Santhiago Murilo, da Costa Priscila G, Pereira Mariane P, Corrêa Cátia C, de Morais Vitória B, Bufon Carlos C B
Brazilian Nanotechnology National Laboratory (LNNano) , Brazilian Center for Research in Energy and Materials (CNPEM) , 13083-970 Campinas , São Paulo , Brazil.
ACS Appl Mater Interfaces. 2018 Oct 17;10(41):35631-35638. doi: 10.1021/acsami.8b12780. Epub 2018 Oct 8.
The synergic combination of materials and interfaces to create novel functional devices is a crucial approach for various applications, including low-cost paper-based point-of-care systems. In this work, we demonstrate the implementation of surface-modified polypyrrole (PPy) structures, monolithically integrated into a three-dimensional multilayered paper-based microfluidic device, to locally assess humidity changes. The fabrication and integration of the system include the deterministic incorporation of PPy into the paper-based structure by gas-phase polymerization and the modification of the polymer properties to allow local humidity monitoring. The functionalization of PPy changes both the wettability and the chemical composition of the interface, what is of fundamental importance for the sensor's operation. The PPy structure has excellent mechanical stability, enduring at least 600 bending cycles, what is of relevance on flexible electronics. The electrical resistance correlates with the local relative humidity (RH) inside of the sealed microfluidic system, and the sensor response is fully reversible. The integrated system capable of locally monitoring the RH allowed us to verify that inside the microfluidic channel, water molecules can diffuse across the wax barriers-a possibility disregarded so far. Our results attest that RH variations of 5-10% can affect the flow of extended channels (>5 cm) even when they are fully enclosed.
材料与界面的协同组合以制造新型功能器件,是包括低成本纸质即时检测系统在内的各种应用的关键方法。在这项工作中,我们展示了表面改性聚吡咯(PPy)结构的实现,该结构整体集成到三维多层纸质微流控器件中,用于局部评估湿度变化。该系统的制造和集成包括通过气相聚合将PPy确定性地掺入纸质结构中,以及对聚合物性能进行改性以实现局部湿度监测。PPy的功能化改变了界面的润湿性和化学成分,这对传感器的运行至关重要。PPy结构具有出色的机械稳定性,至少能承受600次弯曲循环,这在柔性电子学中具有重要意义。电阻与密封微流控系统内部的局部相对湿度(RH)相关,并且传感器响应是完全可逆的。能够局部监测RH的集成系统使我们能够验证,在微流控通道内,水分子可以扩散穿过蜡质屏障——这是迄今为止被忽视的一种可能性。我们的结果证明,即使扩展通道(>5厘米)完全封闭时,5-10%的RH变化也会影响其水流。