Zhang Xinyuan, Zhang Bao, Yang Jin-Lin, Wu Jiawen, Jiang Heng, Du Fei, Fan Hong Jin
Key Laboratory of Physics and Technology for Advanced Batteries (Ministry of Education), State Key Laboratory of Superhard Materials, College of Physics, Jilin University, Changchun, 130012, China.
School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore, 637371, Singapore.
Adv Mater. 2024 Jan;36(3):e2307298. doi: 10.1002/adma.202307298. Epub 2023 Nov 30.
The decoupled battery design is promising for breaking the energy density limit of traditional aqueous batteries. However, the complex battery configuration and low-selective separator membranes restrict their energy output and service time. Herein, a zinc-sulfur decoupled aqueous battery is achieved by designing a high-mass loading sulfur electrode and single ion-selective membrane (ISM). A vertically assembled nanosheet network constructed with the assistance of a magnetic field enables facile electron and ion conduction in thick sulfur electrodes, which is conducive to boosting the cell-level energy output. For the tailored ISM, the Na ions anchored on its skeleton effectively prevent the crossover of OH or Cu , facilitating the transport of Na and ensuring structural and mechanical stability. Consequently, the Zn-S aqueous battery achieves a reversible energy density of 3988 Wh kg (by sulfur mass), stable operation over 300 cycles, and an energy density of 53.2 mWh cm . The sulfur-based decoupled system may be of immediate benefit toward safe, reliable, and affordable static energy storage.
解耦电池设计有望突破传统水系电池的能量密度限制。然而,复杂的电池结构和低选择性的隔膜限制了它们的能量输出和使用寿命。在此,通过设计高质量负载的硫电极和单离子选择性膜(ISM)实现了锌-硫解耦水系电池。在磁场辅助下构建的垂直组装纳米片网络能够使厚硫电极中的电子和离子轻松传导,这有利于提高电池级的能量输出。对于定制的ISM,锚定在其骨架上的Na离子有效地防止了OH或Cu的交叉,促进了Na的传输并确保了结构和机械稳定性。因此,锌-硫水系电池实现了3988 Wh kg(基于硫质量)的可逆能量密度,在300次循环中稳定运行,以及53.2 mWh cm的能量密度。硫基解耦系统可能会立即有助于实现安全、可靠且经济实惠的静态能量存储。