Krebsbach Peter, Rincón-Iglesias Mikel, Pietsch Manuel, Henel Carmen, Lanceros-Mendez Senentxu, Phua Jun Wei, Ambrico Marianna, Hernandez-Sosa Gerardo
Light Technology Institute, Karlsruhe Institute of Technology, Engesserstr. 13, 76131 Karlsruhe, Germany.
InnovationLab, Speyerer Straße 4, 69115 Heidelberg, Germany.
ACS Appl Mater Interfaces. 2024 Aug 14;16(32):42555-42565. doi: 10.1021/acsami.4c06596. Epub 2024 Jul 31.
A lack of sustainability in the design of electronic components contributes to the current challenges of electronic waste and material sourcing. Common materials for electronics are prone to environmental, economic, and ethical problems in their sourcing, and at the end of their life often contribute to toxic and nonrecyclable waste. This study investigates the inkjet printing of flexible humidity sensors and includes biosourced and biodegradable materials to improve the sustainability of the process. Humidity sensors are useful tools for monitoring atmospheric conditions in various fields. Here, an aqueous dispersion of black soldier fly melanin was optimized for printing with a cosolvent and deposited onto interdigitated silver electrodes on flexible substrates. Impedance spectroscopy demonstrated that adding choline chloride increased the ion concentration and AC conductivity by more than 3 orders of magnitude, resulting in a significant improvement in sensing performance and reduced hysteresis. The devices exhibit fast detection (0.8 ± 0.5 s) and recovery times (0.8 ± 0.3 s), with a 170 ± 40-fold decrease in impedance for relative humidity changes from 30% to 90%. This factor is lowered upon prolonged exposure to high humidity in tests over 72 h during which a stable operation is reached. The low embodied energy of the sensor, achieved through material-efficient deposition and the use of waste management byproducts, enhances its sustainability. In addition, approaches for reusability and degradability are presented, rendering the sensor suitable for wearable or agricultural applications.
电子元件设计缺乏可持续性,导致了当前电子垃圾和材料采购方面的挑战。电子产品常用材料在采购过程中容易出现环境、经济和伦理问题,并且在使用寿命结束时往往会产生有毒且不可回收的废物。本研究调查了柔性湿度传感器的喷墨打印,并纳入了生物源和可生物降解材料,以提高该过程的可持续性。湿度传感器是监测各个领域大气状况的有用工具。在此,通过与助溶剂一起对黑水虻黑色素的水分散体进行优化,以便进行打印,并将其沉积在柔性基板上的叉指式银电极上。阻抗谱表明,添加氯化胆碱使离子浓度和交流电导率提高了3个多数量级,从而显著改善了传感性能并减少了滞后现象。这些器件具有快速检测(0.8±0.5秒)和恢复时间(0.8±0.3秒),相对湿度从30%变化到90%时,阻抗降低了170±40倍。在超过72小时的测试中,长时间暴露于高湿度环境下该系数会降低,在此期间可实现稳定运行。通过高效材料沉积和利用废物管理副产品实现的传感器低固有能量,增强了其可持续性。此外,还介绍了可重复使用性和可降解性方法,使该传感器适用于可穿戴或农业应用。