DOI: 10.1002/smll.74952 ISSN: 1613-6810

In situ Formed Mesoporous Silver Nanowire Electrocatalysts for Efficient CO 2 Electrolysis

Jin‐Kyu Lee, Hyunbin Kim, Yu Jin Kim, Seung Hyun Jae, Seokwoo Choe, Tae Hyung Kim, Sang Woo Bae, Sang Hyun Nam, Dohun Kim, Dae‐Hyun Nam, Jungpil Kim, Youn Jeong Jang, Ho Bum Park, Seung‐Yong Lee, Young‐Hoon Kim

ABSTRACT

Electrochemical CO 2 reduction at high current densities is often limited by electrolyte flooding and competitive hydrogen evolution reaction (HER) on catalysts with insufficient surface hydrophobicity. Herein, we report organic‐ligand‐free in situ formed mesoporous Ag nanowires (Ag NWs), in which the porous architecture maintains a morphology‐driven partial‐wetting state that provides abundant electrolyte‐accessible active sites while preserving efficient CO 2 transport pathways. To achieve this structure, we develop a facile nanostructuring strategy based on sequential vapor‐phase iodination and controlled electrochemical reduction of Ag. We reveal that the reduction rate governs the growth pathway and determines the architecture of catalysts: slow reduction promotes anisotropic nanowire formation, whereas rapid reduction yields short, randomly oriented Ag nanodendrites. The in situ formed Ag NWs achieve a high CO Faradaic efficiency of 98.9% at −1.06 V vs. the reversible hydrogen electrode (RHE) and maintain stable performance for over 300 h at a current density of 100 mA cm −2 , while sustaining a low H 2 Faradaic efficiency of 2.63% even at 400 mA cm −2 . These findings demonstrate the critical role of mesoporous surface architectures in regulating interfacial wetting and CO 2 mass transport, establishing a facile and broadly applicable strategy for designing high‐performance Ag‐based CO 2 reduction electrocatalysts.

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