Mo2C and WP Embedded in P-Doped Janus Carbon Fibers as a Highly Active Electrocatalyst for Acidic and Alkaline
Dongxue Lv1, Huan Liu1, Dan Li1
1Key Laboratory of Applied Chemistry and Nanotechnology at Universities of Jilin Province, Changchun University of Science and Technology, Changchun 130022, Jilin, China.
Abstract:
Reasonable construction and design of cost-cutting electrocatalysts with superior performance for the hydrogen evolution reaction (HER) are meaningful for water splitting. Herein, molybdenum carbide (Mo2C) and tungsten phosphide (WP) supported with P-doped carbon Janus fibers ([Mo2C/C]//[WP/C]-JPCFs) are successfully fabricated by using side-by-side electrospinning technology and the calcination process. On account of the special electronic interactions between WP and Mo2C in the Janus heterostructure interface, a large number of high-quality HER active sites are uniformly distributed on the interface. In addition, doping P atoms in carbon materials can disrupt the electroneutrality of carbon materials, thereby importing more active sites. Surprisingly, the [Mo2C/C]//[WP/C]-JPCFs catalyst delivers ultralow overpotentials toward the HER in both acidic and alkaline electrolytes, requiring only 38 mV and 33 mV to achieve a current density of 10 mA·cm-2, respectively. Such impressive catalytic performance is either comparable to or even superior to that of the commercial 20% Pt/C catalyst. The outstanding performance is comparable to or even better than the commercially available 20% Pt/C catalyst, making the [Mo2C/C]//[WP/C]-JPCFs catalyst the most outstanding nonprecious metal/carbon-based catalyst for HER to date. The [Mo2C/C]//[WP/C]-JPCFs catalyst also displays significant stability. The study provides an approach for synthesizing simple and low-cost, efficient HER electrocatalysts.
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