Fan Yameng, Wang Xin, Bo Guyue, Xu Xun, See Khay Wai, Johannessen Bernt, Pang Wei Kong
Institute for Superconducting & Electronic Materials (ISEM), Faculty of Engineering and Information Sciences (EIS), University of Wollongong, Wollongong, NSW, 2500, Australia.
Australian Synchrotron, Australian Nuclear Science and Technology Organization, Clayton, VIC, 3168, Australia.
Adv Sci (Weinh). 2025 Mar;12(10):e2414480. doi: 10.1002/advs.202414480. Epub 2025 Jan 24.
Rechargeable batteries are central to modern energy storage systems, from portable electronics to electric vehicles. The cathode material, a critical component, largely dictates a battery's energy density, capacity, and overall performance. This review focuses on the application of operando X-ray absorption spectroscopy (XAS) to study cathode materials in Li-ion, Na-ion, Li-S, and Na-S batteries. Operando XAS provides real-time insights into the local electronic structure, oxidation states, and coordination environments, which are crucial for understanding complex electrochemical processes, such as redox reactions, phase transitions, and structural degradation. The review highlights the strengths of hard and soft XAS techniques in probing transition metal (TM) and anionic redox processes, particularly in layered oxide cathodes, where reversible oxygen redox and TM behavior are pivotal. The role of operando XAS is also explored in analyzing conversion-type S-based cathodes, where it helps unravel the intricate reaction mechanisms. Furthermore, the review addresses the challenges of in situ cell design for operando XAS, especially under ultrahigh vacuum conditions for soft XAS. By discussing recent advancements and future directions, this review underscores the critical role of operando XAS in driving innovation and improving the design and performance of next-generation battery technologies.
从便携式电子设备到电动汽车,可充电电池是现代储能系统的核心。阴极材料作为关键部件,在很大程度上决定了电池的能量密度、容量和整体性能。本综述聚焦于运用原位X射线吸收光谱(XAS)来研究锂离子电池、钠离子电池、锂硫电池和钠硫电池中的阴极材料。原位XAS能实时洞察局部电子结构、氧化态和配位环境,这对于理解诸如氧化还原反应、相变和结构降解等复杂的电化学过程至关重要。该综述强调了硬XAS和软XAS技术在探测过渡金属(TM)和阴离子氧化还原过程中的优势,特别是在层状氧化物阴极中,其中可逆氧氧化还原和TM行为至关重要。原位XAS在分析转化型硫基阴极中的作用也得到了探讨,它有助于揭示复杂的反应机制。此外,该综述还讨论了原位XAS的原位电池设计面临的挑战,尤其是在软XAS所需的超高真空条件下。通过讨论近期进展和未来方向,本综述强调了原位XAS在推动创新以及改进下一代电池技术的设计和性能方面的关键作用。