Acid Etching-Driven Self-Assembly of Mn-Shell Inducing Rock-Salt Phase for Enhanced Single-Crystal Ni-Rich Cathodes

IF 4.7 4区 材料科学 Q2 ELECTROCHEMISTRY Batteries & Supercaps Pub Date : 2024-09-28 DOI:10.1002/batt.202400501
Xiaotu Ma, Zifei Meng, Jiahui Hou, Zeyi Yao, Zexin Wang, Fulya Dogan, Zhenzhen Yang, Maksim Sultanov, Guanhui Gao, Hua Guo, Yimo Han, Jianguo Wen, Yan Wang
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Abstract

With the wide adoption of Li-ion batteries, Ni-rich cathode is considered as one of the most promising candidates of cathodes due to its high energy density and low cost. However, stability decreased with increasing Ni content in the Ni-rich cathode. To solve this bottleneck, many strategies, such as coating, doping, surface modification, and special morphologies, have been developed. Herein, we introduce a groundbreaking approach for enhancing Ni-rich cathode through an innovative acid etching process that promotes Mn shell self-assembly, inducing a rock-salt phase on the surface. This method not only simplifies the Ni-rich cathode modification process, but also significantly improves the structural stability and electrochemical performance of Ni-rich cathode. Our findings demonstrate that developed single-crystal Ni-rich cathode shows 3–34 % better stability compared to both commercial modified Ni-rich cathode and unmodified counterparts. The unique Mn shell effectively mitigates reversible phase shifts during cycling, contributing to a remarkable enhancement in cycling stability. This novel fabrication technique paves the way for cost-effective production of high-performance cathode materials, offering substantial benefits for lithium-ion battery technology. And this study proves the potential of this method in advancing the design and development of durable, high-capacity cathode materials for next-generation batteries.

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酸蚀驱动锰壳诱导岩盐相自组装增强单晶富镍阴极
随着锂离子电池的广泛应用,富镍阴极因其高能量密度和低成本而被认为是最有前途的阴极之一。而富镍阴极的稳定性随Ni含量的增加而降低。为了解决这一瓶颈,人们开发了许多策略,如涂层、掺杂、表面改性和特殊形态。在此,我们介绍了一种突破性的方法,通过一种创新的酸蚀刻工艺来增强富镍阴极,该工艺促进锰壳自组装,在表面诱导岩盐相。该方法不仅简化了富镍阴极改性工艺,而且显著提高了富镍阴极的结构稳定性和电化学性能。我们的研究结果表明,开发的单晶富镍阴极与商业修饰的富镍阴极和未修饰的阴极相比,稳定性提高了3 - 34%。独特的锰壳有效地减轻了循环过程中的可逆相移,有助于显著提高循环稳定性。这种新颖的制造技术为高性能阴极材料的经济高效生产铺平了道路,为锂离子电池技术提供了实质性的好处。这项研究证明了这种方法在推进下一代电池耐用、高容量正极材料的设计和开发方面的潜力。
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来源期刊
CiteScore
8.60
自引率
5.30%
发文量
223
期刊介绍: Electrochemical energy storage devices play a transformative role in our societies. They have allowed the emergence of portable electronics devices, have triggered the resurgence of electric transportation and constitute key components in smart power grids. Batteries & Supercaps publishes international high-impact experimental and theoretical research on the fundamentals and applications of electrochemical energy storage. We support the scientific community to advance energy efficiency and sustainability.
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