流动电池
材料科学
钒
电解质
电池(电)
电极
化学工程
电化学
传质
储能
介孔材料
功率密度
催化作用
化学
冶金
功率(物理)
热力学
色谱法
工程类
物理化学
物理
生物化学
作者
Yongbin Liu,Lihong Yu,Xin Liu,Le Liu,Jingyu Xi
标识
DOI:10.1016/j.jechem.2022.06.004
摘要
A nitrogen-doped multi-scale porous electrode with enhanced mass transfer and electrochemical activity demonstrates ultra-high cycling stability in a high-power vanadium flow battery. Electrode materials with good redox kinetics, excellent mass transfer characteristics and ultra-high stability play a crucial role in reducing the life-cycle cost and prolonging the maintenance-free time of the vanadium flow batteries (VFB). Herein, a nitrogen-doped porous graphite felt electrode (N-PGF) is proposed by growing ZIF-67 nanoparticles on carbon fibers and then calcinating and acid etching. The multi-scale structure of “carbon fiber gap (electrolyte flow), micro/nano pore (active species diffusion) and Nitrogen active center (reaction site)” in N-PGF electrode effectively increases the catalytic sites and promotes mass transfer characteristics. Reasonable electrode design makes the battery show excellent rate performance and ultra-high cycling stability. The peak power density of the battery reaches 1006 mW cm −2 . During 1000 cycles at 150 mA cm −2 , the average discharge capacity and average discharge energy of N-PGF increase substantially by 11.6% and 23.4% compared with the benchmark thermal activated graphite felt, respectively. More excitingly, after ultra-long term (5000 cycles) operation at an ultra-high current density (300 mA cm −2 ), N-PGF exhibits an unprecedented energy efficiency retention (99.79%) and electrochemical performance stability.
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