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Adv Mater. 2025 Aug;37(32):e2418580. doi: 10.1002/adma.202418580. Epub 2025 May 21.
2
Uncovering the predictive pathways of lithium and sodium interchange in layered oxides.揭示层状氧化物中锂钠交换的预测途径。
Nat Mater. 2024 Jul;23(7):951-959. doi: 10.1038/s41563-024-01862-8. Epub 2024 Apr 16.
3
High Energy Density Large Particle LiFePO.高能量密度大颗粒磷酸铁锂
Chem Mater. 2024 Jan 9;36(2):803-814. doi: 10.1021/acs.chemmater.3c02301. eCollection 2024 Jan 23.
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Capturing dynamic ligand-to-metal charge transfer with a long-lived cationic intermediate for anionic redox.利用长寿命阳离子中间体捕获动态配体到金属的电荷转移以实现阴离子氧化还原。
Nat Mater. 2022 Oct;21(10):1165-1174. doi: 10.1038/s41563-022-01278-2. Epub 2022 Jun 20.
5
Investigation of the structure and performance of Li[LiNiMn]O Li-rich cathode materials derived from eco-friendly and simple coating techniques.源自环保且简单涂覆技术的富锂正极材料Li[LiNiMn]O的结构与性能研究
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6
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7
Building Homogenous Li TiO Coating Layer on Primary Particles to Stabilize Li-Rich Mn-Based Cathode Materials.在一次颗粒上构建均匀的LiTiO涂层以稳定富锂锰基正极材料。
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The oxygen vacancy in Li-ion battery cathode materials.锂离子电池正极材料中的氧空位。
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通过硼掺杂诱导的锚定效应稳定富锂层状阴极中的晶格氧

Stabilizing Lattice Oxygen in Li-Rich Layered Cathodes by Boron-Doping Induced Anchoring Effect.

作者信息

Fan Ruian, Shi Luwei, Zhao Shenfei, Lin Yan, Hu Tao, Lassi Ulla, Ma Ruguang

机构信息

School of Materials Science and Engineering, Suzhou University of Science and Technology, Suzhou 215009, China.

School of Materials Science and Engineering, Anhui Polytechnic University, Wuhu 241000, China.

出版信息

J Phys Chem Lett. 2025 Aug 21;16(33):8440-8448. doi: 10.1021/acs.jpclett.5c01214. Epub 2025 Aug 8.

DOI:10.1021/acs.jpclett.5c01214
PMID:40780287
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12377362/
Abstract

Li-rich Mn-based layered oxides (LRMLOs) have emerged as promising cathode candidates owing to their exceptional specific capacity (>300 mAh/g), high energy density (>1000 Wh/kg), and elevated operating voltages (>3.5 V vs Li/Li). Nevertheless, the sluggish kinetics and poor reversibility of oxygen anion redox reactions fundamentally limit their practical implementation. Herein, we propose an interstitial boron doping strategy that precisely incorporates B atoms into the interstices between lithium and transition metal layers, creating robust BO coordination structures with enhanced B-O covalency. Multiscale characterization reveals that boron doping reduces oxygen Bader charges and increases oxygen vacancy formation energy, effectively suppressing the overoxidation of oxygen while stabilizing oxygen sublattices. Electrochemical evaluation demonstrates significantly improved cyclability with 63.6% capacity retention after 50 cycles at 0.05 C, a 19.3% enhancement compared to that of undoped counterparts. Density functional theory (DFT) calculations further verify that boron incorporation downshifts the O 2p-band center by 0.44 eV and reduces the average oxygen Bader charge, synergistically mitigating irreversible oxygen release. This atomic-level engineering approach establishes a viable pathway for achieving high activity yet stable oxygen redox in LRMLO cathodes.

摘要

富锂锰基层状氧化物(LRMLOs)因其出色的比容量(>300 mAh/g)、高能量密度(>1000 Wh/kg)和较高的工作电压(相对于Li/Li为>3.5 V)而成为有前景的阴极材料候选物。然而,氧阴离子氧化还原反应的缓慢动力学和较差的可逆性从根本上限制了它们的实际应用。在此,我们提出一种间隙硼掺杂策略,该策略将B原子精确地掺入锂和过渡金属层之间的间隙中,形成具有增强的B-O共价性的稳定BO配位结构。多尺度表征表明,硼掺杂降低了氧的巴德电荷并增加了氧空位形成能,有效抑制了氧的过氧化同时稳定了氧亚晶格。电化学评估表明,在0.05 C下循环50次后,循环稳定性显著提高,容量保持率为63.6%,与未掺杂的对应物相比提高了19.3%。密度泛函理论(DFT)计算进一步证实,硼的掺入使O 2p带中心下移0.44 eV并降低了平均氧巴德电荷,协同减轻了不可逆的氧释放。这种原子级工程方法为在LRMLO阴极中实现高活性且稳定的氧氧化还原建立了一条可行的途径。