Xie Haifang, Du Bing, Huang Xiaoxi, Zeng Dahai, Meng Hui, Lin Huaijun, Li Wei, Asefa Tewodros, Meng Yuying
Institute of Advanced Wear & Corrosion Resistant and Functional Materials, Jinan University, 601 Huangpu Avenue West, Guangzhou, 510632, China.
College of Materials Science and Engineering, Shenzhen University, 1066 Xueyuan Avenue, Shenzhen, 518060, China.
Small. 2023 Aug;19(32):e2303214. doi: 10.1002/smll.202303214. Epub 2023 May 12.
It remains a challenge to develop efficient noble metal-free electrocatalysts for the oxygen reduction reaction (ORR) in various renewable energy systems. Single atom catalysts have recently drawn great attention as promising candidates both due to their high activity and their utmost atom utilization for electrocatalytic ORR. Herein, the synthesis of an efficient ORR electrocatalyst that is composed of N-doped mesoporous carbon and a high density (4.05 wt%) of single Fe atoms via pyrolysis Fe-conjugated polymer is reported. Benefiting from the abundant atomic Fe-N sites on its conductive, mesoporous carbon structures, this material exhibits an excellent electrocatalytic activity for ORR, with positive onset potentials of 0.93 and 0.98 V in acidic and alkaline media, respectively. Its electrocatalytic performance for ORR is also comparable to that of Pt/C (20 wt%) in both media. Furthermore, it electrocatalyzes the reaction almost fully to H O (or barely to H O ). Additionally, it is durable and tolerates the methanol crossover reaction well. Furthermore, a proton exchange membrane fuel cell and a zinc-air battery assembled using it on their cathode deliver high maximum power densities (320 and 91 mW cm , respectively). Density functional theory calculation reveals that the material's decent electrocatalytic performance for ORR is due to its atomically dispersed Fe-N sites.
在各种可再生能源系统中开发用于氧还原反应(ORR)的高效无贵金属电催化剂仍然是一项挑战。单原子催化剂最近作为有前景的候选材料受到了极大关注,这是由于它们具有高活性以及在电催化ORR中极高的原子利用率。在此,报道了通过热解铁共轭聚合物合成一种由氮掺杂介孔碳和高密度(4.05 wt%)的单铁原子组成的高效ORR电催化剂。受益于其导电介孔碳结构上丰富的原子Fe-N位点,这种材料对ORR表现出优异的电催化活性,在酸性和碱性介质中的起始电位分别为0.93和0.98 V。在两种介质中,其对ORR的电催化性能也与20 wt%的Pt/C相当。此外,它几乎能将反应完全电催化为H₂O(或几乎不产生H₂O₂)。此外,它耐用且对甲醇交叉反应耐受性良好。此外,在其阴极使用该材料组装的质子交换膜燃料电池和锌空气电池分别具有高的最大功率密度(分别为320和91 mW cm⁻²)。密度泛函理论计算表明,该材料对ORR具有良好的电催化性能是由于其原子分散的Fe-N位点。