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
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
QIN Haiping1,2, ZHANG Yajie1,2, GE Jianlong1,2, LIU Qixia1,2(
), YU Caijiao1,2, CHEN Tianye3
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。
中图分类号:
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