Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7725012 | Journal of Power Sources | 2018 | 7 Pages |
Abstract
In order to improve the rate performance of MoO3, a novel MoO3 nanobelt with tiny grains on surface (named as d-MoO3) is fabricated via one-step facile hydrothermal method with citric acid adding, in which citric acid (CA) serves as a weak reductant as well as surface modification agent. When tested as an anode in LIBs, d-MoO3 displays an improved discharge capacity of 787â¯mAh·gâ1 at 0.1â¯Aâ¯gâ1 over 100 cycles with capacity retention of â¼91% while MoO3 decays to 50â¯mAh·gâ1 in the 100th cycle. Notably, d-MoO3 delivers enhanced rate capability (536 and 370â¯mAh·gâ1 at high rates of 5 and 10â¯Aâ¯gâ1 respectively). We consider these excellent electrochemical properties of d-MoO3 electrode are associated with the tiny grains on MoO3 surface, which effectively maintains the electrode's structural integrity. Even though d-MoO3 nanobelt suffers from a degree of in-situ pulverization after several cycles, these pulverized active particles can still maintain stable electrochemical contact and are highly exposed to electrolyte, realizing ultrahigh eâ/Li+ diffusion kinetics. In addition, part extrinsic pseudocapacitance contribution to the Li+ storage also explains the high-rate performance. Combining all these merits, d-MoO3 is potentially a high-energy, high-power and well-stable anode material for Li ion batteries (LIBs).
Keywords
Related Topics
Physical Sciences and Engineering
Chemistry
Electrochemistry
Authors
Liyun Cao, Juju He, Jiayin Li, Jingwen Yan, Jianfeng Huang, Ying Qi, Liangliang Feng,