水溶液
催化作用
阴极
材料科学
塔菲尔方程
化学工程
电化学
水解
介孔材料
电极
纳米技术
化学
超短脉冲
化学稳定性
电流密度
无机化学
电池(电)
过渡金属
甲醇
联轴节(管道)
光谱学
交换电流密度
储能
动能
碳纤维
作者
Zhiqiang Zhao,Yeyang Jia,Zhiquan Wei,Xun Guo,Huilin Cui,Zehui Xie,Xinru Yang,Shuo Feng,Kim Hung MAK,Xintao Ma,Hu Hong,Shixun Wang,Jun Fan,Chunyi Zhi
摘要
ABSTRACT Two‐electron aqueous Zn–I 2 batteries deliver doubled cathode capacity yet remain constrained by the thermodynamic instability of I + and sluggish, multistep interfacial kinetics. By systematically correlating electrochemical behavior with ZnCl 2 concentration, we demonstrate that strengthened Cl − coordination mitigates ICl hydrolysis but concurrently aggravates charge‐transfer resistance. Thus, suppressing hydrolysis alone proves insufficient, underscoring the need to address interfacial kinetics. To address this, we design a single‐atom catalytic confinement host featuring atomically dispersed Co–N 4 sites on N‐doped carbon hollow nanospheres (CoSAs@NC). These isolated Co sites strongly chemisorb polyiodides, expedite electron exchange, and facilitate Zn 2+ transport within a hierarchically mesoporous framework, coupling high stability with fast kinetics. Operando spectroscopy and kinetic analyses reveal that atomic catalysis significantly decreases the Tafel slope, enhances exchange current density, and reduces charge‐transfer resistance. With high‐iodine‐content cathode, Co‐SAs@NC‐based cells achieve 190.6 mAh g −1 at 30 A g −1 , and ultralong cycling stability with only 0.00179% capacity decay per cycle over 20000 cycles. Pouch cells deliver high energy density of 218.6 Wh kg − 1 (based on total electrode mass). This integrated catalysis–confinement strategy resolves the intrinsic stability–kinetics trade‐off, advancing practical, high‐rate Zn–I 2 energy storage.
科研通智能强力驱动
Strongly Powered by AbleSci AI