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◆ ACS Omega2026-03-06· Materials science

The Interplay of Dy Doping and Sulfur Vacancies in MoS <sub>2</sub> for an Efficient Hydrogen Evolution Reaction

Nutnaree Petcharat, Nadcha Kaewmuntree, Navapat Krobkrong, Wisit Hirunpinyopas, Panwad Chavalekvirat, Pawin Iamprasertkun, Thanasee Thanasarnsurapong, Adisak Boonchun, Krongthong Kamonsuangkasem, Weekit Sirisaksoontorn

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide A comprehensive understanding of rare-earth-doped MoS 2 is essential for the rational design of catalysts with increasing active sites to improve hydrogen evolution reaction (HER) performance. In this work, we synthesized Dy-doped MoS 2 (MoS 2 /Dy) via a citrate-assisted hydrothermal method with varying Dy loadings. Citrate plays a vital role in stabilizing Dy ions in a solution mixture and preventing their precipitation. The successful formation of 2H-phase MoS 2 and its morphology were confirmed by X-ray diffraction (XRD) and electron microscopy analyses. The Dy-induced alteration in the electronic structure of MoS 2 and the local chemical environment of Dy were also elucidated by X-ray photoelectron spectroscopy (XPS) and X-ray absorption spectroscopy (XAS). Upon variation of Dy doping, a decrease in the Mo:S ratio was observed with the presence of sulfur vacancies, which further enriches the exposure of the active sites. Among all synthesized catalysts, MoS 2 with the optimum Dy loading (7 wt %) exhibits the superior electrocatalytic performance in 0.5 M H 2 SO 4, delivering a low overpotential of 202 mV at a current density of 10 mA cm –2 and a favorable Tafel slope of 53.9 mV dec –1 . The MoS 2 /Dy catalyst also demonstrates excellent durability, maintaining stable HER performance over 36 h without significant degradation. Moreover, density functional theory (DFT) calculations suggest that hydrogen adsorption near the sulfur vacancy and Dy atom provides the optimum value of −0.30 eV for HER. These results highlight the synergistic relation of Dy doping and sulfur vacancies in enhancing the electrocatalytic activity of MoS 2, positioning it as a promising candidate for sustainable hydrogen production in acid media.
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