生物电子学
可穿戴计算机
纳米技术
材料科学
能量收集
生物能源
电容感应
可穿戴技术
生物燃料
生物传感器
生化工程
碳纤维
计算机科学
阳极
工作(物理)
碳纳米管
微流控
发电
电池(电)
工艺工程
储能
传感器
能源
生物污染
功率(物理)
作者
J. C. Ye,Jiangbo Lu,Lanqing Li,Xinhao Wan,Jialu Wang,Haoxin Fan,Fangyuan Ma,Shan Chen,Dan Wen
标识
DOI:10.1002/adfm.202532077
摘要
ABSTRACT Developing flexible, self‐sufficient power generators is of significance for burgeoning wearable electronics. Biofuel cells (BFC) that harness perspiration metabolites can potentially offer a promising route toward simultaneous energy generation and self‐powered sensing. However, insufficient power supply and susceptible enzyme‐induced instability hinder widespread adoption. Herein, an enzyme‐free hybrid glucose BFC is designed employing nitrogen‐phosphorus doped carbon (NPC) flexible film derived from self‐assembly graphene/polymer hydrogels, incorporating platinum nanoparticles for glucose oxidation and manganese dioxide‐based O 2 ‐independent capacitive cathode. The O 2 ‐independent design eliminates potential interference to the anodic reaction, enabling a markedly enhanced maximum power density of 680 µW cm −2 and an open circuit voltage of 0.92 V, alongside operational stability exceeding 30 days. When functioning as the self‐powered glucose sensor, it offers a wide range of 0.05–20 mM. Integrated into a conformal wearable system, the device enables bioenergy harvesting from human sweat and real‐time glucose monitoring via compact signal processing electronics. This work underscores the potential of flexible hybrid BFC systems and paves the way for powering next‐generation wearable bioelectronics in personalized healthcare.
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