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Published on: November 11, 2013
Multi-Metal Synergistic Doping Enabling High-Entropy Copper-Based Nanosphere Libraries for Advanced Lithium-Ion
Yana Luo1, Li Ling1, Mou Zhang2
1Department of Materials Science and Engineering, Jiangsu Key Laboratory of Artificial Functional Materials, Collaborative Innovation Center of Advanced Microstructures, College of Engineering and Applied Sciences, Nanjing University, Nanjing 210023, P. R. China.
None:
Copper-based materials have emerged as promising anode candidates for next-generation lithium-ion batteries owing to their high theoretical capacity. However, their practical implementation remains fundamentally constrained by inherent semiconducting characteristics and sluggish reaction kinetics. To address these limitations, we develop a universal low-temperature multimetal synergistic doping strategy to construct a high-entropy Cu-based material library (HE-CBMs) encompassing 54 distinct compositions. Through precise modulation of coordination environments and stoichiometric ratios across eight transition metals (Cr, Mn, Fe, Co, Ni, Cu, Zn, and Cd), we first synthesized HE-doped Cu2O (HE-Cu2O) nanospheres via a solvothermal approach, followed by low-temperature reduction to achieve HE-doped metallic Cu (HE-Cu) nanospheres. The multimetal synergy induces lattice distortion and electron-deficient states, synergistically reducing Li+ diffusion barriers while optimizing interfacial charge transfer kinetics. The optimized octonary HE-Cu anode (CrMnFeCoNiCuZnCd) demonstrates exceptional electrochemical performances, delivering a high reversible capacity of 2211.2 mAh g-1 after 250 cycles at 1 A g-1 and retaining 1270.4 mAh g-1 over 900 cycles at 5 A g-1, outperforming most current Cu-based anodes. This work establishes a scalable combinatorial platform for HE material synthesis under mild conditions while elucidating fundamental principles of multimetal synergy for next-generation energy storage systems.
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