TY - JOUR
T1 - Facile Electrochemical Mg-Ion Transport in a Defect-Free Spinel Oxide
AU - Kwon, Bob Jin
AU - Yin, Liang
AU - Roy, Indrani
AU - Leon, Noel J.
AU - Kumar, Khagesh
AU - Kim, Jae Jin
AU - Han, Jinhyup
AU - Gim, Jihyeon
AU - Liao, Chen
AU - Lapidus, Saul H.
AU - Cabana, Jordi
AU - Key, Baris
N1 - Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/4/26
Y1 - 2022/4/26
N2 - Inversion, that is, Mg/Mn antisite disorder, in a spinel oxide simultaneously causes blockage of favorable Mg2+migration paths, raising activation barriers for diffusion, and it reduces the number of redox-active metals, limiting the maximum capacity in the spinel. An inversion-free spinel, MgCr1.5Mn0.5O4, was synthesized by exploiting the different intrinsic crystal field stabilization of redox-active Cr and Mn in the form of a solid solution. The capability of the tailored spinel to reversibly (de)intercalate Mg2+at high redox potentials was investigated. The decrease in inversion dramatically lowered the electrochemical overpotential and hysteresis and enabled utilization of high potentials at ∼2.9 V (vs Mg/Mg2+) upon re-intercalation of Mg2+. A combination of characterization techniques reveals that the structural, compositional, and redox changes within the spinel oxide were consistent with the observed electrochemical Mg2+activity. Quantification of selection solely to lattice Mg2+upon the electrochemical reaction was investigated by monitoring nuclear magnetic resonance signals in isotope 25Mg-enriched spinel oxides. Our findings enhance the understanding of Mg2+transport within spinel oxide frameworks and provide conclusive evidence for bulk Mg migration in oxide lattices at high redox potentials with minimized electrochemical hysteresis.
AB - Inversion, that is, Mg/Mn antisite disorder, in a spinel oxide simultaneously causes blockage of favorable Mg2+migration paths, raising activation barriers for diffusion, and it reduces the number of redox-active metals, limiting the maximum capacity in the spinel. An inversion-free spinel, MgCr1.5Mn0.5O4, was synthesized by exploiting the different intrinsic crystal field stabilization of redox-active Cr and Mn in the form of a solid solution. The capability of the tailored spinel to reversibly (de)intercalate Mg2+at high redox potentials was investigated. The decrease in inversion dramatically lowered the electrochemical overpotential and hysteresis and enabled utilization of high potentials at ∼2.9 V (vs Mg/Mg2+) upon re-intercalation of Mg2+. A combination of characterization techniques reveals that the structural, compositional, and redox changes within the spinel oxide were consistent with the observed electrochemical Mg2+activity. Quantification of selection solely to lattice Mg2+upon the electrochemical reaction was investigated by monitoring nuclear magnetic resonance signals in isotope 25Mg-enriched spinel oxides. Our findings enhance the understanding of Mg2+transport within spinel oxide frameworks and provide conclusive evidence for bulk Mg migration in oxide lattices at high redox potentials with minimized electrochemical hysteresis.
UR - https://www.scopus.com/pages/publications/85128762772
U2 - 10.1021/acs.chemmater.2c00237
DO - 10.1021/acs.chemmater.2c00237
M3 - Article
AN - SCOPUS:85128762772
SN - 0897-4756
VL - 34
SP - 3789
EP - 3797
JO - Chemistry of Materials
JF - Chemistry of Materials
IS - 8
ER -