4.6 Article

Hierarchical design of Cu1-xNixS nanosheets for high-performance asymmetric solid-state supercapacitors

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 5, Issue 37, Pages 19760-19772

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c7ta04071g

Keywords

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Funding

  1. Basic Research Laboratory Program through the Ministry of Science, ICT AMP
  2. Future Planning of Republic of Korea [2014R1A4A1008140]
  3. Nano-Material Technology Development Program through the Ministry of Science, ICT AMP
  4. Future Planning of Republic of Korea [NRF-2016M3A7B4900117]
  5. Korea Research Fellowship program through the Ministry of Science, ICT AMP
  6. Future Planning of Republic of Korea [2015H1D3A1062145]
  7. National Research Foundation of Korea [2015H1D3A1062145, 2016M3A7B4900117, 2014R1A4A1008140] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Novel supercapacitor electrodes comprising hierarchical architectures with high specific surface areas, unique porosities, excellent conductivities, and admirable mechanical stabilities are necessary for developing high-performance solid-state supercapacitors. Herein, a novel ultra-thin copper nickel sulfide (Cu1-xNixS) nanosheet array supercapacitor electrode was constructed on a 3D Ni backbone through a powerful anion exchange technique and it demonstrated a unique architecture with a substantial degree of porosity. Accordingly, Cu1-xNixS plays an imperative role in the electrochemical energy storage characteristics of the electrode by accomplishing an ultra-high areal capacitance of 5.88 F cm(-2) and a specific capacitance of 2672 F g(-1) at a current density of 2 mA cm(-2) with an excellent rate capability (71.26% capacitance retention at 20 mA cm(-2)) and a superior cycling performance (97.33% capacitance retention after 10 000 cycles). To design asymmetric supercapacitors (ASCs), Cu1-xNixS and N, S co-doped graphene nanosheets (NSGNSs) are employed as positive and negative electrodes, respectively. Remarkably, the fabricated ASC exhibits a potential window of -1.8 V, which demonstrates an ultra-high energy density of-94.05 W h kg(-1) at 1.09 kW kg(-1) as well as an excellent life cycle (95.86% capacitance retention after 10 000 cycles). Owing to this fact, this investigation offers a simple, scalable, and cost-effective approach for the fabrication of other ternary transition metal sulfides (TMSs), emphasizing great prospects in next-generation energy storage applications.

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