Anichini Cosimo, Aliprandi Alessandro, Gali Sai Manoj, Liscio Fabiola, Morandi Vittorio, Minoia Andrea, Beljonne David, Ciesielski Artur, Samorì Paolo
Université de Strasbourg, CNRS, ISIS, 8 alleé Gaspard Monge, 67000 Strasbourg, France.
CMN, Université de Mons, Place du Parc 20, 7000 Mons, Belgium.
ACS Appl Mater Interfaces. 2020 Sep 30;12(39):44017-44025. doi: 10.1021/acsami.0c11236. Epub 2020 Sep 16.
Humidity sensors have been gaining increasing attention because of their relevance for well-being. To meet the ever-growing demand for new cost-efficient materials with superior performances, graphene oxide (GO)-based relative humidity sensors have emerged recently as low-cost and highly sensitive devices. However, current GO-based sensors suffer from important drawbacks including slow response and recovery, as well as poor stability. Interestingly, reduced GO (rGO) exhibits higher stability, yet accompanied by a lower sensitivity to humidity due to its hydrophobic nature. With the aim of improving the sensing performances of rGO, here we report on a novel generation of humidity sensors based on a simple chemical modification of rGO with hydrophilic moieties, i.e., triethylene glycol chains. Such a hybrid material exhibits an outstandingly improved sensing performance compared to pristine rGO such as high sensitivity (31% increase in electrical resistance when humidity is shifted from 2 to 97%), an ultrafast response (25 ms) and recovery in the subsecond timescale, low hysteresis (1.1%), excellent repeatability and stability, as well as high selectivity toward moisture. Such highest-key-performance indicators demonstrate the full potential of two-dimensional (2D) materials when decorated with suitably designed supramolecular receptors to develop the next generation of chemical sensors of any analyte of interest.
湿度传感器因其与健康的相关性而越来越受到关注。为了满足对具有卓越性能的新型低成本材料不断增长的需求,基于氧化石墨烯(GO)的相对湿度传感器最近作为低成本且高灵敏度的器件出现了。然而,目前基于GO的传感器存在重要缺点,包括响应和恢复缓慢以及稳定性差。有趣的是,还原氧化石墨烯(rGO)表现出更高的稳定性,但由于其疏水性,对湿度的敏感性较低。为了提高rGO的传感性能,我们在此报告了新一代基于rGO与亲水性基团(即三甘醇链)进行简单化学修饰的湿度传感器。与原始rGO相比,这种混合材料表现出显著改善的传感性能,如高灵敏度(湿度从2%变化到97%时电阻增加31%)、超快响应(25毫秒)以及在亚秒级时间尺度内的恢复、低滞后(1.1%)、优异的重复性和稳定性,以及对水分的高选择性。这些最高关键性能指标展示了二维(2D)材料在装饰有精心设计的超分子受体时开发下一代任何感兴趣分析物的化学传感器的全部潜力。