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Constructing LiMn6 superlattice covalent framework to enable reversible anionic redox toward layer‐structured oxide for sodium batteries

dc.contributor.authorLai, QSen_AU
dc.contributor.authorYue, Hen_AU
dc.contributor.authorYang, DRen_AU
dc.contributor.authorGao, GPen_AU
dc.contributor.authorChen, Hen_AU
dc.contributor.authorGao, XWen_AU
dc.contributor.authorLiu, ZMen_AU
dc.contributor.authorGu, QFen_AU
dc.contributor.authorLuo, WBen_AU
dc.date.accessioned2026-08-14T05:51:40Zen_AU
dc.date.issued2025-12-16en_AU
dc.date.statistics2026-05-04en_AU
dc.description.abstractHigh-voltage anionic redox reactions offer an effective approach to enhancing the energy density for layer-structured oxides. However, such reactions are often accompanied by complex structural rearrangements and oxygen release, posing significant challenges to structural stability. A superstructure-regulating strategy is employed to construct LiMn6 ribbon ordering in O3-type Na[Li0.1Ni0.2Mn0.6Cu0.05Ti0.05]O2, aiming to address these issues and achieve high energy density alongside long-term cycling performance. Combined theoretical and experimental investigations it reveals that the incorporation of Li enhances electron localization around neighboring oxygen atoms, thereby modulating anionic redox activity. Moreover, the ordered LiMn6 framework facilitates directional hybridization between Mn 3d eg, and O 2p orbitals, forming a highly covalent network that effectively suppresses P-to-O type phase transitions and transition metal migration, thereby enhancing structural stability under high-voltage operation. The modified material delivers a highly reversible capacity of 207.98 mAh g−1 and exhibits excellent capacity retention of 80.43% after 125 cycles within a wide voltage range of 1.5–4.5 V. Furthermore, a full cell assembled with hard carbon as the anode demonstrates a capacity retention of 76.6% after 300 cycles. This work provides a new perspective on the superstructural design of high-performance O3-type cathodes for advanced sodium-ion batteries.en_AU
dc.description.sponsorshipQ.L. and H.Y. contributed equally to this work. This work was supported by the National Natural Science Foundation of China (Grant Number 52272194). The authors extend their gratitude from Scientific Compass (www.shiyanjia.com) for providing invaluable assistance with the XPS analysis. The authors appreciate the technical support with XAS analysis by Zhongke e-Test Research Service (www.zkec.cc). This manuscript was written through the contributions of all the authors. All authors have given approval to the final version of the manuscript.en_AU
dc.identifier.articlenumbere04890en_AU
dc.identifier.citationLai, Q.-S., Yue, H., Yang, D.-R., Gao, G., Chen, H., Gao, X.-W., Liu, Z., Gu, Q., & Luo, W.-B. (2026). Constructing LiMn6 superlattice covalent framework to enable reversible anionic redox toward layer‐structured oxide for sodium batteries. Advanced Energy Materials, 16(6), e04890. doi:10.1002/aenm.202504890en_AU
dc.identifier.issn1614-6832en_AU
dc.identifier.issn1614-6840en_AU
dc.identifier.issue6en_AU
dc.identifier.journaltitleAdvanced Energy Materialsen_AU
dc.identifier.urihttps://doi.org/10.1002/aenm.202504890en_AU
dc.identifier.urihttps://apo.ansto.gov.au/handle/10238/17327en_AU
dc.identifier.volume16en_AU
dc.languageEnglishen_AU
dc.language.isoenen_AU
dc.publisherWileyen_AU
dc.subjectLithiumen_AU
dc.subjectManganeseen_AU
dc.subjectOxidesen_AU
dc.subjectCathodesen_AU
dc.subjectCarbonen_AU
dc.subjectEnergy densityen_AU
dc.subjectCopperen_AU
dc.subjectTitaniumen_AU
dc.subjectElectronsen_AU
dc.subjectRedox reactionsen_AU
dc.subjectAnionsen_AU
dc.titleConstructing LiMn6 superlattice covalent framework to enable reversible anionic redox toward layer‐structured oxide for sodium batteriesen_AU
dc.typeJournal Articleen_AU

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