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Updated: Jul 9, 2026

Ultrahigh Density Array of Vertically Aligned Small-molecular Organic Nanowires on Arbitrary Substrates
Published on: June 18, 2013
Selenium-Induced Directional Growth of Ultrathin Nanowires with Subnano Amorphous Shells for High-Performance
Biao Zeng1, Shuhan Yang1, Yuzhang Wang1
1State Key Laboratory for Mechanical Behavior of Materials, School of Materials Science and Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Abstract:
The fabrication of 1D platinum (Pt)-based ultrafine core-shell nanostructures with controllable morphologies is a potential strategy to maximize atom utilization in electrocatalytic applications. Here, we report a synthesis strategy of selenium (Se)-induced ultrafine Pt nanowires (NWs) with subnano amorphous shells, in which Se could promote the end-to-end directional attachment of shorter PtNi alloy nanowires, covered with PtNiSex subnano amorphous shells. The core-shell nanowires exhibit excellent mass activity and stability for the hydrogen evolution (HER), methanol oxidation (MOR), and ethanol oxidation reactions (EOR). Specifically, the as-fabricated PtNi-Se1 NWs exhibit impressive HER properties with a mass activity of 24.8 A mgPt-1 at -70 mV and pH 14 and an activity loss of only 6% after 1000 h at 400 mA cm-2 at pH values of both 14 and 0. Practically, the assembled proton exchange membrane electrolyzer delivers a current density of 1 A cm-2 at a voltage of only 1.806 V and can operate stably for 400 h, showing strong potential for large-scale H2 production. Moreover, the NWs also display excellent MOR and EOR properties in alkaline media, with mass activities of 9.6 and 4.22 A mgPt-1, respectively. In situ Raman spectra and theory calculations illustrate the optimized hydrogen binding energy on the Pt/Se sites, the significantly lowered activation energy barrier for H2O dissociation on the Ni sites, and weakened CO* binding, which lead to significantly enhanced HER, MOR, and EOR performances. The results provide a potential strategy for developing efficient and robust noble metal-based catalysts.

