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Electron-Deficient Organic Molecules Based on B←N Unit: A N-Type Room-Temperature Chemiresistive Sensors with Moisture Resistance. | LitMetric

Electron-Deficient Organic Molecules Based on B←N Unit: A N-Type Room-Temperature Chemiresistive Sensors with Moisture Resistance.

Adv Sci (Weinh)

State Key Laboratory of Bio-fibers and Eco-textiles, Collaborative Innovation Center of Shandong Marine Biobased Fibers and Ecological Textiles, Institute of Marine Biobased Materials, College of Materials Science and Engineering, Qingdao University, Qingdao, 266071, P. R. China.

Published: December 2024

AI Article Synopsis

  • Organic molecules with customizable structures and high stability are promising for gas sensors, especially n-type molecules that outperform p-type in detecting reducing gases.
  • A new molecular design strategy utilizing A-D-π-D-A configurations with B←N units enhances charge transport and sensitivity, achieving a high sensor signal for ammonia detection.
  • The ST-2BP sensor demonstrates excellent performance with minimal humidity interference, marking a significant advancement in the development of effective, room-temperature gas sensing materials.

Article Abstract

Organic molecules with tailorable chemical structures, high stability, and solution processability have great potential in the sensing field. Compared with p-type organic small molecules (OSMs), the electron-dominated n-type analogs show superior conductivity when exposed to reducing gases, which can achieve outstanding sensor signal-to-noise ratios. However, inadequate humidity resistance at room temperature hinders the development of such molecules. Herein, an A-D-π-D-A molecular design strategy is proposed based on electron-deficient B←N units, which results in effective intramolecular charge transport and sensitive responses by extending the π-conjugation bridge. As a result, the ST-2BP with A-D-π-D-A configuration shows a prominent sensitivity of 787 (R/R) in 20 ppm NH at room temperature and an almost initial and stable response under different relative humidity conditions, which is the highest among currently reported OSM sensors. Supported by theoretical calculations and in situ FTIR spectra, it is revealed that B←N units, which function as the active centers mediate the specific ammonia adsorption. This study provides a new understanding of the design of high-performance room temperature gas sensing materials by decorating B←N units.

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Source
http://dx.doi.org/10.1002/advs.202409890DOI Listing
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11672309PMC

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