Changfei Jing, Hao Zhang, Quan Zhang, Zhensui Lu, Longchao Zhuo, Shanshan Chen, Yongji Qin, Jun Luo, Peipei Jia
The unique advantages of single-atom catalysts (SACs), including exceptional atom utilization efficiency, distinctive quantum confinement effects, and precisely modifiable electronic configurations, have established them as a leading frontier in electrocatalysis research. These properties make SACs promising candidates for the oxygen reduction reaction (ORR). Nevertheless, the present research predominantly concentrates on single-pH environments, with scarce reports addressing the development of dual-environment catalysts capable of maintaining high performance across both acidic and alkaline conditions. In this investigation, a highly dispersed iron single-atom catalyst (FeSA) was synthesized via a facile pyrolysis strategy using a zeolitic imidazolate framework-8 (ZIF-8) precursor and dopamine as the nitrogen/carbon source. The resultant FeSA demonstrated remarkable ORR catalytic performance, exhibiting half-wave potentials ( E 1/2 ) of 0.85 V (vs RHE in 0.5 M H 2 SO 4 ) and 0.88 V (vs RHE in 0.1 M KOH), respectively. When implemented in zinc-air battery (ZAB) systems, the catalyst exhibited a superior electrochemical performance, achieving a specific capacity of 790 mAh g Zn –1 and a peak power density of 221 mW cm –2 . These findings highlight the catalyst’s potential for useful applications in systems for converting and storing renewable energy. The dual-environment catalytic capability of this FeSA material represents a significant advancement for single-atom electrocatalysis, addressing a critical gap in current catalyst design paradigms.