Bicarbonate electroreduction in cation exchange membrane-based assemblies provides a complementary route for CO2 conversion but is limited by coupled CO2 concentration and interfacial pH. Here, we design a bismuth nanoflower (Bi-NF) catalyst with interconnected channels that enhance mass transfer, regulate local pH, and facilitate CO2 diffusion. Electrochemical open-circuit potential measurements quantify interfacial pH, revealing that elevated pH promotes in situ CO2 generation, boosting selectivity and lowering cell voltage. Incorporating a hydrophilic filter membrane further extends OH– and CO2 transport pathways. The optimized Bi-NF electrode achieves nearly 100% Faradaic efficiency for formate at 50 mA cm–2 and a practical partial current density of 240 mA cm–2 at 3.5 V. These results demonstrate that combining morphology engineering with controlled mass transport is an effective strategy to enhance performance and elucidate the mechanisms of bicarbonate electrolysis.
Wang et al. (Wed,) studied this question.