Activated carbon-hybridized and amine-modified polyacrylonitrile nanofibers toward ultrahigh and recyclable metal ion and dye adsorption from wastewater

被引:0
作者
Fengli Li
Chuang Chen
Yuda Wang
Wenpeng Li
Guoli Zhou
Haoqin Zhang
Jie Zhang
Jingtao Wang
机构
[1] Zhengzhou University,School of Chemical Engineering
[2] Zhengzhou University,Henan Institute of Advanced Technology
来源
Frontiers of Chemical Science and Engineering | 2021年 / 15卷
关键词
carbon-hybridized and amine-modified nanofibers; polyacrylonitrile; metal ions and dyes; wastewater; adsorption kinetics;
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中图分类号
学科分类号
摘要
Nanofibers with high specific surface area and chemical stability have broad prospects in the applications of adsorption. However, the adsorption capacity is limited by the scarcity of adsorption groups and storage space. Herein, the activated carbon-hybridized and amine-modified nanofibers are prepared by integrating activated carbon (AC) and polyacrylonitrile (PAN) via electrospinning method and the subsequent amination, which could provide additional storage space and adsorption groups for ultrahigh adsorption capability. Thus, the obtained aminerich porous PAN nanofibers (APAN/AC) readily realized the ultrahigh adsorption capacity for metal ions and dyes in wastewater. Specifically, the adsorption capacity of APAN/AC nanofibers were 284 mg·g−1 for Cr(VI) and 248 mg·g−1 for methyl orange, which were almost 2 and 4 times than that of amine-modified nanofibers (APAN) and carbon-hybridized nanofibers (PAN/AC), respectively. Moreover, the AC inhibited the chain mobility of polymer matrix and thereby endowing APAN/AC nanofibers with excellent recyclability. The adsorption capability retained 80% after nine adsorption-desorption cycles. The adsorption kinetics and corresponding mechanism were further explored. This strategy combines the advantages of polymer nanofibers and AC, opening a new avenue for developing next-generation absorbent materials.
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页码:984 / 997
页数:13
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  • [1] Tian L(2018)A novel GO/PNIPAm hybrid with two functional domains can simultaneously effectively adsorb and recover valuable organic and inorganic resources Chemical Engineering Journal 343 607-618
  • [2] Jiang H(2019)Adsorption behavior and mechanism of Pb(II) on a novel and effective porphyrin-based magnetic nanocomposite Applied Surface Science 484 124-134
  • [3] Chen P(2019)Preparation and performance of aminated polyacrylonitrile nanofibers for highly efficient copper ion removal. Colloids and Surfaces. A Physicochemical and Engineering Aspects 568 334-344
  • [4] Wang Q(2020)Simultaneous removal of SO Chemical Engineering Journal 384 123334-207
  • [5] Niu P(2019) and NO Chemical Engineering Journal 367 198-1213
  • [6] Shi Y(2019) by catalytic adsorption using g-Al Chemical Engineering Journal 374 1204-87
  • [7] Zhou M(2016)O Applied Surface Science 368 82-657
  • [8] Qing Y(2019) under the irradiation of non-thermal plasma: competitiveness, kinetic, and equilibrium Applied Surface Science 476 647-966
  • [9] Luo X(2019)Polyamine and amidoxime groups modified bifunctional polyacrylonitrile-based ion exchange fibers for highly efficient extraction of U(VI) from real uranium mine water Advanced Functional Materials 29 1805380-1136
  • [10] Yu J(2017)Hyperbranched topological swollen-layer constructs of multi-active sites polyacrylonitrile (PAN) adsorbent for uranium(VI) extraction from seawater Chemical Engineering Journal 313 957-219