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Engineering Transition Metal Layers for Long Lasting Anionic Redox in Layered Sodium Manganese Oxide
Authors:Natalia Voronina  Jun Ho Yu  Hee Jae Kim  Najma Yaqoob  Olivier Guillon  Hyungsub Kim  Min-Gi Jung  Hun-Gi Jung  Koji Yazawa  Hitoshi Yashiro  Payam Kaghazchi  Seung-Taek Myung
Affiliation:1. Hybrid Materials Research Center, Department of Nano Technology and Advanced Materials Engineering, Sejong Battery Institute, Sejong University, Seoul, 05006 South Korea;2. Forschungszentrum Jülich GmbH, Institute of Energy and Climate Research, Materials Synthesis and Processing (IEK-1), 52425 Jülich, Germany

MESA+ Institute for Nanotechnology, University of Twente, 7500 AE Enschede, The Netherlands;3. Forschungszentrum Jülich GmbH, Institute of Energy and Climate Research, Materials Synthesis and Processing (IEK-1), 52425 Jülich, Germany;4. Neutron Science Division, Korea Atomic Energy Research Institute (KAERI), 111 Daedeok-daero 989 Beon-Gil, Yuseong-gu, Daejeon, 34057 South Korea;5. Center for Energy Storage Research, Korea Institute of Science and Technology, Seoul, 02792 South Korea;6. Jeol Resonance Inc., 3-1-2 Musashino, Akishima, Tokyo, 196–8558 Japan;7. Department of Chemical Engineering, Iwate University, Iwate, 020–8551 Japan

Abstract:Oxygen-redox-based-layered cathode materials are of great importance in realizing high-energy-density sodium-ion batteries (SIBs) that can satisfy the demands of next-generation energy storage technologies. However, Mn-based-layered materials (P2-type Na-poor NayAxMn1?x]O2, where A = alkali ions) still suffer from poor reversibility during oxygen-redox reactions and low conductivity. In this work, the dual Li and Co replacement is investigated in P2-type-layered NaxMnO2. Experimentally and theoretically, it is demonstrated that the efficacy of the dual Li and Co replacement in Na0.6Li0.15Co0.15Mn0.7]O2 is that it improves the structural and cycling stability despite the reversible Li migration from the transition metal layer during de-/sodiation. Operando X-ray diffraction and ex situ neutron diffraction analysis prove that the material maintains a P2-type structure during the entire range of Na+ extraction and insertion with a small volume change of ≈4.3%. In Na0.6Li0.15Co0.15Mn0.7]O2, the reversible electrochemical activity of Co3+/Co4+, Mn3+/Mn4+, and O2-/(O2)n- redox is identified as a reliable mechanism for the remarkable stable electrochemical performance. From a broader perspective, this study highlights a possible design roadmap for developing cathode materials with optimized cationic and anionic activities and excellent structural stabilities for SIBs.
Keywords:anionic  batteries  cationic  redox  sodium
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