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高锰酸钾的剂量计型 NOx 传感特性及其在程序升温脱附过程中的电导率。

Dosimeter-type NOx sensing properties of KMnO4 and its electrical conductivity during temperature programmed desorption.

机构信息

Zentrum für Energietechnik, Bayreuth Engine Research Center (BERC), Department of Functional Materials, University of Bayreuth, 95440 Bayreuth, Germany.

出版信息

Sensors (Basel). 2013 Apr 2;13(4):4428-49. doi: 10.3390/s130404428.

Abstract

An impedimetric NOx dosimeter based on the NOx sorption material KMnO4 is proposed. In addition to its application as a low level NOx dosimeter, KMnO4 shows potential as a precious metal free lean NOx trap material (LNT) for NOx storage catalysts (NSC) enabling electrical in-situ diagnostics. With this dosimeter, low levels of NO and NO2 exposure can be detected electrically as instantaneous values at 380 °C by progressive NOx accumulation in the KMnO4 based sensitive layer. The linear NOx sensing characteristics are recovered periodically by heating to 650 °C or switching to rich atmospheres. Further insight into the NOx sorption-dependent conductivity of the KMnO4-based material is obtained by the novel eTPD method that combines electrical characterization with classical temperature programmed desorption (TPD). The NOx loading amount increases proportionally to the NOx exposure time at sorption temperature. The cumulated NOx exposure, as well as the corresponding NOx loading state, can be detected linearly by electrical means in two modes: (1) time-continuously during the sorption interval including NOx concentration information from the signal derivative or (2) during the short-term thermal NOx release.

摘要

提出了一种基于 NOx 吸附材料 KMnO4 的阻抗式 NOx 剂量计。除了作为低水平 NOx 剂量计的应用外,KMnO4 还显示出作为无贵金属的稀燃 NOx 捕集材料(LNT)的潜力,可用于 NOx 存储催化剂(NSC),实现电原位诊断。使用这种剂量计,可以通过在 KMnO4 基敏感层中逐渐积累 NOx,在 380°C 下以瞬时值的形式检测到低水平的 NO 和 NO2 暴露。通过加热至 650°C 或切换至富氧环境,可以周期性地恢复线性 NOx 传感特性。通过将电特性与经典的程序升温脱附(TPD)相结合的新型 eTPD 方法,可以进一步了解 KMnO4 基材料的 NOx 吸附相关电导率。NOx 负载量与吸附温度下的 NOx 暴露时间成正比。通过电方式可以以两种模式线性检测累积的 NOx 暴露量以及相应的 NOx 加载状态:(1)在吸附间隔期间连续进行,包括信号导数中的 NOx 浓度信息,或(2)在短期热 NOx 释放期间进行。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f38/3673092/9be28b60d3cc/sensors-13-04428f1.jpg

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