4.8 Article

Embedding Metal-Organic Frameworks for the Design of Flexible Hybrid Supercapacitors by Electrospinning: Synthesis of Highly Graphitized Carbon Nanofibers Containing Metal Oxide Nanoparticles

Journal

SMALL STRUCTURES
Volume 3, Issue 9, Pages -

Publisher

WILEY
DOI: 10.1002/sstr.202200015

Keywords

electrospinning; flexible hybrid supercapacitors; highly graphitized carbon nanofibers; metal oxides; metal-organic frameworks

Funding

  1. National Natural Science Foundation of China [21771064, 51909066]
  2. Natural Science Foundation of Anhui Province [2008085QE204]
  3. Innovative Research Team of Anhui Provincial Education Department [2016SCXPTTD]
  4. Key Discipline of Material Science and Engineering of Suzhou University [2017XJZDXK3]
  5. JST-ERATO Yamauchi Materials Space-Tectonics Project [JPMJER2003]

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This study reports a method for synthesizing highly graphitized carbon nanofibers by embedding metal-organic framework into electrospun nanofibers. These fibers exhibit excellent mechanical flexibility and conductivity, as well as large specific capacitance and fast ion transfer characteristics, making them suitable for high energy density and flexible supercapacitors.
Electrospun carbonaceous fibers have emerged as promising electrode materials for application in energy storage devices. However, their relatively poor electrical conductivity (due to their amorphous carbon structures) and low capacitive performance lead to poor prospects for their further application. Herein, a universal synthesis of highly graphitized carbon nanofibers, containing various metal oxide nanoparticles (e.g., Fe2O3, NiO), by the pyrolysis of metal-organic framework (MOF)-embedded electrospun nanofibers, is reported. The resulting carbon nanofibers exhibit large mesopore volumes, contain large quantities of Faradic metal oxide nanoparticles, and are highly graphitized. The fibers also have excellent mechanical flexibility, provide fast ion transfer characteristics, and a large pseudocapacitance combined with excellent electrical conductivity, leading to large specific capacitances. Consequently, asymmetric flexible hybrid supercapacitors assembled from Fe2O3-embedded highly graphitized carbon nanofibers (FOCNF) and NiO-embedded highly graphitized carbon nanofibers (NOCNF) exhibit a high energy density of 43.1 Wh kg(-1) at a power density of 412.5 W kg(-1) and possess excellent flexibility (capacitance retention of 94.4% at 180 degrees bending and 96.2% at 30 degrees twisting) with superior cycling stability. This strategy provides a new MOF-based approach for the design and synthesis of multifunctional flexible carbonaceous materials and might lead to their further application in flexible energy storage devices.

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