Sun Wen, Zhang Fengling, Lai Jingning, Li Bohua, Hu Xin, Gui Boshun, Chen Nuo, Guo Xingming, Li Zhujie, Chen Nan, Li Li, Wu Feng, Chen Renjie
Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering, Beijing Institute of Technology, 100081, Beijing, China.
Advanced Technology Research Institute, Beijing Institute of Technology, 250300, Jinan, China.
Angew Chem Int Ed Engl. 2024 Nov 25;63(48):e202409965. doi: 10.1002/anie.202409965. Epub 2024 Oct 24.
Li-O batteries (LOBs) have gained widespread recognition for their exceptional energy densities. However, a major challenge faced by LOBs is the lack of appropriate electrolytes that can effectively balance reactant transport, interfacial compatibility, and non-volatility. To address this issue, a novel supramolecular deep eutectic electrolyte (DEE) has been developed, based on synergistic interaction between Li-bonds and H-bonds through a combination of lithium salt (LiTFSI), acetamide (Ace) and boric acid (BA). The incorporation of BA serves as an interface modification additive, acting as both Li-bonds acceptor and H-bonds donor/acceptor, thereby enhancing the redox stability of the electrolyte, facilitating a solution phase discharge process and improving compatibility with the Li anode. Our proposed DEE demonstrates a high oxidation voltage of 4.5 V, an ultrahigh discharge capacity of 15225 mAh g and stable cycling performance of 196 cycles in LOBs. Additionally, the intrinsic non-flammability and successful operation of a Li-O pouch cell indicate promising practical applications of this electrolyte. This research broadens the design possibilities for LOBs electrolytes and provides theoretical insights for future studies.
锂-氧电池(LOBs)因其卓越的能量密度而获得广泛认可。然而,LOBs面临的一个主要挑战是缺乏能够有效平衡反应物传输、界面兼容性和非挥发性的合适电解质。为了解决这个问题,基于锂盐(LiTFSI)、乙酰胺(Ace)和硼酸(BA)的组合,通过锂键和氢键之间的协同相互作用,开发了一种新型超分子深共熔电解质(DEE)。BA的加入作为一种界面改性添加剂,既是锂键受体,又是氢键供体/受体,从而提高了电解质的氧化还原稳定性,促进了溶液相放电过程,并改善了与锂负极的兼容性。我们提出的DEE在LOBs中表现出4.5 V的高氧化电压、15225 mAh g的超高放电容量和196次循环的稳定循环性能。此外,锂-氧软包电池固有的不可燃性和成功运行表明这种电解质具有广阔的实际应用前景。这项研究拓宽了LOBs电解质的设计可能性,并为未来的研究提供了理论见解。