Loading…

Biomass-derived porous carbons with tailored graphitization degree and pore size distribution for supercapacitors with ultra-high rate capability

[Display omitted] •Porous carbons with tailored graphitization degree and pore size distribution are prepared.•Semi-graphitized microporous carbon shows a balance between capacitance and rate capability.•More than 86.9% of initial capacitance is retained under 100 A g−1.•More than 87.8% of energy de...

Full description

Saved in:
Bibliographic Details
Published in:Applied surface science 2020-06, Vol.515, p.146020, Article 146020
Main Authors: He, Jingjing, Zhang, Deyi, Wang, Yulin, Zhang, Jiwei, Yang, Binbin, Shi, Hao, Wang, Kunjie, Wang, Yi
Format: Article
Language:English
Subjects:
Citations: Items that this one cites
Items that cite this one
Online Access:Get full text
Tags: Add Tag
No Tags, Be the first to tag this record!
Description
Summary:[Display omitted] •Porous carbons with tailored graphitization degree and pore size distribution are prepared.•Semi-graphitized microporous carbon shows a balance between capacitance and rate capability.•More than 86.9% of initial capacitance is retained under 100 A g−1.•More than 87.8% of energy density is kept under a high power density of 29.1 kW kg−1. It is extraordinarily valuable to develop the supercapacitor with high capacitance retention under ultra-high current density to meet the requirement of fast charging. Herein, porous carbons with tailored graphitization degree and pore size distribution are facilely prepared via controlling the activation temperature of biomass-derived pyrolytic carbon when employing potassium ferrate (K2FeO4) as catalyst and activation agent. The obtained semi-graphitized microporous carbon with a large specific surface area (2208 m2 g−1), high proportion of large micropores (more than 71.8%) and high conductivity (2.38 S cm−1) exhibits a perfect balance between the charge storage capacity and rate capability, which specific capacitance reaches 254 and 273 F g−1 at a current density of 0.5 A g−1 in KOH and H2SO4 aqueous electrolyte, respectively. Surprising capacitance retention of 86.9% is obtained under an ultra-large current density of 100 A g−1 for the symmetrical supercapacitor based on the semi-graphitized microporous carbon, and no apparent attenuation was observed after 10,000 cycles. Furthermore, energy density of the assembled symmetrical supercapacitor reaches 7.4 Wh kg−1 at a power density of 151.4 W kg−1, and more than 87.8% of energy density is kept even under an ultra-large power density of 29.1 kW kg−1.
ISSN:0169-4332
1873-5584
DOI:10.1016/j.apsusc.2020.146020