Yuvaraja Saravanan, Surya Sandeep G, Chernikova Valeriya, Vijjapu Mani Teja, Shekhah Osama, Bhatt Prashant M, Chandra Suman, Eddaoudi Mohamed, Salama Khaled N
Sensors Lab, Advanced Membranes and Porous Materials Center, Computer, Electrical and Mathematical Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Kingdom of Saudi Arabia.
Functional Materials Design, Discovery & Development Research Group (FMD3) Advanced Membranes & Porous Materials Center, Division of Physical Sciences and Engineering King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Kingdom of Saudi Arabia.
ACS Appl Mater Interfaces. 2020 Apr 22;12(16):18748-18760. doi: 10.1021/acsami.0c00803. Epub 2020 Apr 13.
Organic field-effect transistors (OFETs) are emerging as competitive candidates for gas sensing applications due to the ease of their fabrication process combined with the ability to readily fine-tune the properties of organic semiconductors. Nevertheless, some key challenges remain to be addressed, such as material degradation, low sensitivity, and poor selectivity toward toxic gases. Appropriately, a heterojunction combination of different sensing layers with multifunctional capabilities offers great potential to overcome these problems. Here, a novel and highly sensitive receptor layer is proposed encompassing a porous 3D metal-organic framework (MOF) based on isostructural-fluorinated MOFs acting as an NO specific preconcentrator, on the surface of a stable and ultrathin PDVT-10 organic semiconductor on an OFET platform. Here, with this proposed combination we have unveiled an unprecedented 700% increase in sensitivity toward NO analyte in contrast to the pristine PDVT-10. The resultant combination for this OFET device exhibits a remarkable lowest detection limit of 8.25 ppb, a sensitivity of 680 nA/ppb, and good stability over a period of 6 months under normal laboratory conditions. Further, a negligible response (4.232 nA/%RH) toward humidity in the range of 5%-90% relative humidity was demonstrated using this combination. Markedly, the obtained results support the use of the proposed novel strategy to achieve an excellent sensing performance with an OFET platform.
有机场效应晶体管(OFET)因其制造工艺简便且能够轻松微调有机半导体的性能,正成为气体传感应用中有竞争力的候选者。然而,仍有一些关键挑战有待解决,例如材料降解、灵敏度低以及对有毒气体的选择性差。适当地,具有多功能能力的不同传感层的异质结组合为克服这些问题提供了巨大潜力。在此,提出了一种新型且高灵敏度的受体层,它包含基于同构氟化金属有机框架(MOF)的多孔3D金属有机框架,该框架用作NO特异性预浓缩器,位于OFET平台上稳定且超薄的PDVT-10有机半导体表面。在此,通过这种提议的组合,我们发现与原始PDVT-10相比,对NO分析物的灵敏度前所未有的提高了700%。该OFET器件的最终组合表现出显著的最低检测限8.25 ppb、680 nA/ppb的灵敏度,并且在正常实验室条件下6个月内具有良好的稳定性。此外,使用这种组合在5%-90%相对湿度范围内对湿度的响应可忽略不计(4.232 nA/%RH)。值得注意的是,所获得的结果支持使用所提议的新策略在OFET平台上实现优异的传感性能。