TY - JOUR
T1 - High-Entropy Spinel Oxide Ferrites for Battery Applications
AU - Nam, Ki Hun
AU - Wang, Zhongling
AU - Luo, Jessica
AU - Huang, Cynthia
AU - Millares, Marie F.
AU - Pace, Alexis
AU - Wang, Lei
AU - King, Steven T.
AU - Ma, Lu
AU - Ehrlich, Steven
AU - Bai, Jianming
AU - Takeuchi, Esther S.
AU - Marschilok, Amy C.
AU - Yan, Shan
AU - Takeuchi, Kenneth J.
AU - Doeff, Marca M.
N1 - Publisher Copyright:
© 2024 The Authors. Published by American Chemical Society.
PY - 2024/5/14
Y1 - 2024/5/14
N2 - Four different high-entropy spinel oxide ferrite (HESO) electrode materials containing 5-6 distinct metals were synthesized by a simple, rapid combustion synthesis process and evaluated as conversion anode materials in lithium half-cells. All showed markedly superior electrochemical performance compared to conventional spinel ferrites such as Fe3O4 and MgFe2O4, having capacities that could be maintained above 600 mAh g-1 for 150 cycles, in most cases. X-ray absorption spectroscopy (XAS) results on pristine, discharged, and charged electrodes show that Fe, Co, Ni, and Cu are reduced to the elemental state during the first discharge (lithiation), while Mn is only slightly reduced. Upon recharge (delithiation), Fe is reoxidized to an average oxidation state of about 2.6+, while Co, Ni, and Cu are not reoxidized. The ability of Fe to be oxidized past 2+ accounts for the high capacities observed in these materials, while the presence of metallic elements after the initial lithiation provides an electronically conductive network that aids in charge transfer.
AB - Four different high-entropy spinel oxide ferrite (HESO) electrode materials containing 5-6 distinct metals were synthesized by a simple, rapid combustion synthesis process and evaluated as conversion anode materials in lithium half-cells. All showed markedly superior electrochemical performance compared to conventional spinel ferrites such as Fe3O4 and MgFe2O4, having capacities that could be maintained above 600 mAh g-1 for 150 cycles, in most cases. X-ray absorption spectroscopy (XAS) results on pristine, discharged, and charged electrodes show that Fe, Co, Ni, and Cu are reduced to the elemental state during the first discharge (lithiation), while Mn is only slightly reduced. Upon recharge (delithiation), Fe is reoxidized to an average oxidation state of about 2.6+, while Co, Ni, and Cu are not reoxidized. The ability of Fe to be oxidized past 2+ accounts for the high capacities observed in these materials, while the presence of metallic elements after the initial lithiation provides an electronically conductive network that aids in charge transfer.
UR - https://www.scopus.com/pages/publications/85192142738
U2 - 10.1021/acs.chemmater.4c00085
DO - 10.1021/acs.chemmater.4c00085
M3 - Article
AN - SCOPUS:85192142738
SN - 0897-4756
VL - 36
SP - 4481
EP - 4494
JO - Chemistry of Materials
JF - Chemistry of Materials
IS - 9
ER -