阳极
材料科学
电解质
化学工程
分离器(采油)
枝晶(数学)
极化(电化学)
共轭体系
储能
纳米技术
电极
金属有机骨架
极地的
沉积(地质)
作者
Hanqi Zhang,Shaochen Peng,Yiming Fan,Ning Zhao,Han Yun,Xiuxia Zhao,Xuan Lu,Feng Jin,Weiwei Huang,Xiaofei Hu
摘要
ABSTRACT The development of sodium‐carbon dioxide (Na‐CO 2 ) batteries is crucial for renewable energy utilization and CO 2 fixation. However, their practical application is severely hindered by Na dendrite formation coupled with aggressive CO 2 electro‐/chemical corrosion, and extremely low Na anode utilization rates. This study addresses these interconnected challenges by employing a multifunctional covalent organic framework (COF) coating. Specifically, the C 6 O 6 ‐TAPT COF features a fully conjugated skeleton for rapid electron cloud response, abundantly distributed sodiophilic chelation sites (C═O and C═N) for Na + capture, and ordered AB stacked structure for homogenizing Na + flux. The COMSOL simulations further demonstrate the stress‐regulating strategy in mitigate solid electrolyte interphase (SEI) cracking and separator puncturing risks. Consequently, Na‐CO 2 batteries using the designed industrial‐scale anode achieve low polarization (1.4 V) and sustain stable cycling for over 1100 h at 100 mA g −1 across 0–60 °C. Remarkably, it maintained over 100 cycles at reduced N/P of 10 and delivered a high discharge capacity of 11552 mAh g −1 under lean electrolyte conditions (8.7 µL mAh −1 ). This study validates stable and functionalized COF substrates with dendrite suppression capability in Na‐CO 2 batteries, proposing a scalable pathway with implications for next‐generation energy storage.
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