化学
锌
流量(数学)
螯合作用
软件部署
储能
化学工程
调制(音乐)
适应性
相(物质)
溴
电流(流体)
高能
离子键合
工艺工程
无机化学
能量(信号处理)
金属有机骨架
低能
作者
Tao Cheng,Shuo Wang,Ming Zhao,Tianyu Li,Yang Song,Yanbin Yin,Xianfeng Li
摘要
Abstract Zinc–bromine flow batteries have gained prominence in distributed energy storage due to their high theoretical energy density, inherent safety advantages, and cost-effective electrolytes. However, they have poor low-temperature tolerance and unsatisfactory service life because of the phase transformation of polybromides and uncontrolled zinc deposition. Here we propose a hydration modulation strategy for bromine complexing agents to both enhance the liquid-phase retention capacity of polybromides at low temperatures and mitigate internal short circuits. Moderately hydrated complexing agents not only introduce an appropriate amount of water into the oily polybromide ionic liquid but also prevent zinc from growing into the membrane. Zinc–bromine flow batteries with the target complexing agent, 1-[2-hydroxyethyl]-1-methylpyrrolidinium bromide, outperform those with traditional complexing agents in cycle life (>4000 cycles versus ∼800 cycles) at high current densities (charge: 200 mA cm–2, discharge: 80 mA cm–2) and in low-temperature adaptability (>700 h versus <10 h at 40 mA cm–2 and −20 °C). This study addresses a persistent challenge in the large-scale deployment of zinc–bromine flow batteries.
科研通智能强力驱动
Strongly Powered by AbleSci AI