Anchoring tungsten oxide nanorods on TiO nanowires coupled with carbon for efficient lithium-ion storage

Reasonable construction of hierarchical electrode materials is verified as a promising way to improve the electrochemical performance due to the synergistic effect between unique components and constructions. Hence, a hierarchical nanostructure composed of tungsten oxide nanorods anchored on TiO 2 n...

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Veröffentlicht in:Dalton transactions : an international journal of inorganic chemistry 2023-11, Vol.52 (46), p.17299-1737
Hauptverfasser: Wang, Teng, Qin, Yifan, Hu, Renquan, Wei, Zehui, Yang, Yong
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container_issue 46
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container_title Dalton transactions : an international journal of inorganic chemistry
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creator Wang, Teng
Qin, Yifan
Hu, Renquan
Wei, Zehui
Yang, Yong
description Reasonable construction of hierarchical electrode materials is verified as a promising way to improve the electrochemical performance due to the synergistic effect between unique components and constructions. Hence, a hierarchical nanostructure composed of tungsten oxide nanorods anchored on TiO 2 nanowires coupled with a carbon layer (TiO 2 @WO x -C NWs) was synthesized as an electrode material by exploiting the self-assembly function of dopamine and carbonization. The inner one-dimensional TiO 2 nanowires served as the stable substrate with WO x anchored on the surface of TiO 2 NWs and the tightly coupled carbon nanosheets, which can not only facilitate electron transport but also provide more active sites for electrochemical reactions. As a result, benefitting from the synergistic effects between three functional components and the multi-dimensional hierarchical structures, the as-prepared TiO 2 @WO x -C NWs displayed excellent lithium storage performance with a specific capacity of 651.4 mA h g −1 after 500 cycles at 1.0 A g −1 , which is superior to most Ti-based structures. The enhanced electrochemical performance is mainly attributed to the synergistic effect of the different dimensional structures, the high capacity of tungsten oxide and the surface coating of the conductive carbon material. This work provides a simple and effective approach to designing functional hierarchical structures for energy storage and conversion. Reasonable construction of hierarchical electrode materials is verified as a promising way to improve the electrochemical performance due to the synergistic effect between unique components and constructions.
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Hence, a hierarchical nanostructure composed of tungsten oxide nanorods anchored on TiO 2 nanowires coupled with a carbon layer (TiO 2 @WO x -C NWs) was synthesized as an electrode material by exploiting the self-assembly function of dopamine and carbonization. The inner one-dimensional TiO 2 nanowires served as the stable substrate with WO x anchored on the surface of TiO 2 NWs and the tightly coupled carbon nanosheets, which can not only facilitate electron transport but also provide more active sites for electrochemical reactions. As a result, benefitting from the synergistic effects between three functional components and the multi-dimensional hierarchical structures, the as-prepared TiO 2 @WO x -C NWs displayed excellent lithium storage performance with a specific capacity of 651.4 mA h g −1 after 500 cycles at 1.0 A g −1 , which is superior to most Ti-based structures. The enhanced electrochemical performance is mainly attributed to the synergistic effect of the different dimensional structures, the high capacity of tungsten oxide and the surface coating of the conductive carbon material. This work provides a simple and effective approach to designing functional hierarchical structures for energy storage and conversion. 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Hence, a hierarchical nanostructure composed of tungsten oxide nanorods anchored on TiO 2 nanowires coupled with a carbon layer (TiO 2 @WO x -C NWs) was synthesized as an electrode material by exploiting the self-assembly function of dopamine and carbonization. The inner one-dimensional TiO 2 nanowires served as the stable substrate with WO x anchored on the surface of TiO 2 NWs and the tightly coupled carbon nanosheets, which can not only facilitate electron transport but also provide more active sites for electrochemical reactions. As a result, benefitting from the synergistic effects between three functional components and the multi-dimensional hierarchical structures, the as-prepared TiO 2 @WO x -C NWs displayed excellent lithium storage performance with a specific capacity of 651.4 mA h g −1 after 500 cycles at 1.0 A g −1 , which is superior to most Ti-based structures. 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title Anchoring tungsten oxide nanorods on TiO nanowires coupled with carbon for efficient lithium-ion storage
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