TY - JOUR
T1 - Biomass nanoarchitectonics of hierarchical porous carbon with ultrahigh surface area for direct air carbon capture and supercapacitor
AU - Zhuang, Zitong
AU - Wang, Zhiqiang
AU - Xue, Yangbo
AU - Su, Jinzhan
AU - Shi, Jinwen
AU - Jin, Hui
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/8
Y1 - 2026/8
N2 - High specific surface area carbon materials have attracted significant attention due to their important roles in energy and environmental applications. However, it remains a major challenge to enhance their performance by incorporating effective hierarchical pore structures while maintaining the ultrahigh specific surface area. A low-cost and versatile N-doped carbon material with hierarchical nanopores and ultrahigh specific surface area was prepared via supercritical CO2-assisted urea pretreatment followed by simple activation. The prepared carbon materials were fabricated into supercapacitor electrodes and amine-loaded solid adsorbents to evaluate its electrochemical performance and carbon dioxide adsorption capacity. The results showed that, due to its remarkable specific surface (3784.23 m2/g), excellent pore volume (2.21 cm3/g), hierarchical pore structure, and considerable N-loading rate (5.69 wt%), the carbon material achieved a specific capacitance of up to 321.48 F/g at a current density of 0.5 A/g in a 1 mol/L electrolyte, with a capacitance retention rate of 91.08% after 1000 cycles at 5 A/g. Additionally, the corresponding amine-loaded solid adsorbent achieved a maximum CO2 adsorption capacity of 109.58 mg/g in simulated air containing 400 ppm CO2 under ambient conditions. These results demonstrate that the synergistic combination of ultrahigh surface area, hierarchical porosity, and nitrogen doping endows the biomass-derived carbon material with strong potential for integrated energy storage and carbon capture applications.
AB - High specific surface area carbon materials have attracted significant attention due to their important roles in energy and environmental applications. However, it remains a major challenge to enhance their performance by incorporating effective hierarchical pore structures while maintaining the ultrahigh specific surface area. A low-cost and versatile N-doped carbon material with hierarchical nanopores and ultrahigh specific surface area was prepared via supercritical CO2-assisted urea pretreatment followed by simple activation. The prepared carbon materials were fabricated into supercapacitor electrodes and amine-loaded solid adsorbents to evaluate its electrochemical performance and carbon dioxide adsorption capacity. The results showed that, due to its remarkable specific surface (3784.23 m2/g), excellent pore volume (2.21 cm3/g), hierarchical pore structure, and considerable N-loading rate (5.69 wt%), the carbon material achieved a specific capacitance of up to 321.48 F/g at a current density of 0.5 A/g in a 1 mol/L electrolyte, with a capacitance retention rate of 91.08% after 1000 cycles at 5 A/g. Additionally, the corresponding amine-loaded solid adsorbent achieved a maximum CO2 adsorption capacity of 109.58 mg/g in simulated air containing 400 ppm CO2 under ambient conditions. These results demonstrate that the synergistic combination of ultrahigh surface area, hierarchical porosity, and nitrogen doping endows the biomass-derived carbon material with strong potential for integrated energy storage and carbon capture applications.
KW - Biochar
KW - Direct air carbon capture
KW - Hierarchical nanoporous
KW - Nitrogen doping
KW - Supercapacitor
KW - Ultrahigh specific surface
UR - https://www.scopus.com/pages/publications/105034546575
U2 - 10.1016/j.biombioe.2026.109160
DO - 10.1016/j.biombioe.2026.109160
M3 - 文章
AN - SCOPUS:105034546575
SN - 0961-9534
VL - 211
JO - Biomass and Bioenergy
JF - Biomass and Bioenergy
M1 - 109160
ER -