Zhang Xinyi, Hu Linyu, Zhou Kemeng, Zhang Linqing, Zeng Xiaolong, Shi Yuqing, Cai Weizheng, Wu Jiazhen, Lin Yuanjing
School of Microelectronics, Southern University of Science and Technology, Shenzhen, 518055, China.
Laboratory of Advanced Interfacial Materials and Devices, School of Fashion and Textiles, The Hong Kong Polytechnic University, Kowloon, Hong Kong SAR, 99088, China.
Adv Mater. 2024 Nov;36(48):e2412844. doi: 10.1002/adma.202412844. Epub 2024 Oct 15.
Aqueous zinc-ion batteries with superior operational safety have great promise to serve as wearable energy storage devices. However, the poor cycling stability and low output voltage limited their practical applications. Here, fully printable Zn/MoS-MnO micro-batteries are developed and demonstrated significantly enhanced cycling stability with sweat activation. 2D MoS is utilized to enable lattice-matching with Zn powders to realize printed Zn anodes with desirable stability and promote electron/ion transfer. Interestingly, the mild acid epidermal sweat also contributed to eliminating the MnO cathode by-products and compensating for the hydrogel electrolytes' water loss. The Zn/MoS-MnO micro-batteries achieve a high specific capacity of 318.9 µAh cm at the current density of 0.16 mA cm, and an energy density of 424.6 µWh cm, with remarkable cycle stability of ≈90% after 250 cycles. In-battery electrochromic display of capacity level and feasible electronics charging are demonstrated. The as-printed micro-batteries with innovative sweat activation would inspire the advances of sustainable power supply for wearables.
具有卓越运行安全性的水系锌离子电池在用作可穿戴储能设备方面具有巨大潜力。然而,较差的循环稳定性和较低的输出电压限制了它们的实际应用。在此,开发了完全可印刷的Zn/MoS-MnO微型电池,并证明其在汗液激活下循环稳定性显著增强。二维MoS用于与锌粉实现晶格匹配,以制备具有理想稳定性的印刷锌阳极,并促进电子/离子转移。有趣的是,温和的酸性表皮汗液也有助于消除MnO阴极副产物,并补偿水凝胶电解质的水分流失。Zn/MoS-MnO微型电池在电流密度为0.16 mA cm时实现了318.9 µAh cm的高比容量和424.6 µWh cm的能量密度,在250次循环后具有约90%的显著循环稳定性。展示了电池内容量水平的电致变色显示和可行的电子设备充电。这种具有创新汗液激活功能的印刷微型电池将推动可穿戴设备可持续电源的发展。