Issue 5, 2024

A Cu hollow fiber with coaxially grown Bi nanosheet arrays as an integrated gas-penetrable electrode enables high current density and durable formate electrosynthesis

Abstract

While high current density formate (HCOO) electrosynthesis from CO2 reduction has been achieved in a flow cell assembly, the inevitable flooding and salt precipitation of traditional gas-diffusion electrodes (GDEs) severely limit the overall energy efficiency and stability. In this work, an integrated gas-penetrable electrode (GPE) for HCOO electrosynthesis was developed by coaxially growing vertically aligned high density Bi nanosheet arrays on a porous Cu hollow fiber (Bi NSAs@Cu HF) via controllable galvanic replacement. The interior porous Cu HF serves as a robust gas-penetrable and conductive host for continuously delivering CO2 gas to surface-anchored Bi NSAs, resulting in numerous well-balanced triphase active interfaces for the electrocatalytic CO2 reduction reaction (CO2RR). The most active Bi NSAs@Cu HF GPE exhibits a high HCOO faradaic efficiency (FEHCOO) of over 80% in a wide potential window (330 mV) with a linearly increased partial current density (jHCOO) up to −261.6 mA cm−2 at −1.11 V vs. the reversible hydrogen electrode (RHE). The Bi NSAs@Cu HF GPE also sustains a FEHCOO of >80% at a high total current density of −300 mA cm−2, corresponding to a jHCOO of >−240 mA cm−2, for more than 60 h. This work provides new perspectives on designing efficient and durable integrated GPEs for a sustainable CO2RR on a large scale.

Graphical abstract: A Cu hollow fiber with coaxially grown Bi nanosheet arrays as an integrated gas-penetrable electrode enables high current density and durable formate electrosynthesis

Supplementary files

Article information

Article type
Communication
Submitted
25 Nov 2023
Accepted
21 Dec 2023
First published
21 Dec 2023

Nanoscale, 2024,16, 2295-2302

A Cu hollow fiber with coaxially grown Bi nanosheet arrays as an integrated gas-penetrable electrode enables high current density and durable formate electrosynthesis

Z. Meng, F. Wang, Z. Zhang and S. Min, Nanoscale, 2024, 16, 2295 DOI: 10.1039/D3NR05982K

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