Pearl‐Structure‐Enhanced NASICON Cathode toward Ultrastable Sodium‐Ion Batteries

快离子导体 材料科学 珍珠 化学工程 阴极 离子 纳米技术 电极 化学 电解质 冶金 物理化学 哲学 有机化学 工程类 神学
作者
Xinxin Zhao,Wangqin Fu,Hongxia Zhang,Jin‐Zhi Guo,Zhen‐Yi Gu,Xiaotong Wang,Jialin Yang,Hong‐Yan Lü,Xing‐Long Wu,Edison Huixiang Ang
出处
期刊:Advanced Science [Wiley]
卷期号:10 (19): e2301308-e2301308 被引量:71
标识
DOI:10.1002/advs.202301308
摘要

Abstract Based on the favorable ionic conductivity and structural stability, sodium superionic conductor (NASICON) materials especially utilizing multivalent redox reaction of vanadium are one of the most promising cathodes in sodium‐ion batteries (SIBs). To further boost their application in large‐scale energy storage production, a rational strategy is to tailor vanadium with earth‐abundant and cheap elements (such as Fe, Mn), reducing the cost and toxicity of vanadium‐based NASICON materials. Here, the Na 3.05 V 1.03 Fe 0.97 (PO 4 ) 3 (NVFP) is synthesized with highly conductive Ketjen Black (KB) by ball‐milling assisted sol‐gel method. The pearl‐like KB branch chains encircle the NVFP (p‐NVFP), the segregated particles possess promoted overall conductivity, balanced charge, and modulated crystal structure during electrochemical progress. The p‐NVFP obtains significantly enhanced ion diffusion ability and low volume change (2.99%). Meanwhile, it delivers a durable cycling performance (87.7% capacity retention over 5000 cycles at 5 C) in half cells. Surprisingly, the full cells of p‐NVFP reveal a remarkable capability of 84.9 mAh g −1 at 20 C with good cycling performance (capacity decay rate is 0.016% per cycle at 2 C). The structure modulation of the p‐NVFP provides a rational design on the superiority of others to be put into practice.
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