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功能化苝涂层的点胶印刷电极增强湿度传感:一项对比研究

Enhancing Humidity Sensing with Functionalized Perylene-Coated Dispense Printed Electrodes: A Comparative Study.

作者信息

Vasquez Sahira, Morales-Cámara Samuel, Moraila Carmen, Houeix Yann, Blasco Pascual Isabel, Salmerón José F, Rodríguez-Diéguez Antonio, Rojas Sara, Münzenrieder Niko, Petti Luisa, Lugli Paolo, Rivadeneyra Almudena

机构信息

Faculty of Engineering, Free University of Bolzano-Bozen, via Bruno Buozzi 1, 39100 Bolzano, Italy.

Department of Inorganic Chemistry, Faculty of Science, University of Granada, 18071 Granada, Spain.

出版信息

ACS Appl Electron Mater. 2025 Jun 27;7(14):6311-6321. doi: 10.1021/acsaelm.5c00360. eCollection 2025 Jul 22.

Abstract

Emerging sensing materials are central to improving the functionality and integration of electronic devices. In this study, we report the synthesis of a custom perylene-based organic ligand, ,'-di-(phenyl-3,5-dicarboxylic acid)-perylene-3,4:9,10-tetracarboxylic acid diimide (PY), which exhibits a strong response to relative humidity (RH). Its sensing performance was systematically compared with that of a commercially available perylene derivative, ,'-bis-(4-methoxy-benzyl)-perylene-3,4:9,10-bis-(dicarboximide) (PBI). Both materials were deposited onto polyimide substrates with silver-based dispense-printed interdigitated electrodes to fabricate impedimetric sensors. The PY-based sensor demonstrated a high sensitivity of -5289 Ω/% RH at 1 kHz within a 30-90% RH range while exhibiting minimal temperature dependence. In contrast, the PBI-based sensor showed a lower humidity sensitivity of -452 Ω/% RH and a negligible temperature response. This study highlights the potential of functionalized perylene derivatives for developing high performance humidity sensors with minimal thermal interference, eliminating the need for temperature compensation and enabling integration into low power electronic systems. These findings provide valuable insights into molecular design strategies for next-generation environmental monitoring and flexible electronic applications.

摘要

新兴传感材料对于提升电子设备的功能和集成度至关重要。在本研究中,我们报告了一种定制的基于苝的有机配体,即,'-二-(苯基-3,5-二羧酸)-苝-3,4:9,10-四羧酸二酰亚胺(PY)的合成,该配体对相对湿度(RH)表现出强烈响应。其传感性能与市售苝衍生物,'-双-(4-甲氧基-苄基)-苝-3,4:9,10-双-(二羧酸酰亚胺)(PBI)的传感性能进行了系统比较。两种材料都沉积在带有银基点涂印刷叉指电极的聚酰亚胺基板上,以制造阻抗式传感器。基于PY的传感器在30 - 90% RH范围内,于1 kHz时表现出-5289 Ω/% RH的高灵敏度,同时温度依赖性极小。相比之下,基于PBI的传感器显示出较低的湿度灵敏度,为-452 Ω/% RH,且温度响应可忽略不计。本研究突出了功能化苝衍生物在开发具有最小热干扰的高性能湿度传感器方面的潜力,无需温度补偿,并能够集成到低功耗电子系统中。这些发现为下一代环境监测和柔性电子应用的分子设计策略提供了有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e47f/12309082/e0c538c5c684/el5c00360_0001.jpg

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