Please wait a minute...
材料导报  2020, Vol. 34 Issue (9): 9012-9018    https://doi.org/10.11896/cldb.19050056
  材料与可持续发展(三)—环境友好材料与环境修复材料* |
磁性聚苯胺复合材料对工业废水中重金属吸附的研究进展
张文娟1, 费玉龙2, 王有良3, 张波波2, 马晓凯2
1 兰州理工大学省部共建有色金属先进加工与再利用国家重点实验室,兰州 730050
2 兰州理工大学材料科学与工程学院,兰州 730050
3 兰州理工大学机电工程学院,兰州 730050
Research Progress on the Adsorption of Heavy Metals in Industrial Wastewater by Magnetic Polyaniline Composites
ZHANG Wenjuan1, FEI Yulong2, WANG Youliang3, ZHANG Bobo2, MA Xiaokai2
1 State Key Laboratory for Advanced Processing and Recycling of Non-ferrous Metals, Lanzhou University of Technology, Lanzhou 730050, China
2 School of Materials Science and Engineering, Lanzhou University of Technology, Lanzhou 730050, China
3 School of Mechanical and Electrical Engineering, Lanzhou University of Technology, Lanzhou 730050, China
下载:  全 文 ( PDF ) ( 9653KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 随着工业的快速发展,金属电镀、肥料制造、电池、采矿等行业排放出大量含重金属离子的废水,不但严重污染环境,而且危害人类身体健康。因此,如何实现对废水中重金属离子的快速有效处理成为人们关注和亟待解决的关键技术问题。
近年来去除废水中重金属离子的方法不断涌现,主要有:氧化还原法、化学沉淀法、离子交换法、膜分离法和吸附法等。其中吸附法因具有吸附剂的材料来源广泛、种类繁多、较强的吸附能力等优点被广泛应用于废水处理领域。但是传统吸附材料因吸附效率低、吸附材料不能回收等问题已经不能满足日益严格的环境法规,因此,制备具有良好吸附效果、操作简单且可以回收的新型吸附材料一直是研究的重点。
磁性纳米颗粒具有很大的比表面积、良好的吸附性能,作为吸附剂能在外加磁场的作用下快速从液相中分离出来,避免二次污染,但磁性纳米颗粒具有较高的比表面能,易于团聚和氧化,限制了磁性纳米颗粒作为吸附剂在废水处理领域的应用。聚苯胺是一种导电高分子聚合物,对重金属离子具有良好的吸附性能。将聚苯胺材料引入磁性纳米颗粒中,不但可以提高磁性纳米颗粒的分散性和稳定性,使其能够适应各种复杂的吸附环境,还提高了磁性纳米颗粒对废水中重金属离子的吸附性能。
本文综述了磁性聚苯胺复合材料的结构、性质和制备方法,以及磁性聚苯胺复合材料的合成条件、形貌和吸附条件等因素对重金属离子吸附性能的影响机制。最后分析了磁性聚苯胺复合材料在处理工业废水时有待解决的问题,并展望了该材料的发展趋势,为含有重金属离子的废水处理提供更加充足的理论依据。
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
张文娟
费玉龙
王有良
张波波
马晓凯
关键词:  磁性纳米颗粒  聚苯胺  工业废水  吸附  重金属离子    
Abstract: With the rapid development of industry, a large number of wastewater containing heavy metal ions are discharged from metal plating, fertilizer manufacturing, batteries, mining and other industries, which not only seriously pollutes the environment but also endangers human health. Therefore, the preparation of new adsorbents with good adsorption effect, simple operation and recoverable has always been the focus of research.
In recent years, there have been many methods to remove heavy metal ions from wastewater, such as redox method, chemical precipitation method, ion exchange method, membrane separation method and adsorption method. Among many methods available, adsorption is considered to be a very promising technique for heavy metals removal since its easy synthetise, low cost and high efficiency. However, conventional adsorbents are difficult to meet the increasingly stringent environmental regulations to treat the heavy metal wastewaters. Therefore, development of new adsorbent material with good adsorption efficiency, simple operation and recoverable has always been the focus of research.
Magnetic nanoparticles with large surface areas, high adsorption capacities and good magnetic properties, which can be quickly separated from liquid phase with external magnetic forces and no secondary pollution. However, magnetic nanoparticles are prone to agglomeration in solution due to their high surface activities and magnetic interaction, which limits the application of magnetic nanoparticles as adsorbents in wastewater treatment. Polyaniline is a polyamine polymer with good adsorption properties for heavy metal ions. The introduction of polyaniline into magnetic nanoparticles can not only improve the dispersion and stability of magnetic nanoparticles, but also improve the adsorption performance of magne-tic nanoparticles for heavy metal ions in wastewater.
In this paper, the structure, properties and preparation methods of magnetic polyaniline composites are summarized. The factors influencing the adsorption of heavy metal ions by magnetic polyaniline composites, such as the synthesis conditions, morphology and adsorption conditions of magnetic polyaniline composites, are also discussed. Finally, the problems to be solved in the treatment of industrial wastewater by magnetic polyaniline composites are analyzed, and the development trend of the material is prospected, which will provide more sufficient theoretical basis for the treatment of wastewater containing heavy metal ions.
Key words:  magnetic nanoparticle    polyaniline    industrial wastewater    adsorption    heavy metal ions
                    发布日期:  2020-04-27
ZTFLH:  O482.54  
基金资助: 国家自然科学基金(51703088);甘肃省高等学校科研项目(2017A-010);2018年高分子材料重点实验室开放基金项目(KF-18-03);兰州理工大学红柳青年基金(061805);博士科研启动基金(061602)
通讯作者:  wangyouliang20@163.com   
作者简介:  张文娟,兰州理工大学省部共建有色金属先进加工与再利用国家重点实验室副研究员、硕士研究生导师。2015年在日本秋田县立大学取得博士学位。主要从事磁性纳米材料的制备及其应用研究,发表SCI、EI学术期刊研究论文8篇。
王有良,兰州理工大学机电工程学院讲师。2016年9月毕业于日本秋田县立大学,获得工学博士学位。从2016年10月至今,在兰州理工大学机电工程学院工作。主要从事纳米磁性材料的制备与应用的研究工作。
引用本文:    
张文娟, 费玉龙, 王有良, 张波波, 马晓凯. 磁性聚苯胺复合材料对工业废水中重金属吸附的研究进展[J]. 材料导报, 2020, 34(9): 9012-9018.
ZHANG Wenjuan, FEI Yulong, WANG Youliang, ZHANG Bobo, MA Xiaokai. Research Progress on the Adsorption of Heavy Metals in Industrial Wastewater by Magnetic Polyaniline Composites. Materials Reports, 2020, 34(9): 9012-9018.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.19050056  或          http://www.mater-rep.com/CN/Y2020/V34/I9/9012
1 Xu X, Cao Z, Zhang Z. Marine Pollution Bulletin,2016,110,596.
2 Yang C M, Wu Y Q, Zhang F, Chemical Speciation & Bioavailability,2016,28,133.
3 Zhang Z, Li J Y, Mamat Z, Ecotoxicology and Environmental Safety,2016,126,94.
4 Li X G, Dou Q, Huang M R, Progress Chemistry,2008,20(2/3),228(in Chinese).
李新贵,窦强,黄美荣.化学进展,2008,20(2/3),228.
5 Fang X H. Preparation of polyaniline/carbon composites and their performances in heavy metal removal from water. Master’s Thesis, Dalian University of Technology, China,2013(in Chinese).
房晓红.聚苯胺/碳复合材料的制备及去除水中重金属的性能研究.硕士学位论文,大连理工大学,2013.
6 Jain M, Garg V K, Kadirvelu K. International Journal of Environmental Science and Technology,2016,13,493.
7 Zarghamia Z, Akbaria A, Latifib A M. Bioresource Technology,2016,205,230.
8 Jiang J, Ai L H. Materials Letters,2008,62,3643.
9 Yang F, Chen J, Wu S, et al. New Chemical Materials,2018,46(11),234(in Chinese).
杨帆,陈均,吴思,等.化工新型材料,2018,46(11),234.
10 Xu Y. Product of HCl doped polyaniline/attapulgite nanocompo-sites and study on adsorption properties. Master’s Thesis, Lanzhou University of Technology, China,2011(in Chinese).
徐垚.盐酸掺杂聚苯胺/凹凸棒土纳米复合材料的制备及其吸附性能的研究.硕士学位论文,兰州理工大学,2011.
11 Ehsan Nazarzadeh Zare, Ahmad Motahari. Environmental Research,2018,162,173.
12 Gu S Y, Ren J. Polymer matrix composites, Chemical Industry Publisher,2007(in Chinese).
顾书英, 任杰.聚合物基复合材料,化学工业出版社,2007.
13 Bao L, Jiang J S. Physica B,200,367,182.
14 Tang B Z, Geng Y H, Sun Q H, et al. Pure and Applied Chemistry,2000,72(1-2),57.
15 Deng J G, He C L, Peng Y X, et al. Synthetic Metals,2003,139,295.
16 Deng J G, Din X B, Zhang W C, et al. Polymer,2002,43,2179.
17 Zhang Yijing, Lin Yenwen, Chang Chiachih, et al. Synthetic Metals,2010,160,1086.
18 Ding X F, Han D X, Wang Z J, et al. Journal of Colloid and Interface Science,2008,320,341.
19 Zhang Z M, Wan M X. Synthetic Metals,2003,132,205.
20 Singh K, O hl an A, Kotnala R K, et al. Materials Chemistry and Physica,2008,112,651.
21 Song E P. The research on preparation and absorption properties of polyaniline. Master’s Thesis, Xidian University, China,2014(in Chinese).
宋恩鹏.聚苯胺的合成及其吸收特性的研究.硕士学位论文,西安电子科技大学,2014.
22 Chen P C. Preparation of magnetic modified polyaniline and its adsorption of heavy metals. Master’s Thesis, Chengdu University of Technology,China,2018(in Chinese).
陈萍超.磁性改性聚苯胺的制备及其吸附重金属.硕士学位论文,成都理工大学,2018.
23 Li R J. Adsorptive removal of Hg(Ⅱ), Cr(Ⅵ) and Pb(Ⅱ) ions from aqueous solutions using nitrogen-containing conductive polymer composites. Ph.D. Thesis, Dalian University of Technology,China,2016(in Chinese).
李仁杰.含氮导电聚合物复合吸附材料去除水中Hg(Ⅱ)、Cr(Ⅵ)和Pb(Ⅱ)离子.博士学位论文,大连理工大学,2016.
24 Manish Chowalla, Hyeon Suk Shin, Goki Eda. Nature Chemistry,2013,5(4),263.
25 Zeng X W, Zhao D L. Function Materials,2004,35(s),605(in Chinese).
曾宪伟,赵东林.功能材料,2004,35(s),605.
26 Luo M N, He X M, Chen F, et al. Applied Chemical Industry,2018,47(9),1847(in Chinese).
罗米娜,何雪梅,陈馥,等.应用化工,2018,47(9),1847.
27 Zhang L, Chen L, Qi B, et al. RSC Advance,2015,5(3),1680.
28 Zhang Z K. Study on the synthesis and adsorption properties of tubular polyaniline. Master’s Thesis, Yangzhou University,2008(in Chinese).
张之魁.管状聚苯胺的合成及吸附性能研究.硕士学位论文,扬州大学,2008.
29 Zhao X, Li J. Journal of Jilin University,2015,53(5),1035(in Chinese).
赵霞,李佳.吉林大学学报,2015,53(5),1035.
30 Zhong W B, Xiong C L. Journal of Hunan University,2017,44(12),70(in Chinese).
钟文斌,熊昌伦.湖南大学学报,2017,44(12),70.
31 Hong X Q. Synthesis of micro/Nano structured conducting polymer/clay composites and their application for removal of Cr (Ⅵ) in aqoeous solution. Master’s Thesis, Anhui University of Technology,China,2014(in Chinese).
洪小琴.微/纳米结构导电聚合物/黏土复合材料的合成及其对水中六价铬的吸附性能研究.硕士学位论文,安徽工业大学,2014.
32 Luo J P, Fan X, Lu W, et al. Polymer Materials Science and Enginee-ring,2017,33(3),85(in Chinese).
罗健萍,樊新,陆唯,等.高分子材料科学与工程,2017,33(3),85.
33 Jonathan N. Coleman, Mustafa Lotya, Arlene O. Neill, Science,2011,331(6017),568.
34 Cui J J. The research on the modification of magnetic chitosan and its adsorption performance of copper ions. Master’s Thesis, Hunan University, China,2016(in Chinese).
崔京京.磁性壳聚糖改性及其对铜离子吸附性能的研究.硕士学位论文,湖南大学,2016.
[1] 贾子龙, 刘志红, 宋杨, 范晓东. Zr改性磷石膏/粉煤灰复合材料对选矿废水中油酸钠的吸附[J]. 材料导报, 2020, 34(7): 7015-7019.
[2] 曹新鑫, 李福昌. 石墨烯气凝胶的废水吸附性能研究进展[J]. 材料导报, 2020, 34(7): 7020-7025.
[3] 戴俊, 钱春香, 陈竞, 庞忠华. 无水乙酸钠对磷酸钾镁水泥水化性能和微观形貌的影响[J]. 材料导报, 2020, 34(6): 6066-6074.
[4] 王蓝青, 钟溢健, 陈南春, 解庆林. 溶胶-凝胶法制备离子印迹聚合物及其用于选择性吸附重金属离子的综述[J]. 材料导报, 2020, 34(5): 5016-5022.
[5] 肖江, 周书葵, 刘星, 储陆平, 张建, 李智东, 田林玉, 李嘉丽. 层状双金属氢氧化物及其复合材料去除水体中重金属离子的研究进展[J]. 材料导报, 2020, 34(5): 5023-5031.
[6] 那立艳, 张丽影, 张凤杰, 华瑞年. 室温非有机体系中HKUST-1的快速制备及对活性蓝194的吸附[J]. 材料导报, 2020, 34(4): 4137-4141.
[7] 张筱烨, 孙赫宇, 何洋, 李健健, 冯霞, 赵义平, 陈莉. PVDF/PAMAM复合膜的制备及对铜离子的吸附性能[J]. 材料导报, 2020, 34(4): 4142-4147.
[8] 申嘉荣, 徐千军. 高温对混凝土孔隙结构改变和抗压强度降低作用的规律研究[J]. 材料导报, 2020, 34(2): 2046-2051.
[9] 孙艳兵, 吕日文, 韩雪雯, 钟玮鸿, 黄剑, 刘畅, 戴荧, 曹小红. 铀(Ⅵ)在卟啉基MOF上的吸附行为[J]. 材料导报, 2020, 34(10): 10108-10113.
[10] 贾颖. Li在石墨烯表面吸附与迁移的第一性原理研究[J]. 材料导报, 2019, 33(Z2): 43-47.
[11] 黄泰愚, 范舟, 刘建仪. 硫在镍基合金钝化膜NiO表面吸附的第一性原理研究[J]. 材料导报, 2019, 33(Z2): 380-382.
[12] 蒋芳, 雷婷, 李声剑, 任子旋, 王利莲, 刘萌, 汤立红, 王世雄. 聚合物吸附剂的制备及在水体重金属污染净化应用中的研究进展[J]. 材料导报, 2019, 33(Z2): 526-532.
[13] 刘珊, 冯婷, 田薪成, 刘丹荣, 张悦, 李宇亮. 海藻酸钠-水合二氧化锰功能球对Cu(Ⅱ)的吸附性能研究[J]. 材料导报, 2019, 33(z1): 136-140.
[14] 范舟, 黄泰愚, 刘建仪. 硫对镍基合金825(100)电子结构影响的密度泛函研究[J]. 材料导报, 2019, 33(z1): 332-336.
[15] 姜德彬, 袁云松, 吴俊书, 杜玉成, 王金淑, 张育新. 硅藻土基复合材料在能源与环境领域的应用进展[J]. 材料导报, 2019, 33(9): 1483-1489.
No Suggested Reading articles found!
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed