Constructing active heterointerfaces is powerful to enhance the electrochemical performances of transition metal dichalcogenides, but the interface density regulation remains a huge challenge. Herein, MoO /MoS heterogeneous nanorods are encapsulated in nitrogen and sulfur co-doped carbon matrix (MoO /MoS @NSC) by controllable sulfidation. MoO and MoS are coupled intimately at atomic level, forming the MoO /MoS heterointerfaces with different distribution density. Strong electronic interactions are triggered at these MoO /MoS heterointerfaces for enhancing electron transfer. In alkaline media, the optimal material exhibits outstanding hydrogen evolution reaction (HER) performances that significantly surpass carbon-covered MoS nanorods counterpart (η : 156 mV vs 232 mV) and most of the MoS -based heterostructures reported recently. First-principles calculation deciphers that MoO /MoS heterointerfaces greatly promote water dissociation and hydrogen atom adsorption via the O-Mo-S electronic bridges during HER process. Moreover, benefited from the high pseudocapacitance contribution, abundant "ion reservoir"-like channels, and low Na diffusion barrier appended by high-density MoO /MoS heterointerfaces, the material delivers high specific capacity of 888 mAh g , remarkable rate capability and cycling stability of 390 cycles at 0.1 A g as the anode of sodium ion battery. This work will undoubtedly light the way of interface density engineering for high-performance electrochemical energy conversion and storage systems.

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http://dx.doi.org/10.1002/smll.202207919DOI Listing

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