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◆ ACS Sustainable Chemistry & Engineering2026-01-09· Redox

Electrochemical Interlayer Expansion and Dual Redox Activation for Fast Mg-Ion Transport and High Capacity in Quasi-1D TiS <sub> <b>3</b> </sub>

Pengcheng Jing, Atsushi Inoishi, Chengcheng Zhao, Eiichi Kobayashi, Yisong Han, Duncan H. Gregory

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide Magnesium ion batteries (MIBs) offer promising solutions for next-generation sustainable energy storage systems owing to their intrinsic safety and cost-effectiveness, yet their development is hindered by the scarcity of high-capacity cathode materials, primarily due to poor magnesium ion transport and a limited number of electrochemically active sites. Here, we report a significant performance breakthrough in a structurally and electrochemically distinct, underexplored quasi-1D pseudolayered titanium trisulfide (TiS 3 ) cathode through interlayer engineering and exploitation of dual cationic/anionic redox chemistry. In operando and ex situ characterization reveal that interlayer expansion, induced by the intercalation of 1-butyl-1-methylpyrrolidinium (BMPyrr + ), weakens electrostatic interactions within the sulfide sublattice, enhances magnesium ion diffusion kinetics, and increases accessible redox sites. These modifications activate reversible Ti 4+ /Ti 3+ and S 2 2– /S 2– redox couples, complemented by nanosizing-induced pseudocapacitance, synergistically underpinning the exceptional electrochemical performance. As a result, the expanded TiS 3 cathode delivers outstanding reversible capacities (up to 300 mA h g –1 at 100 mA g –1 ), excellent rate performance (181 mA h g –1 at 1000 mA g –1 ), and long-term cycling stability, surpassing its pristine counterpart and many state-of-the-art MIB cathodes. This work underscores the combined role of interlayer engineering and dual-ion redox chemistry in advancing multivalent energy storage and introduces pseudolayered TiS 3 as a new structural platform beyond conventional layered sulfides.
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Electrochemical Interlayer Expansion and Dual Redox Activation for Fast Mg-Ion Transport and High Capacity in Quasi-1D TiS <sub> <b>3</b> </sub> — 科研速览 Science Skim