Vacancy-ordered perovskite superlattice in cerium titanate negative electrode for enhanced lithium-ion storage
Abstract
Abstract Commercial negative electrodes such as graphite and Li 4 Ti 5 O 12 are fundamental to lithium-ion batteries but face inherent trade-offs among safety, energy density, rate performance, and cycling stability. In this work, we introduce structural ordering and vacancy engineering into a perovskite negative electrode Ce 2/3 TiO 3 to tackle this dilemma, by creating highly ordered Ce vacancies that form a stable superlattice. As a result, micron-sized Ce 2/3 TiO 3 achieves a high specific capacity (>200 mAh g -1 ) at an optimal operating potential (~0.8 V vs. Li + /Li), with fast-charging capability up to 50 C and stable cycling performance exceeding 10000 cycles at 20 C. Its electrochemical performance has the potential to overcome the shortcomings of graphite and Li 4 Ti 5 O 12 , comparable to many representative intercalation-type negative electrodes. In situ structural analysis and atomic-scale imaging reveal a reversible topological phase transition between long-range and short-range ordering, which preserves the lattice integrity while unlocking low-barrier Li + diffusion pathways. Here, we show that vacancy ordering provides a compelling strategy for designing high-performance electrodes.
Article Details
Authors (7)
Xuhui Xiong
Zhengwang Liu
Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Department of Materials Science, Academy for Engineering & Technology
Ruixuan Zhang
Department of Chemical and Biomolecular Engineering
Liting Yang
State Key Laboratory of Electroanalytic Chemistry, Jilin Province Key Laboratory of Low Carbon Chemistry Power, Jilin Provincial Science and Technology Innovation Center of Hydrogen Energy
Guisheng Liang
Ke Pei
Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Department of Materials Science, Academy for Engineering & Technology
Renchao Che