4.5 Review

Metal Oxide Semiconductor Sensors for Triethylamine Detection: Sensing Performance and Improvements

Journal

CHEMOSENSORS
Volume 10, Issue 6, Pages -

Publisher

MDPI
DOI: 10.3390/chemosensors10060231

Keywords

triethylamine; metal oxide semiconductor; sensing performance; morphology; new materials

Funding

  1. National Natural Science Foundation of China [62071112, 61833006, 62033002]
  2. Fundamental Research Funds for the Central Universities in China [N2201008]

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This review article highlights the importance of sensitive and accurate monitoring of triethylamine (TEA) and the application of metal oxide semiconductors (MOSs) in this field. The article summarizes the current measures to improve the sensing performance of TEA sensors, including optimization of material morphology, incorporation of other materials, development of new materials, application of advanced fabrication devices, and introduction of external stimulation. Prospects for using these methods to fabricate high-performance TEA gas sensors are discussed, along with the significance and research challenges in this emerging field.
Triethylamine (TEA) is an organic compound that is commonly used in industries, but its volatile, inflammable, corrosive, and toxic nature leads to explosions and tissue damage. A sensitive, accurate, and in situ monitoring of TEA is of great significance to production safety and human health. Metal oxide semiconductors (MOSs) are widely used as gas sensors for volatile organic compounds due to their high bandgap and unique microstructure. This review aims to provide insights into the further development of MOSs by generalizing existing MOSs for TEA detection and measures to improve their sensing performance. This review starts by proposing the basic gas-sensing characteristics of the sensor and two typical TEA sensing mechanisms. Then, recent developments to improve the sensing performance of TEA sensors are summarized from different aspects, such as the optimization of material morphology, the incorporation of other materials (metal elements, conducting polymers, etc.), the development of new materials (graphene, TMDs, etc.), the application of advanced fabrication devices, and the introduction of external stimulation. Finally, this review concludes with prospects for using the aforementioned methods in the fabrication of high-performance TEA gas sensors, as well as highlighting the significance and research challenges in this emerging field.

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