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Hierarchically Engineered NiSe2-CuFeO2 Heterostructures on Biomass-Derived Carbonized Wood for Efficient
Ameer Farithkhan1,2, Seo-Jun Lee1, Alireza Razazzadeh1
1School of Materials Science and Engineering, Pusan National University, Busan, Republic of Korea.
Abstract:
Rational design strategies for developing advanced electrocatalysts that replace the kinetically sluggish oxygen evolution reaction with the more thermodynamically favorable ethanol oxidation offer an effective pathway toward energy-efficient hydrogen production. Herein, we strategically integrate NiSe2 (NS) and CuFeO2 (CFO) microstructures over biomass-derived nitrogen-doped carbonized wood (NCW) to construct a 3D, binder-free, and bifunctional NS-CFO@NCW electrode with a hierarchically interconnected heterostructure. The fusion of CFO cubes into the rough NS spheres establishes a strong interfacial interaction between the two components, which not only amplifies beneficial structural modulations but also tailors the electronic framework of Ni to equip the catalytically dynamic high-valence phase. Benefiting from synergistic architecture, NS-CFO@NCW exhibits superior ethanol oxidation reaction performance, delivering enhanced current density and favorable kinetics compared to its counterparts. When assembled into a bifunctional ethanol electrolyzer, the optimized NS-CFO@NCW achieves an elevated current density of 100 mA cm-2 at a cell voltage of 1.63 V, representing a 190 mV reduction compared with that of standard water splitting, highlighting its remarkable energy efficiency. This work provides a sustainable design paradigm for coupling biomass upgrading with efficient hydrogen generation through advanced catalyst design and engineering.
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