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拓宽基于锂石榴石的传感器可追踪的环境与健康污染物范围。

Widening the Range of Trackable Environmental and Health Pollutants for Li-Garnet-Based Sensors.

作者信息

Balaish Moran, Rupp Jennifer L M

机构信息

Department of Materials Science and Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA, 02139, USA.

Department of Electrical Engineering and Computer Science, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA, 02139, USA.

出版信息

Adv Mater. 2021 May;33(20):e2100314. doi: 10.1002/adma.202100314. Epub 2021 Apr 8.

Abstract

Classic chemical sensors integrated in phones, vehicles, and industrial plants monitor the levels of humidity or carbonaceous/oxygen species to track environmental changes. Current projections for the next two decades indicate the strong need to increase the ability of sensors to sense a wider range of chemicals for future electronics not only to continue monitoring environmental changes but also to ensure the health and safety of humans. To achieve this goal, more chemical sensing principles and hardware must be developed. Here, a proof-of-principle for the specific electrochemistry, material selection, and design of a Li-garnet Li La Zr O (LLZO)-based electrochemical sensor is provided, targeting the highly corrosive environmental pollutant sulfur dioxide (SO ). This work extends the prime use of LLZO as a battery component as well as the range of trackable pollutants for potential future sensor-noses. Novel composite sensing-electrode designs using LLZO-based porous scaffolds are employed to define a high number of reaction sites, and successfully track SO at the dangerous levels of 0-10 ppm with close-to-theoretical SO sensitivity. The insights on the sensing electrochemistry, phase stability and sensing electrode/Li electrolyte structures provide first guidelines for future Li-garnet sensors to monitor a wider range of environmental pollutants and toxins.

摘要

集成在手机、车辆和工业工厂中的传统化学传感器可监测湿度或含碳/氧物质的水平,以跟踪环境变化。对未来二十年的当前预测表明,迫切需要提高传感器检测更广泛化学物质的能力,以便未来的电子产品不仅能继续监测环境变化,还能确保人类的健康和安全。为实现这一目标,必须开发更多的化学传感原理和硬件。在此,提供了一种基于锂石榴石Li La Zr O(LLZO)的电化学传感器的特定电化学、材料选择和设计的原理验证,目标是针对高腐蚀性环境污染物二氧化硫(SO)。这项工作扩展了LLZO作为电池组件的主要用途以及潜在未来传感鼻可追踪污染物的范围。采用基于LLZO的多孔支架的新型复合传感电极设计来定义大量反应位点,并成功地在0-10 ppm的危险水平下追踪SO,具有接近理论的SO灵敏度。对传感电化学、相稳定性和传感电极/锂电解质结构的见解为未来锂石榴石传感器监测更广泛的环境污染物和毒素提供了首要指导方针。

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