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Journal ArticleDOI

Defect Engineering toward Atomic Co–Nx–C in Hierarchical Graphene for Rechargeable Flexible Solid Zn-Air Batteries

Cheng Tang, +3 more
- 01 Oct 2017 - 
- Vol. 29, Iss: 37, pp 1703185
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TLDR
This work demonstrates the direct utilization of the intrinsic structural defects in nanocarbon to generate atomically dispersed Co-Nx -C active sites via defect engineering and provides a new concept and effective methodology for the full utilization ofnanocarbon materials with various structural features and further development of advanced energy materials.
Abstract
Rechargeable flexible solid Zn-air battery, with a high theoretical energy density of 1086 Wh kg−1, is among the most attractive energy technologies for future flexible and wearable electronics; nevertheless, the practical application is greatly hindered by the sluggish oxygen reduction reaction/oxygen evolution reaction (ORR/OER) kinetics on the air electrode. Precious metal-free functionalized carbon materials are widely demonstrated as the most promising candidates, while it still lacks effective synthetic methodology to controllably synthesize carbocatalysts with targeted active sites. This work demonstrates the direct utilization of the intrinsic structural defects in nanocarbon to generate atomically dispersed Co–Nx–C active sites via defect engineering. As-fabricated Co/N/O tri-doped graphene catalysts with highly active sites and hierarchical porous scaffolds exhibit superior ORR/OER bifunctional activities and impressive applications in rechargeable Zn-air batteries. Specifically, when integrated into a rechargeable and flexible solid Zn-air battery, a high open-circuit voltage of 1.44 V, a stable discharge voltage of 1.19 V, and a high energy efficiency of 63% at 1.0 mA cm−2 are achieved even under bending. The defect engineering strategy provides a new concept and effective methodology for the full utilization of nanocarbon materials with various structural features and further development of advanced energy materials.

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Citations
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Journal ArticleDOI

Active Salt/Silica-Templated 2D Mesoporous FeCo-Nx -Carbon as Bifunctional Oxygen Electrodes for Zinc-Air Batteries.

TL;DR: This work creates a new pathway to fabricate 2D meso/microporous structured carbon architectures for bifunctional oxygen electrodes in rechargeable Zn-air battery as well as opens avenues to the scale-up production of rationally designed heteroatom-doped catalytic materials for a broad range of applications.
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N-doped porous carbon nanosheets as pH-universal ORR electrocatalyst in various fuel cell devices

TL;DR: In this paper, a template-free, economic and environment-friendly strategy for scalable synthesis of hierarchical porous carbon nanosheets (N-HPCNSs) with biomass water lettuces as carbon precursor was reported.
Journal ArticleDOI

Atomically dispersed metal catalysts for the oxygen reduction reaction: synthesis, characterization, reaction mechanisms and electrochemical energy applications

TL;DR: In this paper, the authors comprehensively discuss the recent developments in advanced single-atom and dual-atom metal catalysts for the oxygen reduction reaction (ORR), including synthesis and characterization, reaction mechanisms and energy applications such as in fuel cells and metal-air batteries.
Journal ArticleDOI

The Kirkendall Effect for Engineering Oxygen Vacancy of Hollow Co 3 O 4 Nanoparticles toward High-Performance Portable Zinc-Air Batteries

TL;DR: This work demonstrates the tuning of oxygen vacancy in the embedded hollow cobaltosic oxide (Co3O4) nanoparticles through the regulation of nanoscale Kirkendall effect, and provides a new strategy to explore advanced catalysts with controllable vacancy defects and desired nano-/micro-structures.
Journal ArticleDOI

A review of nanocarbons in energy electrocatalysis: Multifunctional substrates and highly active sites

TL;DR: NanocCarbons are of progressively increasing importance in energy electrocatalysis, including oxygen reduction, oxygen evolution, hydrogen evolution, CO2 reduction, etc. as mentioned in this paper gives an in-depth digestion of present achievements, focusing on the different roles of nanocarbons and material design principles.
References
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Journal ArticleDOI

Nitrogen-doped carbon nanotube arrays with high electrocatalytic activity for oxygen reduction.

TL;DR: It is reported that vertically aligned nitrogen-containing carbon nanotubes (VA-NCNTs) can act as a metal-free electrode with a much better electrocatalytic activity, long-term operation stability, and tolerance to crossover effect than platinum for oxygen reduction in alkaline fuel cells.
PatentDOI

Metal-free bifunctional electrocatalyst for oxygen reduction and oxygen evolution reactions

TL;DR: A mesoporous carbon foam co-doped with nitrogen and phosphorus that has a large surface area and good electrocatalytic properties for both ORR and OER and is tested as an air electrode for primary and rechargeable Zn-air batteries.
Journal ArticleDOI

Metal–air batteries: from oxygen reduction electrochemistry to cathode catalysts

TL;DR: The battery electrochemistry and catalytic mechanism of oxygen reduction reactions are discussed on the basis of aqueous and organic electrolytes, and the design and optimization of air-electrode structure are outlined.
Journal ArticleDOI

Metal–Air Batteries with High Energy Density: Li–Air versus Zn–Air

TL;DR: Li-air and Zn-air batteries have been studied extensively in the past decade as mentioned in this paper, with the aim of providing a better understanding of the new electrochemical systems, and metal-air battery with conversion chemistry is a promising candidate.
Journal ArticleDOI

Recent advances in zinc–air batteries

TL;DR: The fundamentals, challenges, and latest exciting advances related to zinc-air research are presented, and the detrimental effect of CO2 on battery performance is emphasized, and possible solutions summarized.
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