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Designing activated carbon and porous carbon nanofibers for insight into their differences in adsorption affinity mechanisms of VOCs.

Authors :
Xu, Xiang
Wang, Huijun
Yu, Shaohong
Chen, Hongyu
Guo, Yang
Zhou, Changkai
Zeng, Zheng
Li, Liqing
Source :
Applied Surface Science. Jun2024, Vol. 659, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

[Display omitted] • Activated carbon and porous carbon nanofibers were obtained from PAN. • N and O containing functional groups promote the VOCs adsorption. • Adsorption energies and electrostatic interaction of AC and CNFs were analyzed. • The adsorption of VOCs on inner and outer sites of CNFs were compared. The adsorption technology has been considered as an effective and economical strategy to control volatile organic compounds (VOCs) through various types of porous materials. As two potential porous materials, activated carbon and carbon nanofibers were synthesized as VOCs adsorbents. In order to investigate the difference in the adsorption of VOCs between activated carbon and carbon nanofibers, the specific surface area, pore structure and chemical functional groups of VOCs adsorbent were analyzed. In particular, the carbon nanofibers (CNF) activated at 800 ℃ showed an excellent specific surface area (2524 m2·g−1), abundant pores (1.66 mL·g−1), and rich functional groups (N: 8.29 at%). Meanwhile, the carbon nanofibers had a better adsorption performance for acetone (1069.82 mg·g−1) and toluene (427.72 mg·g−1) than activated carbon materials. Furthermore, the theoretical calculations were conducted to reveal the mechanism of favorable adsorption on the CNFs. The theoretical adsorption energies of CNF are −31.9 kJ·mol−1 (acetone) and −67.5 kJ·mol−1 (toluene), respectively, which have more favorable adsorption sites and stronger charge redistribution than activated carbon. This research guided the approach to obtain the porous carbon nanofibers and provided the evidence for CNFs (curved carbon) exhibiting a better adsorption ability to VOCs. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
659
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
176296146
Full Text :
https://doi.org/10.1016/j.apsusc.2024.159961