Nitrogen‐Doped Nanoporous Carbon/Graphene Nano‐Sandwiches: Synthesis and Application for Efficient Oxygen Reduction

Jing Wei(Monash University), Yaoxin Hu(Monash University), Yan Liang(Monash University), Biao Kong(Monash University), Jin Zhang(Curtin University), Jingchao Song(Monash University), Qiaoliang Bao(Monash University), George P. Simon(Monash University), San Ping Jiang(Curtin University), Huanting Wang(Monash University)
Advanced Functional Materials
August 13, 2015
Cited by 417Open Access
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Abstract

A zeolitic‐imidazolate‐framework (ZIF) nanocrystal layer‐protected carbonization route is developed to prepare N‐doped nanoporous carbon/graphene nano‐sandwiches. The ZIF/graphene oxide/ZIF sandwich‐like structure with ultrasmall ZIF nanocrystals (i.e., ≈20 nm) fully covering the graphene oxide (GO) is prepared via a homogenous nucleation followed by a uniform deposition and confined growth process. The uniform coating of ZIF nanocrystals on the GO layer can effectively inhibit the agglomeration of GO during high‐temperature treatment (800 °C). After carbonization and acid etching, N‐doped nanoporous carbon/graphene nanosheets are formed, with a high specific surface area (1170 m 2 g −1 ). These N‐doped nanoporous carbon/graphene nanosheets are used as the nonprecious metal electrocatalysts for oxygen reduction and exhibit a high onset potential (0.92 V vs reversible hydrogen electrode; RHE) and a large limiting current density (5.2 mA cm −2 at 0.60 V). To further increase the oxygen reduction performance, nanoporous Co‐N x /carbon nanosheets are also prepared by using cobalt nitrate and zinc nitrate as cometal sources, which reveal higher onset potential (0.96 V) than both commercial Pt/C (0.94 V) and N‐doped nanoporous carbon/graphene nanosheets. Such nanoporous Co‐N x /carbon nanosheets also exhibit good performance such as high activity, stability, and methanol tolerance in acidic media.


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