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Surface Gradient Ni‐Rich Cathode for Li‐Ion Batteries

Huan Chen, Huihui Yuan, Zhongqin Dai, Sheng Feng, Mengting Zheng, Chujun Zheng, Jun Jin, Meifen Wu, Xiangwei Wu, Jun Lü, Yan Lu, Zhaoyin Wen

2024Advanced Materials80 citationsDOI

Abstract

Abstract Nickel‐rich layered oxide cathode material LiNi x Co y Mn z O 2 (NCM) has emerged as a promising candidate for next‐generation lithium‐ion batteries (LIBs). These cathode materials possess high theoretical specific capacity, fast electron/ion transfer rate, and high output voltage. However, their potential is impeded by interface instability, irreversible phase transition, and the resultant significant capacity loss, limiting their practical application in LIBs. In this work, a simple and scalable approach is proposed to prepare gradient cathode material (M‐NCM) with excellent structural stability and rate performance. Taking advantage of the strong coordination of Ni 2+ with ammonia and the reduction reaction of KMnO 4 , the elemental compositions of the Ni‐rich cathode are reasonably adjusted. The resulted gradient compositional design plays a crucial role in stabilizing the crystal structure, which effectively mitigates Li/Ni mixing and suppresses unwanted surficial parasitic reactions. As a result, the M‐NCM cathode maintains 98.6% capacity after 200 cycles, and a rapid charging ability of 107.5 mAh g −1 at 15 C. Furthermore, a 1.2 Ah pouch cell configurated with graphite anode demonstrates a lifespan of over 500 cycles with only 8% capacity loss. This work provides a simple and scalable approach for the in situ construction of gradient cathode materials via cooperative coordination and deposition reactions.

Topics & Concepts

CathodeMaterials scienceAnodeCapacity lossChemical engineeringLithium (medication)IonOxideElectrodePhysical chemistryMetallurgyChemistryOrganic chemistryMedicineEndocrinologyEngineeringAdvancements in Battery MaterialsGraphene research and applicationsSupercapacitor Materials and Fabrication
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