Askari Saeed, Dwivedi Swarit, Alivand Masood S, Lim Kang Hui, Biniaz Parisa, Zavabeti Ali, Kawi Sibudjing, Hill Matthew R, van Duin Adri C T, Tanksale Akshat, Majumder Mainak, Chakraborty Banerjee Parama
Department of Chemical and Biological Engineering, Monash University, Clayton, Victoria, 3800, Australia.
Department of Chemical and Biomolecular Engineering, National University of Singapore, 4 Engineering Drive 4, Singapore, 117585, Singapore.
Small. 2025 Mar;21(10):e2411574. doi: 10.1002/smll.202411574. Epub 2025 Jan 29.
Cobalt single-atom catalysts (SACs) have the potential to act as bi-functional electrocatalysts for the oxygen-redox reactions in metal-air batteries. However, achieving both high performance and stability in these SACs has been challenging. Here, a novel and facile synthesis method is used to create cobalt-doped-nitrogen-carbon structures (Co-N-C) containing cobalt-SACs by carbonizing a modified ZIF-11. HAADF-STEM images and EXAFS spectra confirmed that the structure with the lowest cobalt concentration contains single cobalt atoms coordinated with four nitrogen atoms (Co-N₄). Electrochemical tests showed that this electrocatalyst performed exceptionally well in both oxygen reduction reaction (ORR) (E1/2 ≈ 0.859 V) and oxygen evolution reaction (OER) (Ej = 10: 1.544 V), with excellent stability. When used as a bi-functional electrocatalyst in the air cathode of a rechargeable zinc-air battery (ZAB), a peak power density of 178.6.1 mW cm, a specific capacity of 799 mA h g and a cycle-life of 1580 is achieved. Density functional theory (DFT) calculations revealed that the concentration and the position of the pyridinic nitrogen with Co play a critical role in determining the overpotential of this electrocatalyst for oxygen-redox reactions. The unprecedented performance of this electrocatalyst can bring paradigm changes in the practical realization and application of metal-air batteries.
钴单原子催化剂(SACs)有潜力作为双功能电催化剂用于金属空气电池中的氧氧化还原反应。然而,要使这些SACs同时具备高性能和稳定性一直具有挑战性。在此,采用一种新颖且简便的合成方法,通过碳化改性的ZIF-11来制备含钴单原子催化剂的钴掺杂氮碳结构(Co-N-C)。高角度环形暗场扫描透射电子显微镜(HAADF-STEM)图像和扩展X射线吸收精细结构(EXAFS)光谱证实,钴浓度最低的结构包含与四个氮原子配位的单个钴原子(Co-N₄)。电化学测试表明,这种电催化剂在氧还原反应(ORR)(E1/2≈0.859 V)和析氧反应(OER)(Ej = 10:1.544 V)中均表现出色,且具有优异的稳定性。当用作可充电锌空气电池(ZAB)空气阴极中的双功能电催化剂时,实现了178.6.1 mW cm的峰值功率密度、799 mA h g的比容量和1580次的循环寿命。密度泛函理论(DFT)计算表明,吡啶型氮与钴的浓度和位置在决定该电催化剂氧氧化还原反应的过电位方面起着关键作用。这种电催化剂前所未有的性能可为金属空气电池的实际实现和应用带来范式转变。