4.8 Article

Stabilizing Cobalt Single Atoms via Flexible Carbon Membranes as Bifunctional Electrocatalysts for Binder-Free Zinc-Air Batteries

Journal

NANO LETTERS
Volume 22, Issue 6, Pages 2497-2505

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.2c00278

Keywords

single-atom catalysts; flexible carbon membranes; bifunctional oxygen electrocatalysis; rechargeable Zn-air batteries; electrospinning

Funding

  1. National Natural Science Foundation of China [51872156, 22075163]
  2. National Key Research Program [2020YFC2201103, 2020YFA0210702]
  3. China Postdoctoral Science Foundation [2020M670343]

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In this study, a hierarchical structure consisting of cobalt dispersed at the atomic level and carbon nanotube-linked porous carbon nanofibers was constructed via an electrospinning strategy. This structure exhibited efficient electrocatalytic activity, accessible active sites, and enhanced flexibility and mechanical strength. As a binder-free air cathode, the prepared catalysts showed superdurability and good performance in zinc-air batteries.
Single-atom catalysts with high activity and efficient atom utilization have great potential in the electrocatalysis field, especially for rechargeable zinc-air batteries (ZABs). However, it is still a serious challenge to rationally construct a single-atom catalyst with satisfactory electrocatalytic activity and long-term stability. Here, we simultaneously realize the atomic-level dispersion of cobalt and the construction of carbon nanotube (CNT)-linked N-doped porous carbon nanofibers (NCFs) via an electrospinning strategy. In this hierarchical structure, the Co-N-4 sites provide efficient oxygen reduction/evolution electrocatalytic activity, the porous architectures of NCFs guarantee the active site's accessibility, and the interior CNTs enhance the flexibility and mechanical strength of porous fibers. As a binder-free air cathode, the as-prepared catalysts deliver superdurability of 600 h at 10 mA cm(-2) for aqueous ZABs and considerable flexibility and a small voltage gap for all-solid-state ZABs. This work provides an effective single-atom design/nanoengineering for superdurable zinc-air batteries.

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