吸附
活性炭
苯酚
化学工程
热解
热稳定性
化学
比表面积
煤焦油
tar(计算)
碳纤维
表面改性
材料科学
弗伦德利希方程
有机化学
粉末活性炭处理
煤
热的
无机化学
密度泛函理论
作者
Zixian Jia,Jiao Huang,Yaming Zhu,Huichao Zhang,Junxia Cheng,Zhenning Zhao,Xuefei ZHAO
标识
DOI:10.1016/j.jaap.2026.107723
摘要
To promote the efficient utilization of medium-low temperature coal tar pitch (MLP) and address the challenge of phenol-containing wastewater, this study proposes an approach for preparing activated carbon using self-pressurized modification combined with thermal conversion and activation. By optimizing the modification conditions and activation parameters, activated carbon with a high specific surface area and a well-developed pore structure was successfully prepared. The adsorption performance of the activated carbon for phenol was systematically evaluated, and its adsorption mechanism and recyclability were also investigated. The results indicate that during self-pressurized modification, the modification temperature is a crucial parameter in regulating the molecular structure and thermal stability of the tar. The synergistic effect of modification temperature and pressure determines the mechanical properties of the tar pitch by controlling its optical microstructure. The prepared activated carbon (RC P -AC) exhibited a high specific surface area of 2889.10 m²/g and a phenol adsorption capacity of 131.27 mg/g. The adsorption process followed the pseudo-second-order kinetic model and was well described by the Freundlich isotherm model. After five cycles of ethanol regeneration, RC P -AC retained a phenol regeneration rate of 80.44%. Fixed-bed column experiments demonstrate that 0.5 g of RC P -AC is capable of completely purifying 1290 mL of a 50 mg/L phenol solution. Density functional theory (DFT) calculations further elucidated the interaction mechanisms between RC P -AC and phenol molecules, covering synergistic effects involving hydrogen bonding, π-π interactions, electrostatic forces, and pore filling. This study provides theoretical support for the high-value utilization of MLP and the treatment of phenolic wastewater. By employing self-pressurized modification combined with thermal conversion and activation, medium-low temperature coal tar pitch is transformed into high-performance activated carbon. The modification conditions were optimized, and the adsorption behavior and mechanism of activated carbon toward phenol were systematically investigated. • Self-pressurized modification regulates the microstructure of coal tar pitch. • The resulting activated carbon demonstrates superior adsorption performance. • Adsorption proceeds via synergistic effects of multiple interaction mechanisms. • The material shows high industrial applicability and economic potential.
科研通智能强力驱动
Strongly Powered by AbleSci AI