Authors
Anrudh Mishra, Vikash Kumar Verma, Dilip Pandey, L Ponvijayakanthan, Sarvesh Kumar Maurya, Neeraj K Jaiswal, Shaibal Mukherjee, Abhinav Raghuvanshi
Published in
Chemistry (Weinheim an der Bergstrasse, Germany). Pages e71766. Oct 06, 2026. Epub Oct 06, 2026.
Abstract
Conducting coordination polymers (CPs) have emerged as promising materials for chemiresistive gas sensing at ambient conditions. In this work, we report three ionic semiconducting Cu(I) CPs constructed from (pyridin-4-yl)-N-(4H-1,2,4-triazol-4-yl)methenamine (PTMA), oxydi(2,1-phenylene)bis(diphenylphosphine), incorporating BF4 - (CP1, C44H35BCuF4N5OP2), PF6 - (CP2, C44H35CuF6N5OP3), and ClO4 - (CP3, C44H35ClCuN5O5P2) counteranions. Among these, CP1 shows outstanding dual-gas sensing capability toward SO2 and NO2 at ambient conditions, achieving strong chemiresistive responses with excellent selectivity, fast response-recovery behavior and stable cycling performance. Comparative studies using CP2 and CP3 reveal minimal counteranion influence, indicating that the sensing response is predominantly driven by interactions at the Cu-ligand framework. Complementary experimental measurements and theoretical calculations reveal that adsorption of electron-accepting analytes perturbs the electron density on Cu(I), inducing partial oxidation of Cu(I) to Cu(II) and modulating charge transfer along the polymer backbone without disrupting structural stability, thereby accounting for the observed resistance modulation. Overall, these findings highlight the potential of Cu(I) systems as a high-efficiency platform for room-temperature dual-gas sensing.
PMID:
42839622
Bibliographic data and abstract were imported from PubMed on 07 Oct 2026.
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