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◆ Journal of Magnesium and Alloys2026-03-18· Dehydrogenation

Synthesis of sulfur self-doped FeNi–S coordinated carbon derived from petroleum coke for accelerated Mg/MgH2 hydrogen storage

Yulin Huang, Fenghua Wei, Yu Zhang, Xinan Zhang, Yiming Wang, Chen Huang, Yuke Li, Jingcai Chang

原始摘要(英文原文)· Original abstract
• The Green K 2 FeO 4 activation strategy enables sulfur self-doping in HSPC. • The unique performance advantages of (FeNi)S@PPC in boosting MgH 2 hydrogen storage. • Intrinsic sulfur self-doping induces a stable FeNi–S coordination environment. • FeNi–S coordination optimizes the FeNi–(H) and weakens the Mg-H bond strength. • Provided HSPC waste valorization and a low-cost hydrogen storage solution. Interactions between metals and heteroatom-coordinated sites on the carbon matrix are crucial for enhancing the kinetics and thermodynamics of Mg/MgH 2 . Herein, we reported a sustainable K 2 FeO 4 activation strategy that converts high-sulfur petroleum coke into a sulfur self-doped porous carbon hosting FeNi–S coordinated active sites. Tailoring the alloyed electronic structure and exposing more catalytically active sites substantially enhanced the hydrogenation and dehydrogenation kinetics of Mg/MgH 2 with (FeNi)S@PPC. Its peak dehydrogenation temperature was 95.39 °C lower than that of ball-milled MgH 2 . In addition, it enabled MgH 2 to release 4.89 wt.% H 2 within 20 min at 275 °C, exceeding its sulfur-free counterpart (FeNi)@PPC by 1.41 wt.%. Moreover, the (FeNi)S@PPC/MgH 2 showed 99.5% capacity retention after 30 cycles, indicating excellent reversibility. Mechanistic investigations revealed that intrinsic sulfur self-doping induced a stable FeNi–S coordination environment, which lowered the D-band center of FeNi to −1.349 eV. The electronic redistribution was found to weaken the FeNi–(H) intermediate, lowering the dissociation and diffusion energy barrier by 0.39 eV and facilitating hydrogenation. This also reduced the energy required for Mg–H dissociation into H 2 by 0.65 eV. Consequently, the dehydrogenation activation energy was decreased to 97.09 kJ·mol − 1 , with the rate-limiting step shifting to a low-energy barrier three-dimensional interfacial reaction (R3 model). Overall, this study establishes a green valorization route for high-sulfur petroleum coke and elucidates a fundamental metal–sulfur charge transfer mechanism that substantially enhances magnesium-based hydrogen storage. Enhanced MgH 2 performance via (FeNi)S@PPC catalyst: Hydrogen pump effect of Mg 2 Ni; FeNi–S coordination weakens the FeNi–(H) and Mg–H bond strength.
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Synthesis of sulfur self-doped FeNi–S coordinated carbon derived from petroleum coke for accelerated Mg/MgH2 hydrogen storage — 科研速览 Science Skim