Engineering novel electrode materials with unique architectures has a significant impact on tuning the structural/electrochemical properties for boosting the performance of secondary battery systems. Herein, starting from well-organized WS nanorods, an ingenious design of a one-step method is proposed to prepare a bimetallic sulfide composite with a coaxial carbon coating layer, simply enabled by ZIF-8 introduction. Rich sulfur vacancies and WS /ZnS heterojunctions can be simultaneously developed, that significantly improve ionic and electronic diffusion kinetics. In addition, a homogeneous carbon protective layer around the surface of the composite guarantees an outstanding structural stability, a reversible capacity of 170.8 mAh g after 5000 cycles at a high rate of 5 A g . A great potential in practical application is also exhibited, where a full cell based on the WS /ZnS@C anode and the P2-Na Ni Mn O cathode can maintain a reversible capacity of 89.4 mAh g after 500 cycles at 1 A g . Moreover, the underlying electrochemical Na storage mechanisms are illustrated in detail by theoretical calculations, electrochemical kinetic analysis, and operando X-ray diffraction characterization.
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http://dx.doi.org/10.1002/adma.202005802 | DOI Listing |
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