Incheon National University Researchers Push the Limits of Gas Sensing Technology
They propose an innovative approach for creating organic–inorganic hybrid gas sensors which achieve impressive durability, selectivity, and sensitivity
To help with this, many types of selective gas sensors have been developed using different organic and inorganic materials. Some of them, such as gas chromatography sensors or electrochemical gas sensors, are highly sophisticated, yet expensive and bulky. On the other hand, resistive and capacitive sensors based on semiconductors seem to be a promising alternative, with organic semiconductor (OSC) gas sensors representing a low-cost and flexible option. Nonetheless, these gas sensors still face some performance issues, including low sensitivity and poor stability for sensor applications.
Against this backdrop, a team of researchers from
To this end, the team proposed a hybrid organic–inorganic gas sensor design based on the combination of a conductive organic polymer and perovskite nanocrystals. They incorporated a CsPbBr3 perovskite into a conductive polymer matrix to enhance its gas sensing performance while maintaining sensing speed. They further modified the surface of the perovskite nanocrystals with zwitterionic polymer ligands. Once hydrated, these ligands greatly improved the affinity of the sensor for NO2 gas molecules, thus resulting in improved absorption.
Further experiments revealed that the proposed design outperformed conventional sensors in terms of chemical sensitivity to NO2. Moreover, their system was highly resistant to oxidation, thanks to the protective action of the perovskite nanocrystals. Thus, it could withstand storage in ambient conditions for several weeks, showcasing impressive durability and higher potential for long-term installation. "Our findings suggest a new approach for the development and design of gas sensors based on various material composites to achieve both superior sensitivity and selectivity," highlights
Given that OSCs can be designed to be flexible, lightweight, and relatively inexpensive when mass produced, they could pave the way to the widespread adoption of gas sensors in various contexts. "Beyond specific settings like industrial sites, OSC gas sensors could enable individuals to readily access information about air pollution levels through commonplace devices like smartwatches," explains
Here's hoping that gas sensing technologies continue to evolve so that harmful compounds never go unnoticed!
Reference
Title of original paper: Polymeric interfacial engineering approach to perovskite-functionalized organic transistor-type gas sensors
Journal: Chemical Engineering Journal
DOI: https://doi.org/10.1016/j.cej.2023.145482
*Corresponding authors' emails: [email protected] (
About Incheon National University
Website: http://www.inu.ac.kr/mbshome/mbs/inuengl/index.html
Contact:
82 32 835 9326
368289@email4pr.com
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SOURCE Incheon National University
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