V2O3/VN electrocatalysts with coherent heterogeneous interfaces for selecting low‐energy nitrogen reduction pathways

Author:

An Tae‐Yong1,Xia Chengkai2,Je Minyeong3,Lee Hyunjung1ORCID,Ji Seulgi3,Kim Min‐Cheol2,Surendran Subramani1ORCID,Han Mi‐Kyung4,Lim Jaehyoung1,Lee Dong‐Kyu1,Kim Joon Young15,Kim Tae‐Hoon6,Choi Heechae37,Kim Jung Kyu2ORCID,Sim Uk15ORCID

Affiliation:

1. Hydrogen Energy Technology Laboratory Korea Institute of Energy Technology (KENTECH) Naju Republic of Korea

2. School of Chemical Engineering Sungkyunkwan University (SKKU) Suwon Republic of Korea

3. Materials & Chemistry Group, Institute of Inorganic Chemistry University of Cologne Cologne Germany

4. Department of Polymer Engineering, Graduate School, Alan G. MacDiarmid Energy Research Institute & School of Polymer Science and Engineering Chonnam National University Gwangju Republic of Korea

5. Research Institute NEEL Sciences Jeollanamdo Republic of Korea

6. Department of Materials Science and Engineering Chonnam National University Gwangju Republic of Korea

7. Department of Chemistry Xi'an Jiaotong‐Liverpool University Suzhou China

Abstract

AbstractElectrochemical nitrogen reduction reaction (NRR) is a sustainable alternative to the Haber‒Bosch process for ammonia (NH3) production. However, the significant uphill energy in the multistep NRR pathway is a bottleneck for favorable serial reactions. To overcome this challenge, we designed a vanadium oxide/nitride (V2O3/VN) hybrid electrocatalyst in which V2O3 and VN coexist coherently at the heterogeneous interface. Since single‐phase V2O3 and VN exhibit different surface catalytic kinetics for NRR, the V2O3/VN hybrid electrocatalyst can provide alternating reaction pathways, selecting a lower energy pathway for each material in the serial NRR pathway. As a result, the ammonia yield of the V2O3/VN hybrid electrocatalyst was 219.6 µg h−1 cm−2, and the Faradaic efficiency was 18.9%, which is much higher than that of single‐phase VN, V2O3, and VNxOy solid solution catalysts without heterointerfaces. Density functional theory calculations confirmed that the composition of these hybrid electrocatalysts allows NRR to proceed from a multistep reduction reaction to a low‐energy reaction pathway through the migration and adsorption of intermediate species. Therefore, the design of metal oxide/nitride hybrids with coherent heterointerfaces provides a novel strategy for synthesizing highly efficient electrochemical catalysts that induce steps favorable for the efficient low‐energy progression of NRR.

Funder

National Research Foundation of Korea

Publisher

Wiley

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