College of Mechatronics and Control Engineering, Shenzhen University, Shenzhen 518060, China.
Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
ACS Appl Mater Interfaces. 2023 May 3;15(17):20843-20853. doi: 10.1021/acsami.2c19687. Epub 2023 Apr 17.
Current commercial nickel (Ni)-rich Mn, Co, and Al-containing cathodes are employed in high-energy-density lithium (Li) batteries all around the globe. The presence of Mn/Co in them brings out several problems, such as high toxicity, high cost, severe transition-metal dissolution, and quick surface degradation. Herein, a Mn/Co-free ultrahigh-Ni-rich single-crystal LiNiFeCuO (SCNFCu) cathode with acceptable electrochemical performance is benchmarked against a Mn/Co-containing cathode. Despite having a slightly lower discharge capacity, the SCNFCu cathode retaining 77% of its capacity across 600 deep cycles in full-cell outperforms comparable to a high-Ni single-crystal LiNiMnCoO (SCNMC; 66%) cathode. It is shown that the stabilizing ions Fe/Cu in the SCNFCu cathode reduce structural disintegration, undesirable side reactions with the electrolyte, transition-metal dissolution, and active Li loss. This discovery provides a new extent for cathode material development for next-generation high-energy, Mn/Co-free Li batteries due to the compositional tuning flexibility and quick scalability of SCNFCu, which is comparable to the SCNMC cathode.
目前,全球范围内的高能量密度锂离子电池都采用了商业化的镍(Ni)丰富的锰(Mn)、钴(Co)和铝(Al)含量的正极材料。这些材料中 Mn/Co 的存在带来了一些问题,例如高毒性、高成本、严重的过渡金属溶解和快速的表面降解。在此,我们将一种具有可接受电化学性能的不含 Mn/Co 的超高镍含量单晶 LiNiFeCuO(SCNFCu)正极与含 Mn/Co 的正极进行了基准测试。尽管 SCNFCu 正极的放电容量略低,但在全电池中经过 600 次深度循环后,其容量保持率为 77%,优于具有可比性的高镍单晶 LiNiMnCoO(SCNMC;66%)正极。研究表明,SCNFCu 正极中的稳定离子 Fe/Cu 减少了结构分解、与电解质的不良副反应、过渡金属溶解和活性 Li 的损失。由于 SCNFCu 具有组成可调谐性和快速可扩展性,与 SCNMC 正极相当,因此这项发现为下一代无 Mn/Co 的高能锂离子电池的正极材料开发提供了新的思路。