4.7 Article

Engineering solid-liquid-gas interfaces of single-atom cobalt catalyst for enhancing the robust stability of neutral Zn-air batteries under high current density

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 433, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2021.133685

Keywords

Oxygen reduction reaction; Solid-liquid -gas interface; Single atom catalysts; Neutral Zn-air batteries; High current density

Funding

  1. National Natural Science Foundation of China [21775142]
  2. Sino-German Center for Research Promotion [GZ 1351]
  3. Natural Science Foundation of Shan-dong Province [ZR2020ZD10]
  4. Deputyship for Research &Innovation, Ministry of Education in Saudi Arabia [510]
  5. Research Funds for the Central Universities [202061031]

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This study presents a rational design of an efficient catalyst for achieving the long-term stability of neutral Zn-air batteries (ZABs) at high current density by synthesizing a catalyst with multimodally porous structure and single Co atoms embedded in N-doped dual-carbon architecture. The catalyst possesses stable three-phase interfaces, allowing for fast electron transfer, accelerated oxygen/electrolyte diffusion, and timely water removal. The neutral ZABs based on this catalyst exhibit excellent performance and robust stability under high current density.
To simultaneously achieve high power density and robust stability under high current density for neutral Zn-air batteries (ZABs), it is significant yet still remains challenging for the rational design of advanced air-cathode electrocatalyst with fast electron transfer, rapid oxygen/electrolyte transport and timely water removal. Herein, we synthesized the single Co atoms embedded in sandwich-like multimodally porous N-doped dual-carbon architecture (denoted as the NMCS-rGO-Co) via a facile self-assembly method and subsequent pyrolysis strategy. By taking advantage of abundant Co-N4 active sites and the optimized multimodally porous structure, the obtained NMCS-rGO-Co catalyst possesses stable three-phase reaction interfaces (catalysts, electrolyte and oxygen), which could be beneficial to simultaneously achieving fast electron transfer, accelerated oxygen/electrolyte diffusion and timely water removal. In response, the NMCS-rGO-Co catalyst displays excellent ORR performance in neutral electrolyte. More importantly, the NMCS-rGO-Co-based neutral ZABs exhibit the robust stability accompanied with continuously discharging for 36 h under high current density of 50 mA cm-2. This is the first time to rationally design efficient catalysts for achieving the long-term stability of neutral ZABs at high current density from the perspective of constructing stable three-phase interfaces. This work also sheds new lights on the development of neutral ORR catalysts for the application of sustainable energy conversion technologies. Superscript/Subscript Available

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