Rocking-chair aqueous Zn-ion batteries (AZIBs) hold great promise for applications in large-scale energy storage systems. Unfortunately, the development of advanced anode materials still remains a formidable challenge. Herein, for the… Click to show full abstract
Rocking-chair aqueous Zn-ion batteries (AZIBs) hold great promise for applications in large-scale energy storage systems. Unfortunately, the development of advanced anode materials still remains a formidable challenge. Herein, for the first time, unique Cu7(Te0.74Se0.26)4 nanotubes with crystalline-amorphous heterointerfaces and anionic doping are delicately synthesized starting from the telluride selenium precursor. The Cu7(Te0.74Se0.26)4 nanotubes showcase multifarious advantages including high electrical conductivity, strong Zn2+ adsorption ability, fast ion diffusion, robust structural stability, and relatively low operating voltage. Consequently, the Cu7(Te0.74Se0.26)4 anode exhibits remarkable specific discharge capacity, outstanding rate capability and decent long-term cycling stability (≈86.6% capacity retention over 15 000 cycles at 5 A g-1), outperforming the other Cu7Te4-based counterparts. More importantly, a Cu7(Te0.74Se0.26)4//CNT@MnO2 full battery is successfully fabricated and demonstrates satisfactory electrochemical performance. Additionally, the conversion-type mechanism of the Cu7(Te0.74Se0.26)4 anode is further comprehensively investigated by a series of ex situ characterization measurements. Furthermore, theoretical calculations reveal that the synchronous engineering of crystalline-amorphous heterointerfaces alongside Se doping can effectively enhance the electrical conductivity, improve the Zn2+ adsorption energy, and reduce the energy barrier for Zn2+ migration. This contribution provides an innovative methodology for designing new-type anode materials through interface engineering and anionic doping simultaneously for high-performance rocking-chair AZIBs.
               
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