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