Hierarchical 3D structured nanoporous Co 9 S 8 @Ni x :Mo y –Se core–shell nanowire array electrodes for high-performance asymmetric supercapacitors

The rational design of free-standing hierarchical core–shell nanoporous architectures is a good strategy for fabricating next-generation electrode materials for application in electrochemical energy conversion/storage systems. Herein, hierarchical core–shell 3D Co 9 S 8 @Ni x :Mo y –Se nanowire arra...

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Veröffentlicht in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2021-12, Vol.9 (48), p.27503-27517
Hauptverfasser: Dai, JiuYi, Singh, Soram Bobby, Kim, Nam Hoon, Lee, Joong Hee
Format: Artikel
Sprache:eng
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Zusammenfassung:The rational design of free-standing hierarchical core–shell nanoporous architectures is a good strategy for fabricating next-generation electrode materials for application in electrochemical energy conversion/storage systems. Herein, hierarchical core–shell 3D Co 9 S 8 @Ni x :Mo y –Se nanowire arrays (NWAs) are constructed by a low-cost, straightforward two-step hydrothermal method and an effective electrodeposition process. The optimal 3D Co 9 S 8 @Ni 0.5 Mo 0.5 –Se NWA electrode displays an excellent specific capacity of 460.81 mA h g −1 with a corresponding areal capacity of 0.93 mA h cm −2 at 1.5 mA cm −2 . It also demonstrates superb rate capability (∼68.4% capacity retention at 20 mA cm −2 ) and remarkable cycling stability (∼94.3% capacity retention after 10 000 charge and discharge cycles). Additionally, an asymmetric supercapacitor (ASC) is assembled using the hierarchical 3D Co 9 S 8 @Ni 0.5 Mo 0.5 –Se NWAs as the positive electrode, and the as-obtained Fe 2 O 3 @PANNFs/N-rGO aerogel as the negative electrode. The assembled Co 9 S 8 @Ni 0.5 Mo 0.5 –Se//Fe 2 O 3 @PANNFs/N-rGO ASC shows a larger operating voltage range of 1.7 V, a high electrochemical energy storage capability (96.90 W h kg −1 at 1158 W kg −1 ), and excellent cycling stability (∼94.47% retention of the original capacity after 10 000 cycles). The all-solid-state ASC device that is also fabricated exhibits a high output working potential window of ∼1.8 V, and an outstanding energy density of ∼102.94 W h kg −1 at ∼1534 W kg −1 , demonstrating that the hierarchical 3D Co 9 S 8 @Ni 0.5 Mo 0.5 –Se NWA electrode material is a potential candidate for high-performance energy storage devices.
ISSN:2050-7488
2050-7496
DOI:10.1039/D1TA08742H