纺织学报 ›› 2026, Vol. 47 ›› Issue (07): 74-81.doi: 10.13475/j.fzxb.20260404402

• 第二十八届中国科协年会学术论文·减污降碳共性技术突破专栏· • 上一篇    下一篇

活性炭纤维疏水改性及其挥发性气体吸附性能研究进展

秦海苹1,2, 张亚杰1,2, 葛建龙1,2, 刘其霞1,2(), 于彩娇1,2, 陈天烨3   

  1. 1 南通大学 纺织服装学院, 江苏 南通 226019
    2 南通大学 安全防护用特种纤维复合材料研发国家地方联合工程研究中心, 江苏 南通 226019
    3 江苏苏通碳纤维有限公司, 江苏 南通 226005
  • 收稿日期:2026-04-21 修回日期:2026-05-11 出版日期:2026-07-15 发布日期:2026-07-29
  • 通讯作者: 刘其霞(1983—),女,教授,博士。主要研究方向为新型炭材料的开发与应用。E-mail:lqx@ntu.edu.cn
  • 作者简介:秦海苹(1997—),女,硕士生。主要研究方向为活性炭纤维疏水改性及其挥发性气体吸附性能。
  • 基金资助:
    国家自然科学基金项目(22408181);江苏省研究生科研与实践创新计划项目(JXCX25-2032);南通市自然科学基金面上项目(JC2024092)

Research progress in hydrophobic modification of activated carbon fibers and their adsorption performance for volatile gases

QIN Haiping1,2, ZHANG Yajie1,2, GE Jianlong1,2, LIU Qixia1,2(), YU Caijiao1,2, CHEN Tianye3   

  1. 1 School of Textile and Clothing, Nantong University, Nantong, Jiangsu 226019, China
    2 National & Local Joint Engineering Research Center of Technical Fiber Composites for Safety and Health, Nantong University, Nantong, Jiangsu 226019, China
    3 Jiangsu Sutong Carbon Fiber Co., Ltd., Nantong, Jiangsu 226005, China
  • Received:2026-04-21 Revised:2026-05-11 Published:2026-07-15 Online:2026-07-29

摘要:

活性炭纤维(ACF)是第3代新型碳基吸附材料,具有大比表面积、丰富的微孔和官能团,广泛应用于挥发性气体吸附领域。针对在高湿度环境下,ACF表面丰富的含氧基团能够通过氢键与水分子相结合产生竞争吸附,导致其对挥发性气体的吸附能力大幅度降低,并限制了其在挥发性气体吸附领域应用的问题,系统梳理了ACF的多种疏水改性技术,包括物理改性和化学改性,并结合实例评述了ACF的不同疏水改性方法对其挥发性气体吸附性能的影响。总结了不同疏水改性方法的优势和不足,并对未来进行了展望,认为ACF疏水改性研究应致力于优化改性工艺、深入研究吸附作用机制、融合多种改性技术优势及探究多组分体系竞争吸附规律及物理-化学复合改性的协同作用机制,进一步拓展ACF在多领域的应用潜力。

关键词: 活性炭纤维, 疏水改性, 挥发性气体, 吸附性能, 物理吸附, 化学吸附, 多孔炭材料

Abstract:

Significance Activated carbon fiber (ACF) is the third-generation novel carbon-based adsorbent material, featuring high specific surface area, abundant micropores, and rich functional groups, and widely used in the field of volatile gas adsorption. However, because the oxygen-containing functional groups on the surface of ACF can combine with water molecules through hydrogen bonds in high humidity environments resulting in water molecules adsorbed in ACF, which greatly reduce the adsorption capacity of ACF for volatile gases. This critical limitation severely restricts the practical application of ACF in volatile gas adsorption in high-humidity environments. Therefore, precise regulation of ACF hydrophobicity by surface modification has emerged as a core research direction to enhance its practical value. To date, superhydrophobic functionalized ACF have been developed for volatile gas adsorption, but their modification mechanisms can directly modulate the adsorption performance. In order to comprehensively clarify the intrinsic correlation between ACF hydrophobic modification technologies and volatile gas adsorption properties, as well as to identify the current research status and development bottlenecks, this review conducts a systematic investigation on the hydrophobic modification of ACF and their applications in volatile gas adsorption.

Progress In response to the demand for efficient volatile gas removal under high-humidity conditions, ACF integrating a large specific surface area and excellent adsorption performance has become a research hotspot in the adsorption field. The adsorption performance of ACF is synergistically determined by physical adsorption (dominated by Van Der Waals forces) and chemical adsorption (dominated by chemical bonding), which directly or indirectly influences its volatile gas adsorption efficacy. In order to further enhance the volatile gas adsorption performance of ACF, precise regulation of its specific surface area, as well as the composition and distribution of surface functional groups, is essential to achieve the synergistic optimization of physical and chemical adsorption. Research findings indicate that the physical structure and chemical properties of ACF are key factors governing their hydrophobicity and volatile gas adsorption performance, and the corresponding research progress has been initially summarized and discussed.

Conclusion and Prospect Hydrophobic ACF exhibit tremendous application potential in volatile gas purification and adsorption separation by virtue of their excellent hydrophobicity and superior adsorption performance. This review systematically summarizes the research progress on hydrophobic modification methods of ACF and their effects on volatile gas adsorption performance, and analyzes the physical and chemical adsorption mechanisms of different hydrophobic modification strategies on volatile gas adsorption. The results demonstrate that ACF hydrophobic modification is primarily achieved through two pathways. One is the selective reduction of hydrophilic surface functional groups to minimize hydrogen bonding sites with water molecules, and the other the introduction of low-surface-energy functional groups to decrease the surface free energy of ACF. The modified hydrophobic ACF can effectively inhibit the competitive adsorption between water molecules and volatile gases at the active sites under high-humidity conditions, thereby significantly improving the selective adsorption performance for volatile gases. Furthermore, precise regulation of modification process parameters enables targeted tuning of the specific surface area, pore structure parameters, and surface chemical properties of ACF, which in turn meets the adsorption requirements for different types of volatile gases and realizes the directional optimization of adsorption performance. Future research should focus on three key aspects, i.e., screening environmentally friendly, low-cost, and functionally synergistic hydrophobic modifiers to balance hydrophobicity and adsorption activity, developing high-efficiency and low-energy-consumption modification processes to address the limitations of traditional methods, and deepening the microscopic mechanism underlying the relationship between hydrophobicity and adsorption performance through advanced characterization techniques and density functional theory calculations. The ultimate goal is to develop hydrophobic ACF adsorbents with high adsorption capacity, excellent selectivity, and long-cycle stability, so as to meet the rigorous requirements for volatile gas adsorption in practical industrial applications.

Key words: activated carbon fiber, hydrophobic modification, volatile gas, adsorption performance, physical adsorption, chemical adsorption, porous carbon material

中图分类号: 

  • TS102.52
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