Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5148817 | Journal of Power Sources | 2017 | 9 Pages |
Abstract
In this work, commercial LiCoO2 is modified with a glassy B2O3 by solution mixing with H3BO3 followed by post-calcination in order to enhance its high-voltage electrochemical performance. The glassy B2O3 coating/additive is believed to serve as an effective physiochemical buffer and protection between LiCoO2 and liquid electrolyte, which can suppress the high-voltage induced electrolyte decomposition and active material dissolution. During the early cycling and due to the electrochemical force, the as-coated B2O3 glasses which have 3D open frameworks tend to accommodate some mobile Li+ and form a more chemically-resistant and ion-conductive lithium boron oxide (LBO) interphase as a major component of the solid electrolyte interphase (SEI), which consequently enables much easier Li+ diffusion/transfer at the solid-liquid interfaces upon further cycling. Due to the synergetic effects of B2O3 coating/modification, the high-voltage capacity and energy density of the B2O3-modified LiCoO2 cathode are promisingly improved by 35% and 30% after 100 cycles at 1Â C within 3.0-4.5Â V vs. Li/Li+. Meanwhile, the high-rate performance of the B2O3-modified electrode is even more greatly improved, showing a capacity of 105Â mAh gâ1 at 10Â C while the bare electrode has dropped to no more than 30Â mAh gâ1 under this rate condition.
Related Topics
Physical Sciences and Engineering
Chemistry
Electrochemistry
Authors
Aijun Zhou, Weihang Wang, Qin Liu, Yi Wang, Xu Yao, Fangzhu Qing, Enzhu Li, Tingting Yang, Long Zhang, Jingze Li,