Literature DB >> 32330000

Atomically Dispersed Iron-Nitrogen Sites on Hierarchically Mesoporous Carbon Nanotube and Graphene Nanoribbon Networks for CO2 Reduction.

Fuping Pan1, Boyang Li2, Erik Sarnello3, Yuhuan Fei4, Yang Gang1, Xianmei Xiang1, Zichen Du1, Peng Zhang5, Guofeng Wang2, Hoai T Nguyen3, Tao Li3,6, Yun Hang Hu4, Hong-Cai Zhou5, Ying Li1.   

Abstract

Atomically dispersed metal and nitrogen co-doped carbon (M-N/C) catalysts hold great promise for electrochemical CO2 conversion. However, there is a lack of cost-effective synthesis approaches to meet the goal of economic mass production of single-atom M-N/C with desirable carbon support architecture for efficient CO2 reduction. Herein, we report facile transformation of commercial carbon nanotube (CNT) into isolated Fe-N4 sites anchored on carbon nanotube and graphene nanoribbon (GNR) networks (Fe-N/CNT@GNR). The oxidization-induced partial unzipping of CNT results in the generation of GNR nanolayers attached to the remaining fibrous CNT frameworks, which reticulates a hierarchically mesoporous complex and thus enables a high electrochemical active surface area and smooth mass transport. The Fe residues originating from CNT growth seeds serve as Fe sources to form isolated Fe-N4 moieties located at the CNT and GNR basal plane and edges with high intrinsic capability of activating CO2 and suppressing hydrogen evolution. The Fe-N/CNT@GNR delivers a stable CO Faradaic efficiency of 96% with a partial current density of 22.6 mA cm-2 at a low overpotential of 650 mV, making it one of the most active M-N/C catalysts reported. This work presents an effective strategy to fabricate advanced atomistic catalysts and highlights the key roles of support architecture in single-atom electrocatalysis.

Entities:  

Keywords:  CO2 reduction; carbon architecture; nanoribbons; nanotubes; single-atom catalyst

Year:  2020        PMID: 32330000     DOI: 10.1021/acsnano.9b09658

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  2 in total

1.  Facile Synthesis of Fe@C Loaded on g-C3N4 for CO2 Electrochemical Reduction to CO with Low Overpotential.

Authors:  Lina Zhang; Ying Zhang; Baikang Zhu; Jian Guo; Dongguang Wang; Zhongqi Cao; Lihui Chen; Luhui Wang; Chunyang Zhai; Hengcong Tao
Journal:  ACS Omega       Date:  2022-03-24

Review 2.  Defect Engineering on Carbon-Based Catalysts for Electrocatalytic CO2 Reduction.

Authors:  Dongping Xue; Huicong Xia; Wenfu Yan; Jianan Zhang; Shichun Mu
Journal:  Nanomicro Lett       Date:  2020-10-27
  2 in total

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