材料科学
生物相容性材料
能量收集
复合数
水分
可持续能源
纳米技术
明胶
储能
能量(信号处理)
复合材料
可再生能源
化学工程
生物医学工程
医学
生物化学
统计
化学
数学
电气工程
功率(物理)
物理
量子力学
工程类
作者
Subhamay Pramanik,Sovanlal Mondal,Riya Sadhukhan,Shiv Prakash Verma,Ajoy Mandal,Chandan Sengupta,D. K. Goswami
标识
DOI:10.1021/acsami.5c04325
摘要
The rising global energy demand and environmental concerns necessitate the development of sustainable energy-harvesting technologies. Among these, moisture-enabled nanogenerators (MEGs) have emerged as a promising solution, harnessing ubiquitous moisture in the environment to generate clean energy. MEGs operate through diffusion-induced micro- or nanofluidic proton transport between two electrodes; however, existing devices often produce only transient outputs. Addressing this limitation, we developed a biocompatible MEG utilizing a quasi-solid gelatin matrix and a 2D SnS2-based composite, delivering a continuous open-circuit voltage of 0.95 V, a short-circuit current of 241.6 μA, and a power density of approximately 358.6 μW/cm2 at 90% relative humidity (RH). Furthermore, the device demonstrates the capability to generate electricity from human breath and hand proximity, opening avenues for self-powered medical devices. The fast response of humidity makes it suitable for health monitoring applications in conditions such as sleep apnea, asthma, and respiratory disorders. A comparative performance analysis with other protein/2D material-based MEGs highlights the superior efficiency and stability of our device. The integration of gelatin with SnS2 enhances energy output while maintaining environmental friendliness, paving the way for next-generation autonomous electronics. This study underscores the potential of biocompatible MEGs in addressing energy challenges through innovative and sustainable approaches.
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