Navid Noor, Clara Argentino, Ashkan Irannezhad, Amy Wuttke, Mahtab Masouminia, Anja S. B. Schouten, Katrina Pegrum, Madeline LeBreton, Reza Eslami, Shayan Angizi, Mohsen Shakouri, Alexander Bagger, Drew Higgins
The electrochemical reduction of nitrate (NO 3 – ) to ammonia (NH 3 ) offers a sustainable route for nitrogen cycle remediation and decentralized NH 3 production. In this work, we systematically investigated the impact of electronic structure and wettability in regulating the catalytic performance of molecular catalysts using functionalized iron phthalocyanines (FePc-R, R = NH 2, COOH, CN, and t -Bu) supported on carbon nanotubes. The strongly hydrophilic FePc-NH 2 /CNT (electron-donating functional group-containing) catalyst achieved a maximum Faradaic efficiency of 94.1% at −0.6 V RHE and a partial current density of 83.9 mA cm –2 toward NH 3 at −0.9 V RHE . In contrast, strongly hydrophilic FePc-COOH/CNT and weakly hydrophilic FePc-CN/CNT, containing electron-withdrawing functional groups, delivered a lower performance across all potentials. Density functional theory (DFT) calculations revealed that electron-donating functional groups elevate the Fe-center HOMO level, facilitating hydrogenation of NH x intermediates and enhancing turnover frequency. In situ X-ray absorption spectroscopy (XAS) confirmed that Fe–N 4 coordination in FePc-NH 2 /CNT remains stable across all tested potentials, while electron-withdrawing functional group-containing catalysts (FePc-COOH/CNT and FePc-CN/CNT) exhibited Fe–Fe cluster formation at −0.8 and −0.7 V RHE, respectively. Furthermore, coupled mass transport and reaction modeling indicated that more hydrophilic surfaces reduce the diffusion layer thickness, promoting NO 3 – accessibility and NH 3 formation. Together, these findings decoupled the synergistic role of electronic tuning and wettability control in governing both activity and stability, providing mechanistic design principles for molecular and heterogeneous catalysts in the reduction of electrochemical NO 3 – to NH 3 .