Wu Wanbao, Li Deping, Gao Chaochao, Wu Hao, Bo Yiyang, Zhang Jichuan, Ci Lijie, Zhang Jiaheng
Sauvage Laboratory for Smart Materials, Harbin Institute of Technology, Shenzhen, 518055, China.
School of Petrochemical Engineering, Changzhou University, Changzhou, 21300, China.
Adv Sci (Weinh). 2024 Jun;11(23):e2310136. doi: 10.1002/advs.202310136. Epub 2024 Apr 19.
Dramatic growth of lithium dendrite, structural deterioration of LiCoO (LCO) cathode at high voltages, and unstable electrode/electrolyte interfaces pose significant obstacles to the practical application of high-energy-density LCO||Li batteries. In this work, a novel eutectogel electrolyte is developed by confining the nonflammable eutectic electrolyte in a polymer matrix. The eutectogel electrolyte can construct a robust solid electrolyte interphase (SEI) with inorganic-rich LiF and LiN, contributing to a uniform Li deposition. Besides, the severe interface side reactions between LCO cathode and electrolyte can be retarded with an in situ formed protective layer. Correspondingly, Li||Li symmetrical cells achieve highly reversible Li plating/stripping over 1000 h. The LCO||Li full cell can maintain 72.5% capacity after 1500 cycles with a decay rate of only 0.018% per cycle at a high charging voltage of 4.45 V. Moreover, the well-designed eutectogel electrolyte can even enable the stable operation of LCO at an extremely high cutoff voltage of 4.6 V. This work introduces a promising avenue for the advancement of eutectogel electrolytes, the nonflammable nature and well-regulated interphase significantly push forward the future application of lithium metal batteries and high-voltage utilization of LCO cathode.
锂枝晶的急剧生长、高压下LiCoO(LCO)正极的结构劣化以及不稳定的电极/电解质界面,对高能量密度LCO||Li电池的实际应用构成了重大障碍。在这项工作中,通过将不可燃的共晶电解质限制在聚合物基质中,开发了一种新型的共晶凝胶电解质。该共晶凝胶电解质可以构建具有富含无机LiF和LiN的坚固固体电解质界面(SEI),有助于锂的均匀沉积。此外,原位形成的保护层可以抑制LCO正极与电解质之间严重的界面副反应。相应地,Li||Li对称电池在1000小时以上实现了高度可逆的锂电镀/剥离。LCO||Li全电池在4.45 V的高充电电压下,经过1500次循环后可保持72.5%的容量,每循环衰减率仅为0.018%。此外,精心设计的共晶凝胶电解质甚至可以使LCO在4.6 V的极高截止电压下稳定运行。这项工作为共晶凝胶电解质的发展开辟了一条有前途的途径,其不可燃性质和良好调控的界面显著推动了锂金属电池的未来应用以及LCO正极的高压利用。