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Defect-engineered gradient reconstruction for the upcycling of spent LiFePO4 to generate high-value LiFe1−xMnxPO4/C cathodes

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中国科学数据2026-04-24 更新2026-04-25 收录
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https://www.sciengine.com/AA/doi/10.1016/j.jechem.2025.08.048
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Recycling spent lithium-ion (Li+) batteries is critical for achieving environmental conservation and the strategic recovery of essential resources. Compared with conventional methods for recovering cathode materials, which are energy-intensive and prone to secondary pollution, the direct regeneration approach has emerged as a rapid and highly efficient method, gaining widespread attention in recent years. However, this approach faces major challenges, including degraded electrochemical performances and limited economic value. This study, therefore, proposes a high-value direct regeneration strategy to convert degraded spent LiFePO4 (S-LFP) into a gradient manganese (Mn)-doped regenerated LiFe0.7Mn0.3PO4/C (R-LFMP) composite. This method leverages the inherent microcracks and Li vacancies present in S-LFP, likely acting as diffusion channels for the Mn2+/Li+ ions. Through a two-step mechanochemical ball-milling and carbothermal reduction process, this approach achieves simultaneous Li replenishment and surface-localised Mn gradient doping with enhanced structural control. Notably, the R-LFMP exhibits an exceptional electrochemical performance. At 0.1 C, it delivers a discharge capacity of 161.4 mA h g−1 and an energy density of 563.5 Wh kg−1 (representing a 60.5 % improvement over S-LFP). Additionally, it maintains 83 % capacity retention after 900 cycles at 0.5C, a considerable enhancement compared to commercial LFMP (62 %). Furthermore, the regenerated cathode material generates a net profit of $7.102 kg−1, surpassing the profitability of conventional recycling methods by 90 %. Overall, this study introduces a transformative and sustainable LFP regeneration technology, achieving breakthroughs in electrochemical restoration and high-value recycling, while paving the way for the closed-loop utilisation of LFP-based energy storage systems.Graphic abstractDefect-guided upcycling transforms spent LiFePO4 (S-LFP) into high-performance core–shell LiFe0.7Mn0.3PO4/C (R-LFMP) by utilising inherent microcracks and Li vacancies as channels for targeted Mn2+/Li+ diffusion, enabling sustainable, high-value cathode regeneration.Download: Download high-res image (228KB)Download: Download full-size image
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2026-04-24
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