动增强,这为安全结束用途铺平了天然气监测设备的发展。

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