| Literature DB >> 34138305 |
Qifei Li1, Xianhong Rui2,3, Dong Chen1, Yuezhan Feng4, Ni Xiao5, Liyong Gan6, Qi Zhang1, Yan Yu7,8,9, Shaoming Huang10.
Abstract
Given the advantages of being abundant in resources, environmental benign and highly safe, rechargeable zinc-ion batteries (ZIBs) enter the global spotlight for their potential utilization in large-scale energy storage. Despite their preliminary success, zinc-ion storage that is able to deliver capacity > 400 mAh g-1 remains a great challenge. Here, we demonstrate the viability of NH4V4O10 (NVO) as high-capacity cathode that breaks through the bottleneck of ZIBs in limited capacity. The first-principles calculations reveal that layered NVO is a good host to provide fast Zn2+ ions diffusion channel along its [010] direction in the interlayer space. On the other hand, to further enhance Zn2+ ion intercalation kinetics and long-term cycling stability, a three-dimensional (3D) flower-like architecture that is self-assembled by NVO nanobelts (3D-NVO) is rationally designed and fabricated through a microwave-assisted hydrothermal method. As a result, such 3D-NVO cathode possesses high capacity (485 mAh g-1) and superior long-term cycling performance (3000 times) at 10 A g-1 (~ 50 s to full discharge/charge). Additionally, based on the excellent 3D-NVO cathode, a quasi-solid-state ZIB with capacity of 378 mAh g-1 is developed.Entities:
Keywords: Ammonium vanadate; NH4V4O10; Zinc-ion battery
Year: 2020 PMID: 34138305 DOI: 10.1007/s40820-020-0401-y
Source DB: PubMed Journal: Nanomicro Lett ISSN: 2150-5551