2D 2H-phase MoS is promising for electrocatalytic applications because of its stable phase, rich edge sites, and large surface area. However, the pristine low-conductive 2H-MoS suffers from limited electron transfer and surface activity, which become worse after their highly likely aggregation/stacking and self-curling during applications. In this work, these issues are overcome by conformally attaching the intercalation-detonation-exfoliated, surface S-vacancy-rich 2H-MoS onto robust conductive carbon nanotubes (CNTs), which electrically bridge bulk electrode and local MoS catalysts. The optimized MoS /CNTs nanojunctions exhibit outstanding stable electroactivity (close to commercial Pt/C): a polarization overpotential of 79 mV at the current density of 10 mA cm and the Tafel slope of 33.5 mV dec . Theoretical calculations unveil the metalized interfacial electronic structure of MoS /CNTs nanojunctions, enhancing defective-MoS surface activity and local conductivity. This work provides guidance on rational design for advanced multifaceted 2D catalysts combined with robust bridging conductors to accelerate energy technology development.

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http://dx.doi.org/10.1002/smll.202301468DOI Listing

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