Xingmei GuoShanjing LiuXiaohan WanJunhao ZhangYuanjun LiuXiangjun ZhengQinghong KongZhong Jin
Preparing advanced electrocatalysts via solid-phase reactions encounters the challenge of low controllability for multiconstituent hybridization and microstructure modulation. Herein, a hydrothermal-mimicking solid-phase system is established to fabricate novel Fe2O3/Fe5C2/Fe-N-C composites consisting of Fe2O3/Fe5C2 nanoparticles and Fe,N-doped carbon species with varying morphologies. The evolution mechanism featuring a competitive growth of different carbon sources in a closed hypoxic space is elucidated for a series of Fe2O3/Fe5C2/Fe-N-C composites. The size and dispersity of Fe2O3/Fe5C2 nanoparticles, the graphitization degree of the carbonaceous matrix, and their diverse hybridization states lead to disparate electrocatalytic behaviors for the oxygen reduction reaction (ORR). Among them, microspherical Fe2O3/Fe5C2/Fe-N-C-3 exhibits an optimal ORR performance and the as-assembled zinc-air battery shows all-round superiority to the Pt/C counterpart. This work presents a mild solid-phase fabrication technique for obtaining a variety of nanocomposites with effective control over composition hybridization and microstructural modulation, which is significantly important for the design and optimization of advanced electrocatalysts.
Ji Hye KimHyungKuk JuByeong‐Seon AnYena AnKanghee ChoSun Hyung KimYoun‐Sang BaeHyung Chul Yoon
Xingmei Guo (6790448)Shanjing Liu (12702790)Xiaohan Wan (9520061)Junhao Zhang (2539645)Yuanjun Liu (591167)Xiangjun Zheng (2453899)Qinghong Kong (8610363)Zhong Jin (1634215)
Qilong YeMengwei LiSanying HouYijie DengJunming LuoXinlong Tian
Zhantong YeYaqin QieZhipeng FanYixuan LiuZhan ShiHua Yang