TY - JOUR
T1 - Conversion of high moisture biomass to hierarchical porous carbon via molten base carbonisation and activation for electrochemical double layer capacitor
AU - Egun, Ishioma Laurene
AU - Akinwolemiwa, Bamidele
AU - Yin, Bo
AU - Tian, Hai
AU - He, Haiyong
AU - Fow, Kam Loon
AU - Zhang, Honglei
AU - Chen, George Z.
AU - Hu, Di
N1 - Publisher Copyright:
© 2024 The Author(s)
PY - 2024/10
Y1 - 2024/10
N2 - Biomass-derived carbon for supercapacitors faces the challenge of achieving hierarchical porous carbon with graphitic structure and specific heteroatoms through a single-stage thermal process that minimises resource input. Herein, molten base carbonisation and activation is proposed. The process utilises the inherent moisture of Moso bamboo shoots, coupled with a low amount of KOH, to form potassium organic salts before drying. The resultant potassium salts promote in-situ activation during single-stage heating process, yielding hierarchical porous, large specific surface area, and partially graphitised carbon with heteroatoms (N, O). As an electrode material, this carbon exhibits a specific capacitance of 327F g−1 in 6 M KOH and 182F g−1 in 1 M TEABF4/AN, demonstrating excellent cycling stability over 10,000 cycles at 2 A/g. Overall, this study presents a straightforward process that avoids pre-drying of biomass, minimises base consumption, and employs single-stage heating to fabricate electrode carbon suitable for supercapacitors.
AB - Biomass-derived carbon for supercapacitors faces the challenge of achieving hierarchical porous carbon with graphitic structure and specific heteroatoms through a single-stage thermal process that minimises resource input. Herein, molten base carbonisation and activation is proposed. The process utilises the inherent moisture of Moso bamboo shoots, coupled with a low amount of KOH, to form potassium organic salts before drying. The resultant potassium salts promote in-situ activation during single-stage heating process, yielding hierarchical porous, large specific surface area, and partially graphitised carbon with heteroatoms (N, O). As an electrode material, this carbon exhibits a specific capacitance of 327F g−1 in 6 M KOH and 182F g−1 in 1 M TEABF4/AN, demonstrating excellent cycling stability over 10,000 cycles at 2 A/g. Overall, this study presents a straightforward process that avoids pre-drying of biomass, minimises base consumption, and employs single-stage heating to fabricate electrode carbon suitable for supercapacitors.
KW - Bamboo shoots
KW - Capacitance
KW - Graphitic
KW - Heteroatoms
KW - Potassium ion
KW - Specific surface area
KW - Ultra micropores
UR - http://www.scopus.com/inward/record.url?scp=85200976741&partnerID=8YFLogxK
U2 - 10.1016/j.biortech.2024.131251
DO - 10.1016/j.biortech.2024.131251
M3 - Article
C2 - 39127362
AN - SCOPUS:85200976741
SN - 0960-8524
VL - 409
JO - Bioresource Technology
JF - Bioresource Technology
M1 - 131251
ER -