Electron Reservoir Effect of Adjacent Fe Nanoclusters Boosts Atomic Fe Active Sites on Porous Carbon for the Both Electrocatalytic Oxygen Reduction and CO2 Reduction Reaction

Author:

He Jiaxin1,Xu Li1,Qin Chenchen1,Zhang Jian1,Liu Daomeng1,Li Qingyi1,Feng Ziyi1,Wang Junzhong1,Liu Peigen2,Li Hongbao1,Yang Zhengkun1ORCID

Affiliation:

1. Institutes of Physical Science and Information Technology Anhui Graphene Carbon Fiber Materials Research Center Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education Anhui University Hefei 230601 China

2. National Synchrotron Radiation Laboratory (NSRL) University of Science and Technology of China Hefei Anhui 230029 P. R. China

Abstract

AbstractElectrochemical oxygen reduction reaction (ORR) and carbon dioxide reduction reaction (CO2RR) are greatly significant in renewable energy‐related devices and carbon‐neutral closed cycle, while the development of robust and highly efficient electrocatalysts has remained challenges. Herein, a hybrid electrocatalyst, featuring axial N‐coordinated Fe single atom sites on hierarchically N, P‐codoped porous carbon support and Fe nanoclusters as electron reservoir (FeNCs/FeSAs‐NPC), is fabricated via in situ thermal transformation of the precursor of a supramolecular polymer initiated by intermolecular hydrogen bonds co‐assembly. The FeNCs/FeSAs‐NPC catalyst manifests superior oxygen reduction activity with a half‐wave potential of 0.91 V in alkaline solution, as well as high CO2 to CO Faraday efficiency (FE) of surpassing 90% in a wide potential window from −0.40 to −0.85 V, along with excellent electrochemical durability. Theoretical calculations indicate that the electron reservoir effect of Fe nanoclusters can trigger the electron redistribution of the atomic Fe moieties, facilitating the activation of O2 and CO2 molecules, lowering the energy barriers for rate‐determining step, and thus contributing to the accelerated ORR and CO2RR kinetics. This work offers an effective design of electron coupling catalysts that have advanced single atoms coexisting with nanoclusters for efficient ORR and CO2RR.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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