Lee Hyun-Wook, Hwang Jiwon, Kim Ja-Yeong, Morais Gabriel N, Tang Katie S, Choi Myungsoo, Choi Haeun, Youn Hong-Bin, Kim Seoung-Tae, Ha Jee Ho, Kang Seok Ju, Chen Shuming, Suh Sung-Eun, Kwak Won-Jin
School of Energy and Chemical Engineering, Ulsan National Institute of Science and Technology, Ulsan, 44919, Republic of Korea.
Department of Energy Systems Research, Ajou University, Suwon, 16499, Republic of Korea.
Adv Mater. 2025 Apr;37(15):e2415805. doi: 10.1002/adma.202415805. Epub 2025 Jan 3.
The utilization of redox mediators (RMs) in lithium-oxygen batteries (LOBs) has underscored their utility in high overpotential during the charging process. Among the currently known RMs, it is exceptionally challenging to identify those with a redox potential capable of attenuating singlet oxygen (O) generation while resisting degradation by reactive oxygen species (ROS), such as O and superoxide (O ). In this context, computational and experimental approaches for rational molecular design have led to the development of 7,7'-bi-7-azabicyclo[2.2.1]heptane (BAC), a newly suggested RM incorporating N-N interconnected aza-bicycles. BAC harnesses the advantages of falling within the potential range that suppresses O generation, as previously reported N-N embedded non-bicyclic RMs, and effectively defends against ROS-induced degradation due to the incorporation of a novel bicyclic moiety. Unlike the non-bicyclic RMs, which exhibit reduced O evolution after exposure to O, BAC maintains consistent O profiles during charging, indicating its superior O resistance and steady redox-catalyst performance in LOBs. This study introduces a precise and rational design strategy for low-molecular-weight RMs, marking a significant step forward in advancing LOB development by improving efficiency, stability, and practical applicability.
氧化还原介质(RMs)在锂氧电池(LOBs)中的应用突出了其在充电过程中高过电位方面的效用。在目前已知的RMs中,要识别出那些具有能够减弱单线态氧(O)生成同时抵抗活性氧(ROS)(如O和超氧阴离子(O ))降解的氧化还原电位的RMs极具挑战性。在此背景下,合理分子设计的计算和实验方法促使了7,7'-联-7-氮杂双环[2.2.1]庚烷(BAC)的开发,这是一种新提出的包含N-N互连氮杂双环的RMs。BAC利用了与之前报道的含N-N嵌入的非双环RMs一样处于抑制O生成的电位范围内的优势,并且由于引入了新型双环部分而有效地抵御了ROS诱导的降解。与非双环RMs不同,后者在暴露于O后O析出减少,而BAC在充电过程中保持一致的O分布,表明其在LOBs中具有卓越的抗O能力和稳定的氧化还原催化性能。本研究介绍了一种针对低分子量RMs的精确且合理的设计策略,这标志着通过提高效率、稳定性和实际适用性在推进LOBs发展方面向前迈出了重要一步。