载Ca磁性碳纳米管对水中腐殖酸的去除

李绍秀, 何敏旋, 王志红, 李冬梅, 蒋树贤, 李斌. 载Ca磁性碳纳米管对水中腐殖酸的去除[J]. 环境工程学报, 2017, 11(3): 1509-1514. doi: 10.12030/j.cjee.201603156
引用本文: 李绍秀, 何敏旋, 王志红, 李冬梅, 蒋树贤, 李斌. 载Ca磁性碳纳米管对水中腐殖酸的去除[J]. 环境工程学报, 2017, 11(3): 1509-1514. doi: 10.12030/j.cjee.201603156
LI Shaoxiu, HE Minxuan, WANG Zhihong, LI Dongmei, JIANG Shuxian, LI Bin. Removal of humic acid from aqueous solutions by magnetic MWCNTs coated calcium[J]. Chinese Journal of Environmental Engineering, 2017, 11(3): 1509-1514. doi: 10.12030/j.cjee.201603156
Citation: LI Shaoxiu, HE Minxuan, WANG Zhihong, LI Dongmei, JIANG Shuxian, LI Bin. Removal of humic acid from aqueous solutions by magnetic MWCNTs coated calcium[J]. Chinese Journal of Environmental Engineering, 2017, 11(3): 1509-1514. doi: 10.12030/j.cjee.201603156

载Ca磁性碳纳米管对水中腐殖酸的去除

  • 基金项目:

    广东省科技计划项目(2013B020800008)

  • 中图分类号: X703

Removal of humic acid from aqueous solutions by magnetic MWCNTs coated calcium

  • Fund Project:
  • 摘要: 采用化学共沉淀一步法以钙盐和铁盐对多壁碳纳米管(MWCNTs)改性以制备具有去除水中微污染物腐殖酸的磁性碳纳米管复合材料。X射线能谱分析表明改性MWCNTs上载有Ca和Fe元素。通过振动样品磁强计测得该复合材料具有较强磁性。改性后的MWCNTs 30 min对水中腐殖酸的去除率由改性前的63.89%提高到90.27%。研究了改性MWCNTs投加量、腐殖酸初始浓度、吸附时间、振荡速度、pH及温度对水中腐殖酸去除的影响。结果表明,腐殖酸去除率随着载Ca磁性MWCNTs投加量增大而提高。吸附量随着腐殖酸初始浓度的增大而增加,但去除率却减小。吸附初期腐殖酸去除速率快,0.5 g·L-1的载Ca磁性多壁碳纳米管在腐殖酸初始浓度为20 mg·L-1时,5 h达到吸附平衡,平衡吸附量为39.41 mg·g-1。腐殖酸去除率随着振荡速度的增大而增大,在225 r·min-1时达最大,随后随着振荡速度的增大而缓慢下降。在弱酸性下,腐殖酸去除率较高,当pH为5时,腐殖酸去除率达到92.24%;当pH5时,腐殖酸去除率随pH增大呈下降趋势。腐殖酸去除率随着温度的升高而降低。
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  • [1] MOHAMMAD H D, MASOOME M, MAHMOOD A,et al.High-performance removal of toxic phenol by single-walled and multi-walled carbon nanotubes:Kinetics, adsorption, mechanism and optimization studies[J].Journal of Industrial and Engineering Chemistry, 2016, 35:63-74
    [2] BEHZAD H, MAHBOOBEH G, AHMAD B A, et al.Removal of linear alkyl benzene sulfonate from aqueous solutions by functionalized multi-walled carbon nanotubes[J].Journal of Molecular Liquids, 2016,213:339-344
    [3] BENNY P, TOMONORI O, TSUTOMU I,et al.Systematic sorption studies of camptothecin on oxidized single-walled carbon nanotubes[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects, 2016, 490:121-132
    [4] SHAHAB K, MOHAMMAD R A M. Enhancing the adsorption performance of carbon nanotubes with a multistep functionalization method:Optimization of Reactive Blue 19 removal through response surface methodology[J]. Process Safety and Environmental Protection, 2016, 99:20-29
    [5] FAN X J,LI X.Preparation and magnetic properties of multiwalled carbon nanotubes decorated by Fe3O4 nanoparticles[J].New Carbon Materials,2012,27(2):111-116
    [6] 胡栩豪,高乃云,归谈纯,等.多壁碳纳米管对水中敌草隆的吸附性能研究[J].水处理技术,2012,38(11):25-29
    [7] QIONG L,JINGANG Y,FANG Z,et al.Synthesis and characterization of dithiocarbamate carbon nanotubes for the removal of heavy metal ions from aqueous solutions[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2015,482:306-314
    [8] QI W,LIANG C,YU B S.Removal of radiocobalt from aqueous solution by oxidized MWCNT[J].Journal of Radioanalytical Nuclear Chemistry,2012,291(3):787-795
    [9] IHSANULLAH, AAMIR A, ADNAN M A, et al.Heavy metal removal from aqueous solution by advanced carbon nanotubes:Critical review of adsorption applications[J].Separation and Purification Technology, 2016, 157:141-161
    [10] IRAM M,CLÉUDIA B L,ISABEL L,et al.Nanoscale materials and their use in water contaminants removal:A review[J].Environment Science Pollution Research,2013,20:1239-1260
    [11] KARIM Z, HAMIDREZA S, RAMIN S, et al.Enhanced removal of toxic congo red dye using multi walled carbon nanotubes:Kinetic, equilibrium studies and its comparison with other adsorbents[J].Journal of Molecular Liquids, 2015,212:266-271
    [12] SHUBO D,RENBI B. Adsorption and desorption of humic acid on aminated polyacrylonitrile fibers[J].Journal of Colloid and Interface Science,2004,280(1):36-43
    [13] 陈秀雯,傅晶,邵嘉慧.荷负电超滤膜同时去除水中天然有机物和铅离子[J].环境工程学报,2015,9(11):5322-5328
    [14] 蔡广强,刘丽君,卢小艳,等.典型南方水源溶解性有机物荧光特性变化与去除[J].环境工程学报,2015,9(11):5288-5294
    [15] 王家宏,毕丽娟,马宏瑞,等.多壁碳纳米管对水中腐殖酸的吸附行为研究[J].陕西科技大学学报(自然科学版),2012,30(4):12-15
    [16] 朱志平, 黄可龙, 周艺.碳纳米管吸附腐殖酸的动力学、热力学及机理研究[J].无机材料学报, 2011,26(2):170-174
    [17] 常明慧.土壤腐殖酸与无机碳相互作用机制的研究[D].武汉:华中农业大学,2013
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出版历程
  • 收稿日期:  2016-06-12
  • 刊出日期:  2017-03-10
李绍秀, 何敏旋, 王志红, 李冬梅, 蒋树贤, 李斌. 载Ca磁性碳纳米管对水中腐殖酸的去除[J]. 环境工程学报, 2017, 11(3): 1509-1514. doi: 10.12030/j.cjee.201603156
引用本文: 李绍秀, 何敏旋, 王志红, 李冬梅, 蒋树贤, 李斌. 载Ca磁性碳纳米管对水中腐殖酸的去除[J]. 环境工程学报, 2017, 11(3): 1509-1514. doi: 10.12030/j.cjee.201603156
LI Shaoxiu, HE Minxuan, WANG Zhihong, LI Dongmei, JIANG Shuxian, LI Bin. Removal of humic acid from aqueous solutions by magnetic MWCNTs coated calcium[J]. Chinese Journal of Environmental Engineering, 2017, 11(3): 1509-1514. doi: 10.12030/j.cjee.201603156
Citation: LI Shaoxiu, HE Minxuan, WANG Zhihong, LI Dongmei, JIANG Shuxian, LI Bin. Removal of humic acid from aqueous solutions by magnetic MWCNTs coated calcium[J]. Chinese Journal of Environmental Engineering, 2017, 11(3): 1509-1514. doi: 10.12030/j.cjee.201603156

载Ca磁性碳纳米管对水中腐殖酸的去除

  • 1. 广东工业大学土木与交通工程学院, 广州 510006
基金项目:

广东省科技计划项目(2013B020800008)

摘要: 采用化学共沉淀一步法以钙盐和铁盐对多壁碳纳米管(MWCNTs)改性以制备具有去除水中微污染物腐殖酸的磁性碳纳米管复合材料。X射线能谱分析表明改性MWCNTs上载有Ca和Fe元素。通过振动样品磁强计测得该复合材料具有较强磁性。改性后的MWCNTs 30 min对水中腐殖酸的去除率由改性前的63.89%提高到90.27%。研究了改性MWCNTs投加量、腐殖酸初始浓度、吸附时间、振荡速度、pH及温度对水中腐殖酸去除的影响。结果表明,腐殖酸去除率随着载Ca磁性MWCNTs投加量增大而提高。吸附量随着腐殖酸初始浓度的增大而增加,但去除率却减小。吸附初期腐殖酸去除速率快,0.5 g·L-1的载Ca磁性多壁碳纳米管在腐殖酸初始浓度为20 mg·L-1时,5 h达到吸附平衡,平衡吸附量为39.41 mg·g-1。腐殖酸去除率随着振荡速度的增大而增大,在225 r·min-1时达最大,随后随着振荡速度的增大而缓慢下降。在弱酸性下,腐殖酸去除率较高,当pH为5时,腐殖酸去除率达到92.24%;当pH5时,腐殖酸去除率随pH增大呈下降趋势。腐殖酸去除率随着温度的升高而降低。

English Abstract

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