TY - JOUR
T1 - Unraveling the Critical Role of Ti Substitution in P2-NaxLiyMn1- yO2 Cathodes for Highly Reversible Oxygen Redox Chemistry
AU - Li, Chao
AU - Zhao, Chong
AU - Hu, Bei
AU - Tong, Wei
AU - Shen, Ming
AU - Hu, Bingwen
N1 - Publisher Copyright:
Copyright © 2020 American Chemical Society.
PY - 2020/2/11
Y1 - 2020/2/11
N2 - Monovalent Li-substitution has been proven to be an effective strategy to resolve the pivotal problems confronted with P2-type layered Mn oxides, such as cooperative Jahn-Teller distortions of Mn3+ ions and drastic P2-(OP4)-O2 phase transformations occurring during desodiation. However, the cycling stability of most Li+-substituted P2-NaxLiyMn1-yO2 remains far from satisfactory. We herein develop a facile Ti-substitution method to improve the cyclability by taking Na0.72Li0.24Mn0.76O2 (NLMO) as an example. As expected, the novel layered oxide cathode Na0.72Li0.24Ti0.10Mn0.66O2 (NLMTO-0.1) is able to deliver a very high reversible capacity of 165 mA h g-1 for over 80 cycles within the voltage range of 1.5-4.5 V (vs Na metal), which is among the best for the reported Na-storage cathode materials. Moreover, the structure-property relationship of Ti4+ substitution is scrutinized by an arsenal of 23Na/7Li solid-state nuclear magnetic resonance, dual-mode electron paramagnetic resonance, and synchrotron X-ray diffraction techniques. The results unequivocally substantiate that Ti substitution can effectively reduce the Li+/Mn4+ ordering in TMO2 slabs, assist the reversible migration of Li+ during Na+ extraction/intercalation, and ultimately enhance the reversibility of the oxygen redox process. This work provides a comprehensive insight into the structure chemistry in developing high-capacity and high-stability layered oxide cathodes.
AB - Monovalent Li-substitution has been proven to be an effective strategy to resolve the pivotal problems confronted with P2-type layered Mn oxides, such as cooperative Jahn-Teller distortions of Mn3+ ions and drastic P2-(OP4)-O2 phase transformations occurring during desodiation. However, the cycling stability of most Li+-substituted P2-NaxLiyMn1-yO2 remains far from satisfactory. We herein develop a facile Ti-substitution method to improve the cyclability by taking Na0.72Li0.24Mn0.76O2 (NLMO) as an example. As expected, the novel layered oxide cathode Na0.72Li0.24Ti0.10Mn0.66O2 (NLMTO-0.1) is able to deliver a very high reversible capacity of 165 mA h g-1 for over 80 cycles within the voltage range of 1.5-4.5 V (vs Na metal), which is among the best for the reported Na-storage cathode materials. Moreover, the structure-property relationship of Ti4+ substitution is scrutinized by an arsenal of 23Na/7Li solid-state nuclear magnetic resonance, dual-mode electron paramagnetic resonance, and synchrotron X-ray diffraction techniques. The results unequivocally substantiate that Ti substitution can effectively reduce the Li+/Mn4+ ordering in TMO2 slabs, assist the reversible migration of Li+ during Na+ extraction/intercalation, and ultimately enhance the reversibility of the oxygen redox process. This work provides a comprehensive insight into the structure chemistry in developing high-capacity and high-stability layered oxide cathodes.
UR - https://www.scopus.com/pages/publications/85080099049
U2 - 10.1021/acs.chemmater.9b03765
DO - 10.1021/acs.chemmater.9b03765
M3 - 文章
AN - SCOPUS:85080099049
SN - 0897-4756
VL - 32
SP - 1054
EP - 1063
JO - Chemistry of Materials
JF - Chemistry of Materials
IS - 3
ER -