Biomass modified carbon nanofibers use for flexible supercapacitor electrodes with thermal conductive performances

Yan Gao, Ying Huang, Xiangze Xin, Tianjian Jiang, Meng Zong, Junhui Xu

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

The advancement of flexible electrode with excellent energy storage is essential for supercapacitors. Herein, a porous biomass-doped carbon nanofiber@bimetallic oxide composite (B-CNF@NiO/Co3O4) has been prepared as a binder-free flexible electrode. The heteroatoms form biomass not only offer pseudocapacitance but also a multitude of active sites for the grow of bimetallic oxides. The well-grown B-CNF@NiO/Co3O4 shows a high specific capacitance (629.5 F g−1) and the asymmetric flexible supercapacitor (ASC) has an energy density of 31.5 Wh kg−1 at a power density of 757.4 W kg−1. The properties of bimetallic oxides and 3D networks facilitate transportation of interlayer ion, providing a straightforward approach to fabricate non-adhesive flexible electrode with dual functionalities of energy storage. In addition, the thermal conductive experiment demonstrated a favorable thermal conductivity (TC) of 1.06 W m−1 K−1.

Original languageEnglish
Article number113382
JournalJournal of Energy Storage
Volume99
DOIs
StatePublished - 10 Oct 2024

Keywords

  • Asymmetric flexible supercapacitor
  • Bimetallic oxide
  • Biochar
  • Carbon nanofibers
  • Electrospinning

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