Soo KimJae-Kyo NohMuratahan AykolZhi LuHaesik KimWonchang ChoiChunjoong KimKyung Yoon ChungChris WolvertonByung Won Cho
In this work, we report the electrochemical properties of 0.5Li2MnO3·0.25LiNi0.5Co0.2Mn0.3O2·0.25LiNi0.5Mn1.5O4 and 0.333Li2MnO3·0.333LiNi0.5Co0.2Mn0.3O2·0.333LiNi0.5Mn1.5O4 layered-layered-spinel (L*LS) cathode materials prepared by a high-energy ball-milling process. Our L*LS cathode materials can deliver a large and stable capacity of ∼200 mAh g(-1) at high voltages up to 4.9 V, and do not show the anomalous capacity increase upon cycling observed in previously reported three-component cathode materials synthesized with different routes. Furthermore, we have performed synchrotron-based in situ X-ray diffraction measurements and found that there are no significant structural distortions during charge/discharge runs. Lastly, we carry out (opt-type) van der Waals-corrected density functional theory (DFT) calculations to explain the enhanced cycle characteristics and reduced phase transformations in our ball-milled L*LS cathode materials. Our simple synthesis method brings a new perspective on the use of the high-power L*LS cathodes in practical devices.
Soo Kim (1343769)Jae-Kyo Noh (1437349)Muratahan Aykol (1343760)Zhi Lu (615760)Haesik Kim (1437346)Wonchang Choi (1437352)Chunjoong Kim (1372125)Kyung Yoon Chung (1343772)Chris Wolverton (1437355)Byung-Won Cho (1343778)
Jia LuYa-Lin ChangBohang SongHui XiaJer‐Ren YangKim Seng LeeLi Lü
Donghan KimG. Sandı́Jason R. CroyKevin G. GallagherSun‐Ho KangEungje LeeMichael SlaterChristopher S. JohnsonMichael M. Thackeray
Joong Sun ParkJason R. CroyBrandon R. LongEungje LeeMichael M. Thackeray
Taijun PanJudith AlvaradoJian ZhuYuan YueHuolin L. XinDennis NordlundFeng LinMarca M. Doeff