Chan Joseph Y M, Shehayeb Elissa O, Pennington Doran L, Hendon Christopher H, Mirica Katherine A
Department of Chemistry, Burke Laboratory, Dartmouth College, Hanover, New Hampshire 03755, United States.
Department of Chemistry and Biochemistry, University of Oregon, Eugene, Oregon 97403, United States.
J Am Chem Soc. 2025 Aug 13;147(32):29003-29012. doi: 10.1021/jacs.5c07229. Epub 2025 Aug 1.
The selective, sensitive, low power, and portable detection of nitric oxide (NO) is important for environmental monitoring, industrial safety, and medical diagnostics. While tremendous progress has been made in detecting NO, existing technologies exhibit significant trade-offs in sensitivity, selectivity, portability, and power requirements for broad implementation. This paper presents the first synthesis of a novel class of two-dimensional conductive tetrapyrazinoporphyrazine-based metal-organic frameworks (MOFs) interconnected with Cu ( and ) and Zn ions () with unprecedented chemiresistive performance toward NO detection. achieves an ultralow detection limit (0.47 parts-per-trillion (ppt)), rapid response (within seconds), high selectivity of NO over HS, SO, CO, NH, and NO, excellent reversibility, operation at room temperature, and low power requirements. The novel structural features and material-analyte interactions of with NO represent a significant conceptual advance in molecular engineering of materials for NO detection, with potential applications in environmental monitoring, industrial safety, and medical diagnostics.
一氧化氮(NO)的选择性、灵敏性、低功耗及便携式检测对于环境监测、工业安全和医学诊断而言至关重要。尽管在NO检测方面已取得巨大进展,但现有技术在灵敏度、选择性、便携性以及广泛应用所需的功率要求方面存在显著权衡。本文首次合成了一类新型的二维导电四吡嗪并卟啉基金属有机框架材料(MOFs),该材料与铜( )和锌离子( )相互连接,对NO检测具有前所未有的化学电阻性能。 实现了超低检测限(0.47万亿分之一(ppt))、快速响应(数秒内)、对NO相对于HS、SO、CO、NH和NO的高选择性、优异的可逆性、室温下运行以及低功率要求。 与NO的新颖结构特征和材料 - 分析物相互作用代表了用于NO检测的材料分子工程的重大概念性进展,在环境监测、工业安全和医学诊断中具有潜在应用。