| Literature DB >> 27959573 |
Xuanpeng Wang1, Xiaoming Xu1, Chaojiang Niu1, Jiashen Meng1, Meng Huang1, Xiong Liu1, Ziang Liu1, Liqiang Mai1.
Abstract
K-ion battery (KIB) is a new-type energy storage device that possesses potential advantages of low-cost and abundant resource of K precursor materials. However, the main challenge lies on the lack of stable materials to accommodate the intercalation of large-size K-ions. Here we designed and constructed a novel earth abundant Fe/Mn-based layered oxide interconnected nanowires as a cathode in KIBs for the first time, which exhibits both high capacity and good cycling stability. On the basis of advanced in situ X-ray diffraction analysis and electrochemical characterization, we confirm that interconnected K0.7Fe0.5Mn0.5O2 nanowires can provide stable framework structure, fast K-ion diffusion channels, and three-dimensional electron transport network during the depotassiation/potassiation processes. As a result, a considerable initial discharge capacity of 178 mAh g-1 is achieved when measured for KIBs. Besides, K-ion full batteries based on interconnected K0.7Fe0.5Mn0.5O2 nanowires/soft carbon are assembled, manifesting over 250 cycles with a capacity retention of ∼76%. This work may open up the investigation of high-performance K-ion intercalated earth abundant layered cathodes and will push the development of energy storage systems.Entities:
Keywords: Fe/Mn-based layered oxide; Interconnected nanowires; K-ion full batteries; high-capacity; in situ X-ray diffraction; superior cycling stability
Year: 2016 PMID: 27959573 DOI: 10.1021/acs.nanolett.6b04611
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189