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Interface Bonds Determined Gas-Sensing of SnO2-SnS2 Hybrids to Ammonia at Room Temperature

机译:在室温下,SnO2-SnS2杂化物对氨的界面键决定了气体传感

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Unique gas-sensing properties of semiconducting hybrids that are mainly related to the heterogeneous interfaces have been considerably reported. However, the effect of heterogeneous interfaces on the gas-sensing properties is still unclear, which hinders the development of semiconducting hybrids in gas-sensing applications. In this work, SnO2-SnS2 hybrids were synthesized by the oxidation of SnS2 at 300 degrees C with different times and exhibited high response to NH3 at room temperature. With the increasing oxidation time, the relative concentration of interfacial Sn bonds, O-Sn-S, among the total Sn species of the SnO2-SnS2 hybrids increased first and then decreased. Interestingly, it can be found that the response of SnO2-SnS2 hybrids to NH3 at room temperature exhibited a strong dependence on the interfacial bonds. With more chemical bonds at the interface, the lower interface state density and the higher charge density of SnO2 led to more chemisorbed oxygen, resulting in a high response to NH3. Our results revealed the real roles of the heterogeneous interface in gas-sensing properties of hybrids and the importance of the interfacial bonds, which offers guidance for the material design to develop hybrid-based sensors.
机译:已经大量报道了主要与异质界面有关的半导体杂化物的独特气敏特性。然而,异质界面对气敏特性的影响仍不清楚,这阻碍了在气敏应用中半导体混合材料的发展。在这项工作中,SnO2-SnS2杂化体是通过在300摄氏度下不同时间氧化SnS2合成的,并且在室温下对NH3表现出高响应。随着氧化时间的增加,SnO2-SnS2杂化物的总Sn种类中界面Sn键O-Sn-S的相对浓度先升高后降低。有趣的是,可以发现SnO2-SnS2杂化物在室温下对NH3的响应表现出对界面键的强烈依赖性。界面处的化学键越多,SnO2的界面态密度越低和电荷密度越高,则化学吸附的氧就越多,从而导致对NH3的高响应。我们的研究结果揭示了异质界面在混合气体传感特性中的真正作用以及界面键的重要性,这为开发基于混合传感器的材料设计提供了指导。

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