材料科学
电极
功率密度
氧化物
能量收集
纳米技术
电化学
纳米颗粒
电流密度
化学工程
光电子学
热电效应
储能
氧化还原
碳纤维
表面电荷
发热
氧气
电化学能量转换
能量转换
表面改性
作者
Y Liao,Ching‐Chieh Hsu,Shao‐Huan Hong,Cheng‐Liang Liu
出处
期刊:Small
[Wiley]
日期:2026-03-15
卷期号:22 (26): e14359-e14359
标识
DOI:10.1002/smll.202514359
摘要
ABSTRACT Gel‐based thermogalvanic cells (TGCs) have emerged as promising candidates for low‐grade heat harvesting due to their intrinsically high Seebeck coefficients and simple device architectures. However, their power output remains limited by electrode kinetics and significant interfacial resistance. To address this problem, an effective strategy is developed herein by hydrothermally integrating transition metal oxide nanoparticles (TiO 2 , WO 3 , ZnO) onto carbon cloth (CC) electrodes, and combining this with a double‐network poly(vinyl alcohol) (PVA)/gelatin hydrogel containing the ferro‐/ferricyanide (Fe(CN) 6 3–/4– ) redox couple. Compared to the pristine CC, all of the modified electrodes exhibit markedly enhanced current densities due to enlarged electroactive surface areas and abundant oxygen vacancies. In particular, the CC/TiO 2 electrode delivers the best performance due to unique coordination interactions between TiO 2 and Fe(CN) 6 4– , which facilitate interfacial charge transfer, as confirmed by spectroscopic and electrochemical analyses. The optimized device delivers a maximum power density of 579.8 mW m −2 and a normalized maximum power density of 0.64 mW m −2 K −2 . Furthermore, a nine‐cell prototype generates ∼0.2 V under a modest temperature gradient of 15 K, thus highlighting the potential of hydrogel‐based TGCs for low‐grade heat recovery and flexible, wearable energy devices.
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