Xu Baolei, Zhang Chunxiao, Wang Wenran, Zhu Hai, Ma Li, Wang Meiyu, Liang Chaoping, Zhou Liangjun, Wang Li, Chen Libao, Ivey Douglas G, Wei Weifeng
State Key Laboratory of Powder Metallurgy, Central South University, Changsha, Hunan, 410083, P. R. China.
Hunan Key Laboratory of Applied Environmental Photocatalysis, Changsha University, Changsha, Hunan, 410022, P. R. China.
Angew Chem Int Ed Engl. 2025 Jan 21;64(4):e202416565. doi: 10.1002/anie.202416565. Epub 2024 Nov 7.
Solid-electrolyte interphase (SEI) plays a decisive role in building reliable Li metal batteries. However, the scarcity of anions in Helmholtz layer (HL) caused by electrostatic repulsion usually leads to the inferior SEI derived from solvents, resulting in dendrites and 'dead' Li. Therefore, regulating the distribution of anions in electric double layer (EDL) and continuously introducing more anions into HL to tailor anions-derived SEI is crucial for achieving stable Li plating/stripping. Herein, by jointly utilizing the controlled defects of reduced graphene oxide (rGO) and the oriented dipoles of ferroelectric BaTiO (BTO), the rGO-BTO composite layer sustainedly brings more TFSI and NO into anion-defecient HL, promoting favorable decomposition of anions and guiding the generation of robust and fast-Li-transport SEI containing more inorganics LiF and LiN species. Thus, the resulting Li deposit shows smooth and dense morphologies without dendrites, leading to high average Coulombic efficiency. The Li//Cu@rGO-BTO (10 mAh cm plated Li) cell exhibits an enhanced Li plating/stripping stability (2700 h) and a higher rate capability. The LiFePO full cell (N/P≈6.3) using rGO-BTO displays an enhanced capacity retention (82.0 % @ 430 cycles). This work provides a new insight on the construction of robust SEI by regulating the distribution of anions within EDL.
固体电解质界面(SEI)在构建可靠的锂金属电池中起着决定性作用。然而,由于静电排斥导致亥姆霍兹层(HL)中阴离子的稀缺,通常会导致由溶剂衍生的劣质SEI,从而产生枝晶和“死”锂。因此,调节双电层(EDL)中阴离子的分布并持续将更多阴离子引入HL以定制源自阴离子的SEI对于实现稳定的锂电镀/剥离至关重要。在此,通过联合利用还原氧化石墨烯(rGO)的可控缺陷和铁电BaTiO(BTO)的取向偶极子,rGO-BTO复合层持续将更多的TFSI和NO引入缺乏阴离子的HL中,促进阴离子的有利分解并引导生成包含更多无机LiF和LiN物种的坚固且快速锂传输的SEI。因此,所得锂沉积物呈现出无枝晶的光滑致密形态,导致高平均库仑效率。Li//Cu@rGO-BTO(镀锂10 mAh cm)电池表现出增强的锂电镀/剥离稳定性(2700 h)和更高的倍率性能。使用rGO-BTO的LiFePO全电池(N/P≈6.3)显示出增强的容量保持率(430次循环时为82.0%)。这项工作为通过调节EDL内阴离子的分布来构建坚固的SEI提供了新的见解。