Ar/NH3 plasma-tailored Pt–O–W interfaces enable sub-1% Pt loading self-supported electrode for enhanced hydrogen evolution reaction
Abstract
The manufacturing of defect-engineered heterojunction catalysts is achieved using Ar/NH3 plasma treatment, which enhances the interaction between tungsten carbide (WC) and platinum (Pt) nanoparticles through the formation of Pt–O–W bonds, resulting in increased stability and improved performance. Specifically, a self-supporting carbon fiber-based electrode (p-Pt@WC@NCNTs@CC) is synthesized by loading WC onto carbon cloth, which is embedded with nitrogen-doped carbon nanotubes (NCNTs) serving as a support for ultra-low content Pt loading. Surface modification is performed using Ar/NH3 plasma. Compared to the commercial catalyst (20 wt. % Pt/C), p-Pt@WC@NCNTs@CC with only 0.98 wt. % Pt loading exhibited superior hydrogen evolution reaction performance in both alkaline and acidic media. In a 1 M KOH solution at a current density of 50 mA cm−2, p-Pt@WC@NCNTs@CC displays an overpotential of only 45 mV, significantly lower than that of 20 wt. % Pt/C (51 mV). In a 0.5 M H2SO4 solution, p-Pt@WC@NCNTs@CC requires overpotentials of only 7.5 and 40.5 mV to achieve current densities of 10 and 100 mA cm−2, respectively. This work presents a promising approach for synthesizing low-cost, efficient, and stable electrodes by employing surface modification through plasma treatment, wherein octahedral tungsten carbide is loaded onto NCNTs and coated with NCNT structures to enhance conductivity and structural stability.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (6)
Jie Li
Qin Zhang
State Key Laboratory of Chemo and Biosensing, College of Biology, College of Chemistry and Chemical Engineering
Hao Liu
Zhong-Jie Jiang
Guangzhou Key Laboratory for Surface Chemistry of Energy Materials, Guangdong Engineering and Technology Research Center for Surface Chemistry of Energy Materials, New Energy Research Institute, College of Environment and Energy, South China University of Technology 3 , Guangzhou 510006,
Xiaoning Tian
Department of Materials and Chemical Engineering, Ningbo University of Technology 2 , Ningbo 315211,
Zhongqing Jiang
Zhejiang Key Laboratory of Quantum State Control and Optical Field Manipulation, Department of Physics, Zhejiang Sci-Tech University 1 , Hangzhou 310018,