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Integrated Strategy toward Self-Powering and Selectivity Tuning of Semiconductor Gas Sensors

机译:半导体气体传感器自供电和选择性调整的集成策略

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摘要

Inorganic conductometric gas sensors struggle to overcome limitations in high power consumption and poor selectivi-ty. Herein, recent advances in developing self-powered gas sensors with tunable selectivity are introduced. Alternative general approaches for powering gas sensors were realized via proper integration of complementary functionalities (namely; powering and sensing) in a singular heterostructure. These solar light driven gas sensors operating at room temperature without applying any additional external powering sources are comparatively discussed. The TYPE-1 gas sensor based on integration of pure inorganic interfaces (e.g. CdS/n-ZnO/p-Si) is capable of delivering a self-sustained sensing response, while it shows a non-selective interaction towards oxidizing and reducing gases. The structural and the optical merits of TYPE-1 sensor are investigated giving more insights into the role of light activation on the modu-lation of the self-powered sensing response. In the TYPE-2 sensor, the selectivity of inorganic materials is tailored through surface functionalization with self-assembled organic monolayers (SAMs). Such hybrid interfaces (e.g. SAMs/ZnO/p-Si) have specific surface interactions with target gases compared to the non-specific oxidation-reduction interactions governing the sensing mechanism of simple inorganic sensors. The theoretical modeling using density functional theory (DFT) has been used to simulate the sensing behavior of inorganic/organic/gas interfaces, revealing that the alignment of organic/gas frontier molecular orbitals with respect to the inorganic Fermi level is the key factor for tuning selectivity. These platforms open new avenues for developing advanced energy-neutral gas sensing devices and concepts.
机译:无机电导率气体传感器正努力克服高功耗和低选择性的局限性。在此,介绍了开发具有可调选择性的自供电气体传感器的最新进展。通过在单个异质结构中适当集成互补功能(即,供电和传感),实现了为气体传感器供电的替代通用方法。比较讨论了这些在室温下运行而无需施加任何外部电源的太阳能驱动气体传感器。基于纯无机界面(例如CdS / n-ZnO / p-Si)集成的TYPE-1气体传感器能够提供自持的传感响应,同时对氧化和还原气体表现出非选择性的相互作用。研究了TYPE-1传感器的结构和光学优点,从而使人们对光激活在自供电传感响应的调制中的作用有了更多的了解。在TYPE-2传感器中,无机材料的选择性是通过使用自组装有机单层(SAM)进行表面功能化来定制的。与支配简单无机传感器的感应机制的非特定氧化还原相互作用相比,此类混合界面(例如SAMs / ZnO / p-Si)与目标气体具有特定的表面相互作用。使用密度泛函理论(DFT)进行的理论建模已用于模拟无机/有机/气体界面的传感行为,表明有机/气体前沿分子轨道相对于无机费米能级的排列是调节的关键因素选择性。这些平台为开发先进的能量中性气体传感设备和概念开辟了新途径。

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