Nguyen Johan, Lee Youngil, Yang Yang
NanoScience Technology Center, University of Central Florida Orlando, Orlando, FL, 32826, USA.
Chemical Industry Research Institute, Core Research Institute, University of Ulsan, Ulsan, 44776, Republic of Korea.
Small. 2024 Dec 27:e2410453. doi: 10.1002/smll.202410453.
Manganese-based materials are essential for developing safe, cost-effective, and environmentally sustainable rechargeable batteries, which are critical for advancing clean energy technologies. However, the high spin state of the Mn cation triggers a pronounced Jahn-Teller effect and phase transformations during cycling, leading to structural instability and reduced electrochemical performance of the Mn-based cathodes. This review provides a fundamental understanding of the Jahn-Teller effect, highlights recent strategies to mitigate the high spin state of Mn, and offers insights into future research directions aimed at overcoming the Jahn-Teller effect to enhance the performance of next-generation Mn-based cathodes for rechargeable batteries.
锰基材料对于开发安全、经济高效且环境可持续的可充电电池至关重要,而这种电池对于推动清洁能源技术发展至关重要。然而,Mn阳离子的高自旋态在循环过程中引发了显著的 Jahn-Teller 效应和相变,导致锰基阴极的结构不稳定和电化学性能下降。本综述提供了对 Jahn-Teller 效应的基本理解,强调了减轻 Mn 高自旋态的最新策略,并对旨在克服 Jahn-Teller 效应以提高下一代可充电电池锰基阴极性能的未来研究方向提供了见解。