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原位生成双模板法制备 Fe/N/S 共掺杂分级多孔蜂窝状碳用于高性能氧还原。

In Situ Generated Dual-Template Method for Fe/N/S Co-Doped Hierarchically Porous Honeycomb Carbon for High-Performance Oxygen Reduction.

机构信息

Hubei Key Laboratory of Electrochemical Power Sources, Key Laboratory of Analytical Chemistry for Biology and Medicine (Ministry of Education), Department of Chemistry , Wuhan University , Wuhan 430072 , China.

出版信息

ACS Appl Mater Interfaces. 2018 Mar 14;10(10):8721-8729. doi: 10.1021/acsami.7b19645. Epub 2018 Mar 2.

Abstract

Heteroatoms doping is able to produce catalytic sites in carbon materials for oxygen reduction reaction (ORR); while hierarchically porous structure is necessary for efficient exposure and accessibility of the usually limited catalytic sites in such activated carbon catalysts. This work reports an in situ generated dual-template method to synthesize the Fe/N/S co-doped hierarchically porous carbon (FeNS/HPC), with NaCl crystallites formed during the precursor lyophilization process as the primary template to generate ∼500 nm macropores with ultrathin graphene-like carbon-layer walls, and FeO nanoparticles formed during the high-temperature carbonization process as the secondary template to produce mesopores on the walls of macropores. As well as the coexistence of graphitic-N, pyridinic-N, and thiophene-S which are beneficial to ORR, the as prepared FeNS/HPC possesses a highly graphitized and interconnected hierarchical porous structure, giving a specific surface area as high as 938 m g. As a consequence, it exhibits excellent four-electron oxygen reduction performance in both alkaline and acid electrolytes. The in situ generation and facile solution removal make the present template method a promising way for scale-up preparation of active porous carbon materials for various applications.

摘要

杂原子掺杂能够在碳材料中产生用于氧还原反应(ORR)的催化位点;而分级多孔结构对于有效暴露和接近通常在这种活性炭催化剂中有限的催化位点是必要的。本工作报道了一种原位生成的双模板法来合成 Fe/N/S 共掺杂的分级多孔碳(FeNS/HPC),在前驱体冷冻干燥过程中形成的 NaCl 晶体作为主要模板,生成具有超薄类石墨烯碳层壁的 ∼500nm 大孔,在高温碳化过程中形成的 FeO 纳米颗粒作为二次模板,在大孔的壁上产生介孔。此外,所制备的 FeNS/HPC 还具有有利于 ORR 的石墨-N、吡啶-N 和噻吩-S 的共存,具有高度石墨化和互联的分级多孔结构,比表面积高达 938 m2 g-1。因此,它在碱性和酸性电解质中均表现出优异的四电子氧还原性能。原位生成和易于去除的模板使得这种模板法成为一种很有前途的用于各种应用的活性多孔碳材料的规模化制备方法。

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