| Literature DB >> 27172485 |
Jian-Gan Wang1, Dandan Jin1, Rui Zhou1, Xu Li2, Xing-Rui Liu1, Chao Shen1, Keyu Xie1, Baohua Li2, Feiyu Kang2, Bingqing Wei1,3.
Abstract
Advanced electrode design is crucial in the rapid development of flexible energy storage devices for emerging flexible electronics. Herein, we report a rational synthesis of graphene/Mn3O4 nanocomposite membranes with excellent mechanical flexibility and Li-ion storage properties. The strong interaction between the large-area graphene nanosheets and long Mn3O4 nanowires not only enables the membrane to endure various mechanical deformations but also produces a strong synergistic effect of enhanced reaction kinetics by providing enlarged electrode/electrolyte contact area and reduced electron/ion transport resistance. The mechanically robust membrane is explored as a freestanding anode for Li-ion batteries, which delivers a high specific capacity of ∼800 mAh g(-1) based on the total electrode mass, along with superior high-rate capability and excellent cycling stability. A flexible full Li-ion battery is fabricated with excellent electrochemical properties and high flexibility, demonstrating its great potential for high-performance flexible energy storage devices.Entities:
Keywords: Mn3O4; flexible Li-ion batteries; graphene; high performance; nanocomposite
Year: 2016 PMID: 27172485 DOI: 10.1021/acsnano.6b02319
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881