| Literature DB >> 29432686 |
Longtao Ma1, Shengmei Chen1, Zengxia Pei1, Yan Huang2, Guojin Liang1, Funian Mo1, Qi Yang1, Jun Su3, Yihua Gao3, Juan Antonio Zapien1, Chunyi Zhi1,4.
Abstract
The exploitation of a high-efficient, low-cost, and stable non-noble-metal-based catalyst with oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) simultaneously, as air electrode material for a rechargeable zinc-air battery is significantly crucial. Meanwhile, the compressible flexibility of a battery is the prerequisite of wearable or/and portable electronics. Herein, we present a strategy via single-site dispersion of an Fe-Nx species on a two-dimensional (2D) highly graphitic porous nitrogen-doped carbon layer to implement superior catalytic activity toward ORR/OER (with a half-wave potential of 0.86 V for ORR and an overpotential of 390 mV at 10 mA·cm-2 for OER) in an alkaline medium. Furthermore, an elastic polyacrylamide hydrogel based electrolyte with the capability to retain great elasticity even under a highly corrosive alkaline environment is utilized to develop a solid-state compressible and rechargeable zinc-air battery. The creatively developed battery has a low charge-discharge voltage gap (0.78 V at 5 mA·cm-2) and large power density (118 mW·cm-2). It could be compressed up to 54% strain and bent up to 90° without charge/discharge performance and output power degradation. Our results reveal that single-site dispersion of catalytic active sites on a porous support for a bifunctional oxygen catalyst as cathode integrating a specially designed elastic electrolyte is a feasible strategy for fabricating efficient compressible and rechargeable zinc-air batteries, which could enlighten the design and development of other functional electronic devices.Entities:
Keywords: bifunctional oxygen catalyst; compressible; rechargeable; single-site active sites; solid-state; zinc−air battery
Year: 2018 PMID: 29432686 DOI: 10.1021/acsnano.7b09064
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881