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G-CN助力MOF衍生出超高铁氮比例,用于可充电锌空气电池的单原子催化剂中,实现创纪录的0.615 V低过电位。

G-CN Facilitates MOF-Derived with an Ultra-High Fe-N Proportion for a Record-Low ΔE of 0.615 V in Single-Atom Catalyst for Rechargeable Zinc-Air Batteries.

作者信息

Zhong Yuehao, Yuan Xiaoliang, Chen Xi, Li Jiling, Gu Jiajun, Ma Jianbo, Gu Lin, Liu Dingxin

机构信息

State Key Laboratory of Optoelectronic Materials and Technologies, Nanotechnology Research Center, School of Materials Science & Engineering, Sun Yat-sen University, Guangzhou, Guangdong, 510275, P. R. China.

Beijing National Center for Electron Microscopy and Laboratory of Advanced Materials, Department of Materials Science and Engineering, Tsinghua University, Beijing, 100084, P. R. China.

出版信息

Small. 2025 Aug;21(31):e2504194. doi: 10.1002/smll.202504194. Epub 2025 Jun 11.

Abstract

In this study, an ultra-high Fe-N proportion single-atom catalyst (g-Fe SAC) was synthesized on nitrogen-doped porous carbon using ZIF-7-NH as the precursor material. Comprehensive characterization via spherical aberration corrected transmission electron microscope (AC-TEM) and extended X-ray absorption fine structure (EXAFS) confirmed atomic dispersion of Fe species and dominant Fe-N coordination configurations. Density functional theory (DFT) analyses demonstrated that thermally metastable FeN/FeN intermediates undergo structural evolution into stabilized FeN motifs through interfacial interactions with g-CN-derived molecular frameworks. The Fe-N coordination environment demonstrates pronounced electron localization, resulting in a down shift of the D-band center phenomenon, which facilitates efficient electron transfer and optimizes the rate-determining step in both OER (O → OOH) and ORR (OH → OH). The potential difference ΔE is as low as 615 mV which represents the most recent record in single atom catalysis, and there are still three reported catalysts that exhibit superior performance compared to this work. However, when assembled into a battery, compared with the FeNC@LDH and FeCo-NO, this study shows better results in terms of the number of cycles (1200 cycles) at 10 mA·cm, and the reported peak power density of Bi-cat is also inferior to that observed in this research (222.39 mW cm) meanwhile.

摘要

在本研究中,以ZIF-7-NH为前驱体材料,在氮掺杂多孔碳上合成了一种超高Fe-N比例的单原子催化剂(g-Fe SAC)。通过球差校正透射电子显微镜(AC-TEM)和扩展X射线吸收精细结构(EXAFS)进行的综合表征证实了铁物种的原子分散以及主要的Fe-N配位构型。密度泛函理论(DFT)分析表明,热亚稳的FeN/FeN中间体通过与g-CN衍生的分子框架的界面相互作用经历结构演变成稳定的FeN基序。Fe-N配位环境表现出明显的电子局域化,导致D带中心现象下移,这有利于有效的电子转移并优化了OER(O→OOH)和ORR(OH→OH)中的速率决定步骤。电位差ΔE低至615 mV,这代表了单原子催化的最新记录,并且仍有三种报道的催化剂表现出比本工作更优异的性能。然而,当组装成电池时,与FeNC@LDH和FeCo-NO相比,本研究在10 mA·cm下的循环次数(1200次循环)方面显示出更好的结果,同时报道的双催化剂的峰值功率密度也低于本研究中观察到的(222.39 mW cm)。

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