TY - JOUR
T1 - Hierarchical superwetting electrodes with tunable triphase interface for efficient ammonia synthesis
AU - Li, Lu
AU - Li, Honghao
AU - Gao, Jinxin
AU - Li, Ke
AU - Li, Yuliang
AU - Zhang, Chunyu
AU - Li, Linyang
AU - Zhang, Xiaofang
AU - Jiang, Lei
AU - Tian, Dongliang
N1 - Publisher Copyright:
© 2026 Elsevier Inc.
PY - 2026/6/3
Y1 - 2026/6/3
N2 - Electrocatalytic nitrogen reduction reaction (NRR) offers a promising alternative to the Haber-Bosch process. However, its efficiency is critically limited by poor gas diffusion and competing adsorption of H2O/H∗ intermediates. Herein, we develop a universal hierarchical micro-/nano-structuring strategy to overcome these challenges by constructing superwetting micro-cavity electrodes with a tunable triphase interface. It enhances multidimensional gas diffusion to enrich local N2 while regulating interfacial coverage of H2O/H∗ intermediates, thereby shifting the reaction pathway toward NRR. Consequently, compared with conventional electrodes, the Faradaic efficiency increases by over an order of magnitude—from 2.47% to 29.37% at 0 V vs. RHE. Mechanistic investigations reveal that micro-cavity electrodes with a Wenzel-Cassie coexistence state modulate N2/H2O transport, promoting N2 diffusion and suppressing hydrogen evolution to establish an optimized localized triphase microenvironment for NRR. This work integrates interfacial engineering with hierarchical micro-/nano-engineering, offering a sustainable approach for addressing critical challenges in renewable nitrogen fixation.
AB - Electrocatalytic nitrogen reduction reaction (NRR) offers a promising alternative to the Haber-Bosch process. However, its efficiency is critically limited by poor gas diffusion and competing adsorption of H2O/H∗ intermediates. Herein, we develop a universal hierarchical micro-/nano-structuring strategy to overcome these challenges by constructing superwetting micro-cavity electrodes with a tunable triphase interface. It enhances multidimensional gas diffusion to enrich local N2 while regulating interfacial coverage of H2O/H∗ intermediates, thereby shifting the reaction pathway toward NRR. Consequently, compared with conventional electrodes, the Faradaic efficiency increases by over an order of magnitude—from 2.47% to 29.37% at 0 V vs. RHE. Mechanistic investigations reveal that micro-cavity electrodes with a Wenzel-Cassie coexistence state modulate N2/H2O transport, promoting N2 diffusion and suppressing hydrogen evolution to establish an optimized localized triphase microenvironment for NRR. This work integrates interfacial engineering with hierarchical micro-/nano-engineering, offering a sustainable approach for addressing critical challenges in renewable nitrogen fixation.
KW - ammonia synthesis
KW - hierarchical micro-/nano-engineering
KW - multiscale microenvironment
KW - superwetting electrodes
KW - tunable triphase interface
UR - https://www.scopus.com/pages/publications/105034182711
U2 - 10.1016/j.matt.2026.102753
DO - 10.1016/j.matt.2026.102753
M3 - 文章
AN - SCOPUS:105034182711
SN - 2590-2393
VL - 9
JO - Matter
JF - Matter
IS - 6
M1 - 102753
ER -