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具有非化学计量比 Co 富锌钴酸锌空心纳米球,用于 ppb 级别的高性能甲醛检测。

Nonstoichiometric Co-rich ZnCo2O4 Hollow Nanospheres for High Performance Formaldehyde Detection at ppb Levels.

机构信息

IT Convergence Technology Research Laboratory and Convergence Components & Materials Research Laboratory, Electronics and Telecommunications Research Institute , Daejeon 34129, Republic of Korea.

Department of Chemistry, Korea Advanced Institute of Science and Technology, and Center for Nanomaterials and Chemical Reactions, Institute for Basic Science (ibs) , Daejeon 34141, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2016 Feb 10;8(5):3233-40. doi: 10.1021/acsami.5b10862. Epub 2016 Jan 29.

Abstract

Since metal oxide semiconductors were investigated as chemiresistors, rapid advances have been reported in this field. However, better performance metrics are still required, such as higher sensitivity and selectivity levels for practical applications. To improve the sensing performance, we discuss an optimal composition of the active sensing material, nonstoichiometric Co-rich ZnCo2O4, prepared by the partial substitution of Co(2+) into Zn(2+) in Co3O4 without altering a hollow sphere morphology. Remarkably, this Co-rich ZnCo2O4 phase achieved detection limits for formaldehyde as low as 13 ppb in experimental measurements and 2 ppb in theory, which were the lowest values ever reported from actual measurements at a working temperature of 225 °C. It was also unprecedented that the selectivity for formaldehyde was greatly enhanced with respect to the selectivity levels against other volatile organic compounds (VOCs). These excellent sensing performances are due to the optimal composition of the Co-rich ZnCo2O4 material with a proper hole concentration and well-organized conductive network.

摘要

自从金属氧化物半导体被研究作为化学电阻器以来,该领域已经取得了快速的进展。然而,对于实际应用来说,仍然需要更好的性能指标,例如更高的灵敏度和选择性。为了提高传感性能,我们讨论了活性传感材料的最佳组成,即通过部分取代 Co3O4 中的 Co(2+)而不改变空心球形态的富 Co 的 ZnCo2O4。值得注意的是,这种富 Co 的 ZnCo2O4 相在实验测量中实现了对甲醛的检测限低至 13 ppb,在理论上低至 2 ppb,这是在 225°C 的工作温度下从实际测量中获得的最低值。此外,相对于其他挥发性有机化合物 (VOCs) 的选择性水平,富 Co 的 ZnCo2O4 对甲醛的选择性大大提高,这也是前所未有的。这些优异的传感性能归因于富 Co 的 ZnCo2O4 材料具有适当的空穴浓度和组织良好的导电网络的最佳组成。

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