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碱金属掺杂 3DOMWO3 的结构与电子工程学用于改善 NO2 传感性能。

Structural and electronic engineering of 3DOM WO3 by alkali metal doping for improved NO2 sensing performance.

机构信息

State Key Laboratory of Chemical Resources, Beijing University of Chemical Technology, Beijing 100029, China.

出版信息

Nanoscale. 2016 May 19;8(20):10622-31. doi: 10.1039/c6nr00858e.

Abstract

Novel alkali metal doped 3DOM WO3 materials were prepared using a simple colloidal crystal template method. Raman, XRD, SEM, TEM, XPS, PL, Hall and UV-Vis techniques were used to characterize the structural and electronic properties of all the products, while the corresponding sensing performances targeting ppb level NO2 were determined at different working temperatures. For the overall goal of structural and electronic engineering, the co-effect of structural and electronic properties on the improved NO2 sensing performance of alkali metal doped 3DOM WO3 was studied. The test results showed that the gas sensing properties of 3DOM WO3/Li improved the most, with the fast response-recovery time and excellent selectivity. More importantly, the response of 3DOM WO3/Li to 500 ppb NO2 was up to 55 at room temperature (25 °C). The especially high response to ppb level NO2 at room temperature (25 °C) in this work has a very important practical significance. The best sensing performance of 3DOM WO3/Li could be ascribed to the most structure defects and the highest carrier mobility. And the possible gas sensing mechanism based on the model of the depletion layer was proposed to demonstrate that both structural and electronic properties are responsible for the NO2 sensing behavior.

摘要

采用简单的胶体晶体模板法制备了新型碱金属掺杂的 3DOM WO3 材料。采用拉曼、XRD、SEM、TEM、XPS、PL、霍尔和紫外-可见技术对所有产物的结构和电子性能进行了表征,同时在不同工作温度下测定了针对 ppb 级 NO2 的相应传感性能。为了实现结构和电子工程的总体目标,研究了结构和电子性能对碱金属掺杂的 3DOM WO3 改善 NO2 传感性能的协同作用。测试结果表明,3DOM WO3/Li 的气敏性能提高最多,具有快速的响应-恢复时间和优异的选择性。更重要的是,3DOM WO3/Li 对 500 ppb NO2 的响应在室温(25°C)下高达 55。本工作中在室温(25°C)下对 ppb 级 NO2 具有特别高的响应具有非常重要的实际意义。3DOM WO3/Li 的最佳传感性能可归因于最多的结构缺陷和最高的载流子迁移率。并提出了基于耗尽层模型的可能的气体传感机制,以证明结构和电子性能都对 NO2 传感行为负责。

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