4.8 Article

High-Quality CoFeP Nanocrystal/N, P Dual-Doped Carbon Composite as a Novel Bifunctional Electrocatalyst for Rechargeable Zn-Air Battery

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 19, Pages 22282-22291

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c00484

Keywords

metal phosphide; bifunctional catalyst; oxygen reduction reaction; oxygen evolution reaction; rechargeable Zn-air battery

Funding

  1. Shandong Provincial Natural Science Foundation, China [ZR2019MB033, ZR2015BM002]
  2. Shandong Provincial Key Research and Development Plan, China [2017GGX40119]

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The novel composite catalyst CoFeP@C with highly efficient bifunctional performance for catalyzing OER and ORR is ideal for rechargeable Zn-air batteries. The liquid Zn-air battery shows a large power density and stable charge and discharge cycles, while the solid-state Zn-air battery demonstrates stable operation for a duration of time. This work has advanced the understanding of synergistic catalysis and paved the way for high-performance bifunctional catalysts.
A novel composite catalyst (CoFeP@C) was constructed by high-quality CoFeP nanoparticles embedded in a N, P dual-doped carbon matrix. These CoFeP nanoparticles are rich in active sites of the oxygen evolution reaction (OER) at surfaces and provide metallic conductivity in their bulk phases. The N, P dual-doped carbon matrix provided abundant active sites of the oxygen reduction reaction (ORR) and formed a conductive network substrate. The ideal composite structure endowed CoFeP@C with highly efficient bifunctional performance for catalyzing both OER and ORR, accordingly making CoFeP@C an ideal catalyst for rechargeable Zn-air batteries. The liquid Zn-air battery of CoFeP@C has achieved a large power density of 143.5 mW/cm(2) and can be charged and discharged stably for 200 h (1200 cycles). The solid-state Zn-air battery of CoFeP@C has achieved a power density of 72.6 mW/cm(2) and can stably run for 20 h. This work has deepened the understanding of synergistic catalysis and paved one way for the development of high-performance bifunctional catalysts.

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