Understanding the Diffusion‐Dominated Properties of MOF‐Derived Ni–Co–Se/C on CuO Scaffold Electrode using Experimental and First Principle Study

Author:

Hussain Iftikhar1ORCID,Ansari Mohd Zahid2,Ahmad Muhammad1,Ali Awais3,Nawaz Tehseen4,Hussain Tanveer5,Lamiel Charmaine6,Sufyan Javed Muhammad7,Chen Xi1,Sajjad Muhammad8,Kaewmaraya Thanayut910,Khan Karim11,Zhang Kaili112

Affiliation:

1. Department of Mechanical Engineering City University of Hong Kong 83 Tat Chee Avenue Kowloon 999077 Hong Kong

2. School of Materials Science and Engineering Yeungnam University Gyeongsan 712749 South Korea

3. School of Chemical Engineering Sungkyunkwan University (SKKU) Suwon 16419 Republic of Korea

4. Department of Chemistry The University of Hong Kong Pok Fu Lam Hong Kong

5. School of Science and Technology University of New England Armidale NSW 2351 Australia

6. School of Chemical Engineering The University of Queensland Brisbane QLD 4072 Australia

7. School of Physical Science and Technology Lanzhou University Lanzhou 730000 China

8. College of Chemistry and Life Sciences Zhejiang Normal University Jinhua 321004 China

9. Department of Physics Faculty of Science Khon Kaen University Khon Kaen 40002 Thailand

10. Institute of Nanomaterials Research and Innovation for Energy (IN‐RIE) NANOTEC ‐KKU RNN on Nanomaterials Research and Innovation for Energy Khon Kaen University Khon Kaen 40002 Thailand

11. School of Electrical Engineering & Intelligentization Dongguan University of Technology Dongguan 523808 China

12. Shenzhen Nuoan Environmental & Safety Inc. Shenzhen 518107 China

Abstract

AbstractBatteries and supercapacitors continue to be one of the most researched topics in the class of energy storage devices. The continuous development of battery and supercapacitor cell components has shown promising development throughout the years—from slabs of pure metal to porous and tailored structures of metal‐based active materials. In this direction, metal–organic frameworks (MOFs) serve great advantages in improving the properties and structure of the derived metal‐based active materials. This research provides a novel electrode material, Ni–Co–Se/C@CuO, derived from Ni–Co‐MOF integrated with pre‐oxidized Cu mesh. The superior electrochemical performance of Ni–Co–Se/C@CuO over Ni–Co‐MOF@CuO is evident through its higher specific capacity, lower resistivity, richer redox activity, and more favorable diffusion‐dominated storage mechanism. When assembled as a hybrid supercapacitor (HSC), the hybrid device using rGO and Ni–Co–Se/C@CuO as electrodes exhibits a high energy density of 42 W h kg−1 at a power density of 2 kW kg−1, and maintains its capacity retention even after 20 000 cycles. The improved capacity performance is also evaluated using first‐principle investigations, revealing that the unique and preserved heterostructure of Ni–Co–Se/C@CuO portrays enhanced metallic properties. Such evaluation of novel electrodes with superior properties may benefit next‐generation electrodes for supercapacitor devices.

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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