DOI: 10.1021/acsanm.6c03480 ISSN: 2574-0970

Dual-Site Relay Catalysis over La2O3-Engineered Pd Nanostructure for Additive-Free and CO-Free Hydrogen Release from Formic Acid

Yifan Xu, Xin Zhang, Yiwei Yang, Yinheng Zhao, Chenggen Li, Jiaqin Zhang, Fei Wu, Ming Yang, Yuan Dong

Abstract

Formic acid (FA), when derived from captured CO2 and renewable H2, is a promising liquid hydrogen carrier, but its sustainable use requires catalysts that enable fast, CO-free, and additive-free hydrogen release under mild conditions. Herein, we report a nanoscale La2O3-modified porous N-doped carbon-anchored ultrafine Pd nanoparticle catalyst La2O3-engineered porous carbon-nitrogen-supported Pd catalyst, Pd−La3CN-750, for efficient FA dehydrogenation. The introduced nanosized La2O3 species are uniformly dispersed on the porous carbon-nitrogen support, which precisely regulates the interfacial microstructure of Pd nanoparticles. La2O3 incorporation reconstructs the Pd/support interface by creating defect-rich anchoring sites, introducing medium-strength basic sites, and inducing interfacial electron transfer to enrich electron-deficient Pdδ+ species. As a result, Pd−La3CN-750 achieves a complete aqueous FA dehydrogenation within 8 min at 313 K, with a TOF of 1431 h−1, a low apparent activation energy of 42.36 kJ mol−1, no detectable CO formation, and stable reusability over seven cycles. In situ DRIFTS and density functional theory calculations reveal a nanoscale interfacial dual-site relay mechanism, in which La−O basic sites activate the O−H bond of FA to generate formate intermediates, while adjacent Pd0−Pdδ+ ensembles promote C−H cleavage, H−H coupling, and H2 desorption. This interfacial synergy lowers the dehydrogenation barrier while suppressing the CO-forming dehydration route. From a sustainability perspective, the catalyst offers low-temperature atmospheric-pressure operation, eliminates sacrificial additives, maximizes the utilization efficiency of ultrafine Pd active nanoparticles, and produces a CO-free hydrogen stream, while future optimization should address synthesis-stage impacts from hard templating, high-temperature carbonization, alkaline etching, solvent use, and H2 reduction. This work provides a sustainability-oriented interfacial design strategy for efficient hydrogen release from carbon-recyclable liquid carriers.