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Arrayed Heterostructures of MoS 2 Nanosheets Anchored TiN Nanowires as Efficient Pseudocapacitive Anodes for Fiber-Shaped Ammonium-Ion Asymmetric Supercapacitors.

Lijie HanJie LuoRongkang ZhangWen-Bin GongLong ChenFan LiuYing LingYihao DongZhenzhong YongYongyi ZhangLei WeiXiao-Gang ZhangQichong ZhangQing-Wen Li
Published in: ACS nano (2022)
Nonmetallic ammonium ions that feature high safety, low molar mass, and small hydrated radius properties have shown great advantages in wearable aqueous supercapacitors. The construction of high-energy-density flexible ammonium-ion asymmetric supercapacitors (AASCs) is promising but still challenging due to the lack of high-capacitance pseudocapacitive anodes. Herein, freestanding core-shell heterostructures supported on carbon nanotube fibers were designed by anchoring MoS 2 nanosheets on nanowires (MoS 2 @TiN/CNTF) as anodes for AASCs. With contributions of abundant active sites and conspicuous synergistic effects of multiple components for arrayed heterostructure engineering, the developed MoS 2 @TiN/CNTF anodes exhibit a specific capacitance of 1102.5 mF cm -2 at 2 mA cm -2 . Theoretical calculations confirm the dramatic enhancement of the binding strength of ammonium ions on the MoS 2 shell layer at the heterostructure, where a built-in electric field exists to accelerate the charge transfer. By utilizing a MnO 2 /CNTF cathode and NH 4 Cl/poly(vinyl alcohol) (PVA) as a gel electrolyte, quasi-solid-state fiber-shaped AASCs were successfully constructed, achieving a specific capacitance of 351.2 mF cm -2 and an energy density of 195.1 μWh cm -2 , outperforming most recently reported fiber-shaped supercapacitors. This work provides a promising strategy to rationally design heterostructure engineering of MoS 2 @TiN nanoarrays toward advanced anodes for application in next-generation AASCs.
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