Chen Ze, Huang Zhaodong, Zhu Jiaxiong, Li Dedi, Chen Ao, Wei Zhiquan, Wang Yiqiao, Li Nan, Zhi Chunyi
Department of Materials Science and Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Kowloon, Hong Kong, 999077, China.
Hong Kong Center for Cerebro-Cardiovascular Health Engineering (COCHE), Shatin, New Territories, Hong Kong, 999077, China.
Adv Mater. 2024 Jul;36(30):e2402898. doi: 10.1002/adma.202402898. Epub 2024 Jun 17.
Sulfur is a promising conversion-type cathode for zinc batteries (ZBs) due to its high discharge capacity and cost-effectiveness. However, the redox conversion of multivalent S in ZBs is still limited, only having achieved S/S redox conversion with low discharge voltage and poor reversibility. This study presents significant progress by demonstrating, for the first time, the reversible S/S redox behavior in ZBs with up to six-electron transfer (with an achieved discharge capacity of ≈1284 mAh g) using a highly concentrated ClO -containing electrolyte. The developed succinonitrile-Zn(ClO) eutectic electrolyte stabilizes the positive-valence S compound and contributes to an ultra-low polarization voltage. Notably, the achieved flat discharge plateaus demonstrate the highest operation voltage (1.54 V) achieved to date in Zn‖S batteries. Furthermore, the high-voltage Zn‖S battery exhibits remarkable conversion dynamics, excellent cycling performance (85.7% capacity retention after 500 cycles), high efficiency (98.4%), and energy density (527 Wh kg ). This strategy of positive-valence conversion of sulfur represents a significant advancement in understanding sulfur chemistry in batteries and holds promise for future high-voltage sulfur-based batteries.
由于具有高放电容量和成本效益,硫是锌电池(ZBs)一种很有前景的转换型正极。然而,锌电池中多价硫的氧化还原转换仍然有限,仅实现了低放电电压和差可逆性的S/S氧化还原转换。本研究取得了重大进展,首次使用高浓度含ClO的电解质,在锌电池中展示了高达六电子转移的可逆S/S氧化还原行为(实现的放电容量约为1284 mAh g)。所开发的丁二腈-Zn(ClO)共晶电解质稳定了正价硫化合物,并有助于实现超低极化电压。值得注意的是,所实现的平坦放电平台展示了迄今为止锌硫电池中达到的最高工作电压(1.54 V)。此外,高压锌硫电池表现出显著的转换动力学、出色的循环性能(500次循环后容量保持率为85.7%)、高效率(98.4%)和能量密度(527 Wh kg)。这种硫的正价转换策略代表了在理解电池中硫化学方面的重大进展,并为未来的高压硫基电池带来了希望。