Esteves Carina, Palma Susana I C J, Costa Henrique M A, Alves Cláudia, Santos Gonçalo M C, Ramou Efthymia, Carvalho Ana Luísa, Alves Vitor, Roque Ana C A
Associate Laboratory i4HB - Institute for Health and Bioeconomy, NOVA School of Science and Technology, NOVA University of Lisbon, Caparica, 2829-516, Portugal.
UCIBIO - Applied Molecular Biosciences Unit, Department of Chemistry, NOVA School of Science and Technology, NOVA University of Lisbon, Caparica, 2829-516, Portugal.
Adv Mater. 2022 Feb;34(8):e2107205. doi: 10.1002/adma.202107205. Epub 2022 Jan 9.
Relative humidity is simultaneously a sensing target and a contaminant in gas and volatile organic compound (VOC) sensing systems, where strategies to control humidity interference are required. An unmet challenge is the creation of gas-sensitive materials where the response to humidity is controlled by the material itself. Here, humidity effects are controlled through the design of gelatin formulations in ionic liquids without and with liquid crystals as electrical and optical sensors, respectively. In this design, the anions [DCA] and [Cl] of room temperature ionic liquids from the 1-butyl-3-methylimidazolium family tailor the response to humidity and, subsequently, sensing of VOCs in dry and humid conditions. Due to the combined effect of the materials formulations and sensing mechanisms, changing the anion from [DCA] to the much more hygroscopic [Cl] , leads to stronger electrical responses and much weaker optical responses to humidity. Thus, either humidity sensors or humidity-tolerant VOC sensors that do not require sample preconditioning or signal processing to correct humidity impact are obtained. With the wide spread of 3D- and 4D-printing and intelligent devices, the monitoring and tuning of humidity in sustainable biobased materials offers excellent opportunities in e-nose sensing arrays and wearable devices compatible with operation at room conditions.
在气体和挥发性有机化合物(VOC)传感系统中,相对湿度既是传感目标又是污染物,因此需要控制湿度干扰的策略。一个尚未解决的挑战是创造对湿度的响应由材料本身控制的气敏材料。在此,分别通过设计不含液晶和含有液晶的离子液体中的明胶配方来控制湿度影响,以用作电学和光学传感器。在这种设计中,1-丁基-3-甲基咪唑鎓家族的室温离子液体的阴离子[DCA]和[Cl]调整对湿度的响应,进而调整在干燥和潮湿条件下对VOC的传感。由于材料配方和传感机制的综合作用,将阴离子从[DCA]换成吸湿性更强的[Cl],会导致对湿度产生更强的电响应和更弱的光响应。因此,可获得无需样品预处理或信号处理来校正湿度影响的湿度传感器或耐湿度VOC传感器。随着3D和4D打印以及智能设备的广泛应用,对可持续生物基材料中的湿度进行监测和调节,在与室温条件下运行兼容的电子鼻传感阵列和可穿戴设备中提供了绝佳机遇。