Peng Peng, Zhou Jiaqian, Liang Lirong, Huang Xuan, Lv Haicai, Liu Zhuoxin, Chen Guangming
College of Materials Science and Engineering, Shenzhen University, Shenzhen, 518055, People's Republic of China.
College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen, 518060, People's Republic of China.
Nanomicro Lett. 2022 Mar 25;14(1):81. doi: 10.1007/s40820-022-00824-6.
The design of power supply systems for wearable applications requires both flexibility and durability. Thermoelectrochemical cells (TECs) with large Seebeck coefficient can efficiently convert low-grade heat into electricity, thus having attracted considerable attention in recent years. Utilizing hydrogel electrolyte essentially addresses the electrolyte leakage and complicated packaging issues existing in conventional liquid-based TECs, which well satisfies the need for flexibility. Whereas, the concern of mechanical robustness to ensure stable energy output remains yet to be addressed. Herein, a flexible quasi-solid-state TEC is proposed based on the rational design of a hydrogel electrolyte, of which the thermogalvanic effect and mechanical robustness are simultaneously regulated via the multivalent ions of a redox couple. The introduced redox ions not only endow the hydrogel with excellent heat-to-electricity conversion capability, but also act as ionic crosslinks to afford a dual-crosslinked structure, resulting in reversible bonds for effective energy dissipation. The optimized TEC exhibits a high Seebeck coefficient of 1.43 mV K and a significantly improved fracture toughness of 3555 J m, thereby can maintain a stable thermoelectrochemical performance against various harsh mechanical stimuli. This study reveals the high potential of the quasi-solid-state TEC as a flexible and durable energy supply system for wearable applications.
可穿戴应用的电源系统设计需要灵活性和耐用性。具有大塞贝克系数的热电化学电池(TEC)能够有效地将低品位热能转化为电能,因此近年来受到了广泛关注。使用水凝胶电解质从根本上解决了传统液体基TEC中存在的电解质泄漏和复杂封装问题,很好地满足了灵活性需求。然而,确保稳定能量输出的机械稳健性问题仍有待解决。在此,基于水凝胶电解质的合理设计提出了一种柔性准固态TEC,通过氧化还原对的多价离子同时调节其热电流效应和机械稳健性。引入的氧化还原离子不仅赋予水凝胶优异的热电转换能力,还作为离子交联剂提供双交联结构,形成用于有效能量耗散的可逆键。优化后的TEC表现出1.43 mV K的高塞贝克系数和显著提高的3555 J m的断裂韧性,从而能够在各种苛刻的机械刺激下保持稳定的热电化学性能。这项研究揭示了准固态TEC作为可穿戴应用中灵活耐用的能量供应系统的巨大潜力。