无机盐工业
主管:中海油天津化工研究设计院有限公司
主办:中海油天津化工研究设计院有限公司
   中海油炼油化工科学研究院(北京)有限公司
   中国化工学会无机酸碱盐专业委员会
ISSN 1006-4990 CN 12-1069/TQ
研究与开发

绿色法制备多孔球状镧铁复合物及其吸附磷性能研究

  • 姜德彬 ,
  • 吕倩凤 ,
  • 向美玲 ,
  • 曾兴宇 ,
  • 张育新 ,
  • 封丽
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  • 1.重庆工商大学环境与资源学院,重庆 400067
    2.重庆大学
    3.重庆市生态环境科学研究院
姜德彬(1984— ),男,博士,主要研究方向为新型环境功能材料;E-mail:jiangdebin@ctbu.edu.cn

收稿日期: 2021-10-20

  网络出版日期: 2022-07-14

Study on preparation of porous spherical lanthanum-iron complex by green method and its phosphate adsorption performance

  • Debin JIANG ,
  • Qianfeng Lü ,
  • Meiling XIANG ,
  • Xingyu ZENG ,
  • Yuxin ZHANG ,
  • Li FENG
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  • 1.College of Environment and Resources, Chongqing Technology and Business University, Chongqing, 400067
    2.Chongqing University
    3.Chongqing Academy of Eco-Environmental Science

Received date: 2021-10-20

  Online published: 2022-07-14

摘要

利用水热法和碱刻蚀法制备多孔球状镧铁复合物(LFA-C)。通过扫描电镜(SEM)、红外光谱仪(FTIR)、X射线衍射仪(XRD)和比表面及微孔物理吸附仪对复合物材料进行表征分析,并考察其作为吸附剂对磷酸盐的吸附性能。结果表明,LFA-C材料表面形貌粗糙多孔,碱刻蚀过程促进氢氧化镧在LFA-C的表面生成,同时LFA-C的比表面积增加有利于获得更多的吸附活性位点。吸附动力学研究表明,LFA-C的吸附过程符合准二级动力学模型。热力学研究发现Langmiur模型能更好地拟合吸附等温线,拟合饱和吸附量为159.08 mg/g。在共存离子条件下,LFA-C吸附磷酸盐的抗干扰能力强,同时LFA-C通过吸附-解析过程展现出良好的循环性能。LFA-C作为高效去磷、抑制富营养化的环境功能材料,具有广阔的应用前景。

本文引用格式

姜德彬 , 吕倩凤 , 向美玲 , 曾兴宇 , 张育新 , 封丽 . 绿色法制备多孔球状镧铁复合物及其吸附磷性能研究[J]. 无机盐工业, 2022 , 54(7) : 85 -90 . DOI: 10.19964/j.issn.1006-4990.2021-0633

Abstract

Porous spherical lanthanum-iron complexes(LFA-C) were prepared by hydrothermal and alkaline etching methods.The composite was characterized and analyzed by scanning electron microscopy(SEM),fourier transform infrared spectroscopy(FTIR),X-ray diffraction(XRD),specific surface and microporous physical adsorption instrument.And its adsorption properties of phosphate as adsorbent was investigated.The results showed that the surface of porous lanthanum-iron complexes was rough and porous.The alkali etching process promoted the formation of La(OH)3 on the surface of LAF-C.At the same time,the increase of the specific surface area of LAF-C was conducive to obtain more adsorption active sites.The study of adsorption kinetics showed that the adsorption process of LAF-C conformed to the quasi second-order kinetic model.The saturated adsorption capacity was 159.08 mg/g.Under the condition of coexisting ions,LAF-C had strong anti-interference ability to adsorb phosphate.At the same time,LAF-C showed good cyclic performance through adsorption-desorption process.As an environmental functional material with high efficiency in dephosphorization and eutrophication inhibition,LFA-C had broad application prospects.

参考文献

1 曹琳,刘煌,许国静,等.壳聚糖-镧改性膨润土的制备及除藻除磷性能[J].环境工程学报,2021,15(8):2555-2562.
1 CAO Lin, LIU Huang, XU Guojing,et al.Chitosan-lanthanum mo-
1 dified bentonite preparation and its removal performance of algae and phosphorus[J].Chinese Journal of Environmental Engineering, 2021,15(8):2555-2562.
2 WU Baile, LO I M C.Surface functional group engineering of CeO2 particles for enhanced phosphate adsorption[J].Environmental Science & Technology,2020,54(7):4601-4608.
3 KIM T H, LUNDEH?J L, NIELSEN U G.An investigation of the phosphate removal mechanism by MgFe layered double hydroxid-
3 es[J].Applied Clay Science,2020,189.Doi:10.1016/j.clay.2020 .
3 105521.
4 WEI Yanfu, YUAN Peng, LIU Dong,et al.Activation of natural halloysite nanotubes by introducing lanthanum oxycarbonate nano-
4 particles via co-calcination for outstanding phosphate removal[J].Chemical Communications:Cambridge,England,2019,55(14):2110-2113.
5 张小宇,张世熔,王新月,等.镧改性农业废弃秸秆对养殖废水中磷的去除[J].环境化学,2021,40(4):1274-1284.
5 ZHANG Xiaoyu, ZHANG Shirong, WANG Xinyue,et al.Removal of phosphorus from wastewater by lanthanum modified straws[J].Environmental Chemistry,2021,40(4):1274-1284.
6 ZHI Yue, ZHANG Chuhui, HJORTH R,et al.Emerging lanthan-
6 um(Ⅲ)-containing materials for phosphate removal from water:A review towards future developments[J].Environment International,2020,145.Doi:10.1016/j.envint.2020.106115 .
7 FANG Liping, WU Baile, CHAN J K M,et al.Lanthanum oxide nanorods for enhanced phosphate removal from sewage:A response
7 surface methodology study[J].Chemosphere,2018,192:209-216.
8 WU Baile, WAN Jun, ZHANG Yanyang,et al.Selective phosphate removal from water and wastewater using sorption:Process fundamentals and removal mechanisms[J].Environmental Science & Technology,2020,54(1):50-66.
9 KOH K Y, ZHANG Sui, CHEN J P.Hydrothermally synthesized lanthanum carbonate nanorod for adsorption of phosphorus:Material synthesis and optimization,and demonstration of excellent performance[J].Chemical Engineering Journal,2020,380.Doi:10 .
9 1016/j.cej.2019.122153.
10 FANG Liping, SHI Qiantao, NGUYEN J,et al.Removal mechanisms of phosphate by lanthanum hydroxide nanorods:Investigations using EXAFS,ATR-FTIR,DFT,and surface complexation modeling approaches[J].Environmental Science & Technology,2017,51(21):12377-12384.
11 倪琳洁,邱欢,刘晓玲,等.镧改性木槿皮吸附剂制备及对废水中磷的吸附[J].生态与农村环境学报,2021,37(2):234-
241 NI Linjie, QIU Huan, LIU Xiaoling,et al.A new adsorbent for phosphorus removal from bark of hibiscus syriacus modified by lanthanum[J].Journal of Ecology and Rural Environment,2021,37(2):234-241.
12 王波,唐勇,杨景龙,等.镧-钙双金属凝胶微球对水中低磷含量的去除性能[J].水处理技术,2021,47(4):86-90,105.
12 WANG Bo, TANG Yong, YANG Jinglong,et al.Removal performance of low content phosphorus in water by lanthanum-calcium bimetallic gel microspheres[J].Technology of Water Treatment,2021,47(4):86-90,105.
13 DONG Fan, Meiya OU, JIANG Yanke,et al.Efficient and durable visible light photocatalytic performance of porous carbon nitride nanosheets for air purification[J].Industrial & Engineering Chemistry Research,2014,53(6):2318-2330.
14 WANG Li, WANG Jingyi, YAN Wei,et al.MgFe2O4-biochar based lanthanum alginate beads for advanced phosphate remo-
14 val[J].Chemical Engineering Journal,2020,387.Doi:10.1016/j.cej.2019.123305 .
15 YANG W D, CHANG Y H, HUANG Shuhui.Influence of molar ratio of citric acid to metal ions on preparation of La0.67Sr0.33MnO3 materials via polymerizable complex process[J].Journal of the European Ceramic Society,2005,25(16):3611-3618.
16 TRETTENHAHN G, K?BERL A.Anodic decomposition of citric acid on gold and stainless steel electrodes:An in situ-FTIR-spec-
16 troscopic investigation[J].Electrochimica Acta,2007,52(7):2716-2722.
17 陆谢娟,童山原,冯璐,等.镁盐改性凹凸棒土颗粒制备优化及磷吸附特性[J].工业水处理,2021,41(6):179-185.
17 LU Xiejuan, TONG Shanyuan, FENG Lu,et al.Optimization of preparation of magnesium salt modified attapulgite particles and adsorption characteristics of phosphate[J].Industrial Water Treat-
17 ment,2021,41(6):179-185.
18 赵敏,张小平,王梁嵘.硅改性花生壳生物炭对水中磷的吸附特性[J].环境科学,2021,42(11):5433-5439.
18 ZHAO Min, ZHANG Xiaoping, WANG Liangrong.Characteristics of phosphorus adsorption in aqueous solution by Si-modified peanut shell biochar[J].Environmental Science,2021,42(11):5433-5439.
18 上接第 9 页)
18 approach to synthesize low-silica SAPO- 34 nanocrystals and their
18 application in the methanol-to-olefins(MTO) reaction[J].Catalysis Science & Technology,2016,6(20):7569-7578.
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