Two‐dimensional Cu Plates with Steady Fluid Fields for High‐rate Nitrate Electroreduction to Ammonia and Efficient Zn‐Nitrate Batteries

Author:

Zhou Limin1,Chen Xueqiu1,Zhu Shaojun1,You Kun1,Wang Zheng‐Jun1,Fan Ru1,Li Jun12,Yuan Yifei1,Wang Xin3,Wang Jichang4,Chen Yihuang1,Jin Huile12,Wang Shun12ORCID,Lv Jing‐Jing1

Affiliation:

1. Zhejiang Province Key Lab of Leather Engineering, College of Chemistry and Materials Engineering Wenzhou University Wenzhou, Zhejiang 325000 China

2. Zhejiang Engineering Research Center for Electrochemical Energy Materials and Devices Institute of New Materials and Industrial Technologies Wenzhou, Zhejiang 325035 China

3. Department of Chemistry City University of Hong Kong Hong Kong 999077 China

4. Department of Chemistry and Biochemistry University of Windsor Windsor M4Y1M7 Canada

Abstract

AbstractNitrate electroreduction reaction (eNO3RR) to ammonia (NH3) provides a promising strategy for nitrogen utilization, while achieving high selectivity and durability at an industrial scale has remained challenging. Herein, we demonstrated that the performance of eNO3RR could be significantly boosted by introducing two‐dimensional Cu plates as electrocatalysts and eliminating the general carrier gas to construct a steady fluid field. The developed eNO3RR setup provided superior NH3 Faradaic efficiency (FE) of 99 %, exceptional long‐term electrolysis for 120 h at 200 mA cm−2, and a record‐high yield rate of 3.14 mmol cm−2 h−1. Furthermore, the proposed strategy was successfully extended to the Zn‐nitrate battery system, providing a power density of 12.09 mW cm−2 and NH3 FE of 85.4 %, outperforming the state‐of‐the‐art eNO3RR catalysts. Coupled with the COMSOL multiphysics simulations and in situ infrared spectroscopy, the main contributor for the high‐efficiency NH3 production could be the steady fluid field to timely rejuvenate the electrocatalyst surface during the electrocatalysis.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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