Gao Yang, Elhadad Anwar, Choi Seokheun
Bioelectronics & Microsystems Laboratory, Department of Electrical & Computer Engineering, State University of New York at Binghamton, Binghamton, New York, 13902, USA.
Center for Research in Advanced Sensing Technologies & Environmental Sustainability, State University of New York at Binghamton, Binghamton, New York, 13902, USA.
Small. 2024 Dec;20(50):e2408182. doi: 10.1002/smll.202408182. Epub 2024 Sep 23.
Disposable wearable electronics are valuable for diagnostic and healthcare purposes, reducing maintenance needs and enabling broad accessibility. However, integrating a reliable power supply is crucial for their advancement, but conventional power sources present significant challenges. To address that issue, a novel paper-based moist-electric generator is developed that harnesses ambient moisture for power generation. The device features gradients for functional groups and moisture adsorption and architecture of nanostructures within a disposable paper substrate. The nanoporous, gradient-formed spore-based biofilm and asymmetric electrode deposition enable sustained high-efficiency power output. A Janus hydrophobic-hydrophilic paper layer enhances moisture harvesting, ensuring effective operation even in low-humidity environments. This research reveals that the water adsorption gradient is crucial for performance under high humidity, whereas the functional group gradient is dominant under low humidity. The device delivers consistent performance across diverse conditions and flexibly conforms to various surfaces, making it ideal for wearable applications. Its eco-friendly, cost-effective, and disposable nature makes it a viable solution for widespread use with minimal environmental effects. This innovative approach overcomes the limitations of traditional power sources for wearable electronics, offering a sustainable solution for future disposable wearables. It significantly enhances personalized medicine through improved health monitoring and diagnostics.
一次性可穿戴电子产品对于诊断和医疗保健用途具有重要价值,可减少维护需求并实现广泛的可及性。然而,集成可靠的电源对其发展至关重要,但传统电源面临重大挑战。为解决该问题,开发了一种新型的基于纸张的湿电发电机,该发电机利用环境湿度进行发电。该装置在一次性纸质基材内具有功能基团和水分吸附的梯度以及纳米结构的架构。纳米多孔、梯度形成的基于孢子的生物膜和不对称电极沉积实现了持续的高效功率输出。一个双面疏水 - 亲水纸层增强了水分收集,即使在低湿度环境下也能确保有效运行。这项研究表明,水吸附梯度在高湿度下对性能至关重要,而功能基团梯度在低湿度下占主导地位。该装置在各种条件下都能提供一致的性能,并能灵活贴合各种表面,使其非常适合可穿戴应用。其环保、经济高效且一次性的特性使其成为一种可行的解决方案,可在对环境影响最小的情况下广泛使用。这种创新方法克服了可穿戴电子产品传统电源的局限性,为未来的一次性可穿戴设备提供了可持续的解决方案。它通过改进健康监测和诊断显著增强了个性化医疗。