Superior rate capability of high mass loading supercapacitors fabricated with carbon recovered from methane cracking

Date

2023-07-27

Free to read from

Supervisor/s

Journal Title

Journal ISSN

Volume Title

Publisher

MDPI

Department

Type

Article

ISSN

2304-6740

Format

Citation

Baptista J, Shacklock J, Shaban M, et al., (2023) Superior rate capability of high mass loading supercapacitors fabricated with carbon recovered from methane cracking, Inorganics, Volume 11, Issue 8, July 2023, Article Number 316

Abstract

High mass loading (ca. 30 mg/cm2) electrodes were prepared with carbon recovered from catalytic methane cracking (MC). As-fabricated supercapacitors displayed 74% of capacitance retention from 6 mA/cm2 to 60 mA/cm2 and a Ragone plot’s slope of −7 Wh/kW (compared to 42% and −31 Wh/kW, respectively, for high mass loading devices fabricated with commercial carbon). The high-rate capability of the MC-recovered carbon is attributed to the presence of carbon black and carbon nanotubes produced during the reaction, which likely increased the electronic and ionic conductivity within the electrode. These results suggest that the by-product of this hydrogen generation route might be a suitable active material for supercapacitors.

Description

Software Description

Software Language

Github

Keywords

supercapacitors, carbon nanotubes, porous nanocarbon-based electrodes, methane cracking, rate capability, electrochemistry, electrochemical impedance spectroscopy

DOI

Rights

Attribution 4.0 International

Relationships

Relationships

Supplements

Funder/s

Engineering and Physical Sciences Research Council (EPSRC): EP/R023662/1; EP/S023909/1