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Zinc oxide-based direct thermoelectric gas sensor for the detection of volatile organic compounds in air

机译:基于氧化锌的直接热电气体传感器,用于检测空气中的挥发性有机化合物

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摘要

Using thermoelectricity as a platform for sensor design and fabrication commercially and historically precedes its power generation aspect, but recent advancements in science and engineering of materials have failed to elevate this platform as the researchers mainly pursue higher figure of merit (zT) materials. It has been shown that thermoelectricity in polycrystalline semiconductors is partly related to the grain boundary effects, and the profound contribution of grain boundaries to the Seebeck voltage (SV) generation has been demonstrated. It immediately follows that all grain boundary-related effects should be detectable via SV measurement, as well. Here, we report the variations of the SV generated at the presence of a constant temperature gradient along a ZnO pellet with respect to the concentration of the various volatile organic compounds (VOCs) in the surrounding atmosphere. The presence of VOCs reversibly reduces the SV generated along the sample. Similar to the case of chemoresistivity, the recorded chemo-thermoelectric responses obey the power law; providing another reason for the common origin of these two apparently distinct phenomena.
机译:在商业和历史上,将热电用作传感器设计和制造的平台先于其发电方面,但是材料科学和工程学的最新进展未能提升该平台,因为研究人员主要追求更高的品质因数(zT)材料。已经表明,多晶半导体中的热电部分与晶界效应有关,并且已经证明了晶界对塞贝克电压(SV)产生的重要贡献。随之而来的是,所有晶界相关的影响也应该通过SV测量来检测。在这里,我们报告了在存在恒定温度梯度时,沿着ZnO颗粒相对于周围大气中各种挥发性有机化合物(VOC)的浓度产生的SV的变化。 VOC的存在可逆地减少了沿样品产生的SV。类似于化学电阻率的情况,记录的化学-热电响应遵守幂定律。为这两个明显不同的现象的共同起源提供了另一个原因。

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