Issue 42, 2020

Hierarchical Cu2S@NiCo-LDH double-shelled nanotube arrays with enhanced electrochemical performance for hybrid supercapacitors

Abstract

Hierarchical nanotube arrays with complex shell structures are attractive for applications in electrode materials for effectively boosted electrochemical performance, but the construction of such delicate architectures with excellent electrochemical performance is very challenging. Herein, double-shelled nanotube arrays of hierarchical Cu2S@nickel–cobalt layered double hydroxide (Cu2S@NiCo-LDH DSNAs) are synthesized on a Cu foam (CF) substrate with a sequential multi-step strategy, and an integrated electrode is constructed with the nanostructured material. Benefiting from the unique hollow structure and the sophisticated assembly of different nano-sized subunits, the as-prepared hierarchical Cu2S@NiCo-LDH DSNA electrode exhibits excellent electrochemical performances with a high mass loading of 5.0 mg cm−2, including a high specific capacity of 2.8 mA h cm−2 (20.4 F cm−2, 555.6 mA h g−1) at 4 mA cm−2 and remarkable rate capability with 87% capacity retention at 40 mA cm−2. Furthermore, a quasi-solid-state hybrid supercapacitor (HSC) is assembled with the Cu2S@NiCo-LDH DSNAs and metal–organic framework (MOF)-derived nanoporous carbon (NPC) as the electrodes, exhibiting a high energy density of 1.67 mW h cm−2 at the power density of 4.25 mW cm−2.

Graphical abstract: Hierarchical Cu2S@NiCo-LDH double-shelled nanotube arrays with enhanced electrochemical performance for hybrid supercapacitors

Supplementary files

Article information

Article type
Paper
Submitted
15 Aug 2020
Accepted
01 Oct 2020
First published
02 Oct 2020

J. Mater. Chem. A, 2020,8, 22163-22174

Hierarchical Cu2S@NiCo-LDH double-shelled nanotube arrays with enhanced electrochemical performance for hybrid supercapacitors

Z. Yuan, H. Wang, J. Shen, P. Ye, J. Ning, Y. Zhong and Y. Hu, J. Mater. Chem. A, 2020, 8, 22163 DOI: 10.1039/D0TA08006C

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