Yuetong Zhou, Ding Zhang, Shuai Zhang, Yuqing Liu, Rujun Ma, Gordon Wallace, Jun Chen
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引用次数: 0
Abstract
Thermo‐electrochemical cells (TECs) provide a new potential for self‐powered devices by converting heat energy into electricity. However, challenges still remain in the fabrication of flexible and tough gel electrolytes and their compatibility with redox actives; otherwise, contact problems exist between electrolytes and electrodes during stretching or twisting. Here, a novel robust and neutral hydrogel with outstanding stretchability was developed via double‐network of crosslinked carboxymethyl chitosan and polyacrylamide, which accommodated both n‐type (Fe2+/Fe3+) and p‐type ([Fe(CN)6]3−/[Fe(CN)6]4−) redox couples and maintained stretchability (>300%) and recoverability (95% compression). Moreover, poly(3,4‐ethylenedioxythiophene):poly(styrene sulfonate) textile electrodes with porous structure are integrated into gel electrolytes that avoid contact issues and effectively boost the Pmax of n‐ and p‐type thermocell by 76% and 26%, respectively. The optimized thermocell exhibits a quick current density response and is continually fully operational under deformations, which satisfies the working conditions of wearable devices. Multiple thermocells (four pairs) are effectively connected in alternating single n‐ and p‐type cells in series and outputted nearly 74.3 mV at ΔT = 10°C. The wearable device is manufactured into a soft‐pack thermocells to successfully harvest human body heat and illuminate an LED, demonstrating the potential of the actual application of the thermocell devices.
热电化学电池(TEC)通过将热能转化为电能,为自供电设备提供了新的潜力。然而,在制造柔韧的凝胶电解质及其与氧化还原活性物质的兼容性方面仍然存在挑战;否则,在拉伸或扭转过程中,电解质与电极之间会出现接触问题。在此,我们通过交联羧甲基壳聚糖和聚丙烯酰胺的双层网络,开发出了一种具有出色拉伸性的新型坚固中性水凝胶,它能同时容纳 n 型(Fe2+/Fe3+)和 p 型([Fe(CN)6]3-/[Fe(CN)6]4-)氧化还原偶,并保持拉伸性(大于 300%)和恢复性(95% 压缩)。此外,多孔结构的聚(3,4-亚乙二氧基噻吩):聚(苯乙烯磺酸)纺织电极被集成到凝胶电解质中,避免了接触问题,并有效地将 n 型和 p 型热电池的 Pmax 分别提高了 76% 和 26%。优化后的热电池具有快速的电流密度响应,在变形情况下也能持续完全工作,满足了可穿戴设备的工作条件。多个热电偶(四对)以单个 n 型和 p 型电池交替串联的方式有效连接,在 ΔT = 10°C 时输出近 74.3 mV 的电压。该可穿戴设备被制成软包装热电偶,成功收集人体热量并点亮 LED,展示了热电偶设备的实际应用潜力。