Mohseni Taromsari Sara, Salari Meysam, Shi HaoTian Harvey, Habibpour Saeed, Saadatnia Zia, Tafreshi Omid Aghababaei, Yu Aiping, Park Chul B, Naguib Hani E
Department of Mechanical & Industrial Engineering (MIE), University of Toronto, Toronto, Ontario, M5S 3G8, Canada.
Department of Mechanical & Materials Engineering, University of Western Ontario, London, Ontario, N6A 5B9, Canada.
Adv Mater. 2025 Feb;37(6):e2406349. doi: 10.1002/adma.202406349. Epub 2024 Dec 20.
MXene has garnered growing interest in the field of electrochemistry, thanks to its unique electrical and surface characteristics. Nonetheless, significant challenges persist in realizing its full potential in chemoresistive sensing applications. In this study, a novel unidirectional freeze-casting approach for fabricating a Poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS)-facilitated vertically aligned MXene-based aerogel with enhanced chemoresistive sensing properties was introduced. Firstly, the persistent challenge of poor gelation in MXene was addressed by formulating a nanohybrid of MXene and PEDOT:PSS, which acted as flexible conductive nanobinder. Employing a unique freeze-casting method, MXene flakes interconnected by PEDOT:PSS, were stabilized into a flexible, vertically aligned structure, leading to maximum surface exposure and enhanced robustness. The resulting 3-dimentional (3-D) aerogel exhibited a fast, heightened chemoresistive response of 7 to 50 parts per million (ppm) acetone and expanded the working range to between 10 parts per billion (ppb)-8000 ppm. Interfacial heterostructures formed between MXene and PEDOT:PSS, provided active sites, reduced activation energy, and enhanced selectivity. Modulated MXene bandgap, and its electron mobility further facilitated electron transfer, and enhanced signal strength. The sensor showed excellent biocompatibility and was also successfully employed as a breathalyzing tool, for on-demand alcohol consumption monitoring.
由于其独特的电学和表面特性,MXene在电化学领域引起了越来越多的关注。尽管如此,要在化学电阻传感应用中充分发挥其潜力仍存在重大挑战。在本研究中,引入了一种新颖的单向冷冻铸造方法,用于制备具有增强化学电阻传感性能的聚(3,4-乙撑二氧噻吩)聚苯乙烯磺酸盐(PEDOT:PSS)促进的垂直排列的MXene基气凝胶。首先,通过制备MXene和PEDOT:PSS的纳米杂化物来解决MXene中凝胶化不良这一长期存在的挑战,该纳米杂化物充当柔性导电纳米粘合剂。采用独特的冷冻铸造方法,由PEDOT:PSS互连的MXene薄片被稳定成柔性的垂直排列结构,从而实现最大的表面暴露并增强了坚固性。所得的三维(3-D)气凝胶对百万分之7至50(ppm)的丙酮表现出快速、增强的化学电阻响应,并将工作范围扩大到十亿分之10(ppb)至8000 ppm之间。MXene和PEDOT:PSS之间形成的界面异质结构提供了活性位点,降低了活化能,并提高了选择性。调制后的MXene带隙及其电子迁移率进一步促进了电子转移,并增强了信号强度。该传感器表现出优异的生物相容性,还成功用作呼气分析工具,用于按需监测酒精摄入量。