|
|
Electrosorption Characteristics of NF/PDMA /MnO2-Co Capacitor Electrode for Pb2+ in a Dilute Solution of Lead Ions |
TANG Changbin1( ), NIU Hao2, HUANG Ping1, WANG Fei2, ZHANG Yujie1, XUE Juanqin1 |
1.School of Chemistry and Chemical Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China 2.School of Metallurgical Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China |
|
Cite this article:
TANG Changbin, NIU Hao, HUANG Ping, WANG Fei, ZHANG Yujie, XUE Juanqin. Electrosorption Characteristics of NF/PDMA /MnO2-Co Capacitor Electrode for Pb2+ in a Dilute Solution of Lead Ions. Chinese Journal of Materials Research, 2021, 35(2): 115-127.
|
Abstract NF/PDMA/MnO2-Co electrode was prepared by anodic electrodeposition on the foam nickel substrate, and which then was characterized by FESEM-EDS, XPS and Raman spectroscopy. The capacitance characteristics and Pb2+ adsorption behavior of the composite electrode were evaluated by cyclic voltammetry and capacitance adsorption desorption tests. The results show that the NF/PDMA/MnO2-Co composite electrode prepared by applied current density of 1 mA/cm2 at 30 ℃ for 3min has a higher adsorption capacity (59.9 mg/g) and specific capacitance (208.8 F/g) for the simulated wastewater of 20 mg/L Pb2+. The synergistic effect of the bottom layer of PDMA and the top layer of Co doped MnO2 can effectively improve the capacitance and adsorption performance of the MnO2 electrode. The adsorption kinetics fitting shows that the adsorption process is controlled by the mixture of physical and chemical adsorption, and is limited by the mass transfer of ions and the diffusion in pores. The stability of the electrode is higher, and its adsorption capacity is 51.7 mg/g after four cycles of adsorption.
|
Received: 28 May 2020
|
|
Fund: National Natural Science Foundation(51874227);Natural Science Foundation of Shaanxi Province(2018JM5131) |
1 |
Gottesfeld P, Cherry C R. Lead emissions from solar photovoltaic energy systems in China and India [J]. Energy Policy, 2011, 39(9): 4939
|
2 |
Gunatilake S K. Methods of removing heavy metals from industrial wastewater [J]. JMESS, 2015(1): 12
|
3 |
Almarzooqi F A, Al Ghaferi A A, Saadat I, et al. Application of capacitive deionisation in water desalination: a review [J]. Desalination, 2014, 342: 3
|
4 |
Zhang C X, Jiang Z Y, Dai Y M, et al. Preparation and supercapacitance of C-ZIF-8@AC composites electrode material [J]. Chinese Journal of Materials Research, 2019, 33(5): 352
|
|
张传香, 江中仪, 戴玉明等. C-ZIF-8@AC复合电极材料的制备及超电容性能研究 [J]. 材料研究学报, 2019, 33(5): 352
|
5 |
Feng X H, Zhai L M, Tan W F, et al. Adsorption and redox reactions of heavy metals on synthesized Mn oxide minerals [J]. Environ. Pollut., 2007, 147(2): 366
|
6 |
Xu J, Sun Y, Lu M, et al. Fabrication of hierarchical MnMoO4·H2O@MnO2 core-shell nanosheet arrays on nickel foam as an advanced electrode for asymmetric supercapacitors [J]. Chem. Eng. J., 2018, 334: 1466
|
7 |
Xu W, Jiang Z, Yang Q, et al. Approaching the lithium-manganese oxidesʼ energy storage limit with Li2MnO3 nanorods for high-performance supercapacitor [J]. Nano Energy, 2018, 43: 168
|
8 |
Wang J G, Kang F, Wei B. Engineering of MnO2-based nanocomposites for high-performance supercapacitors [J]. Prog. Mater. Sci., 2015, 74: 51
|
9 |
Chen Y, Wang M, Hu Y, et al. Poly(2-aminothiophenol)/MnO2 hierarchical nanocables as efficient adsorbents towards heavy metal ions [J]. Mater. Chem. Phys., 2018, 214: 172
|
10 |
Yang J, Zou L, Song H, et al. Development of novel MnO2/nanoporous carbon composite electrodes in capacitive deionization technology [J]. Desalination, 2011, 276(1-3): 199
|
11 |
Yang J, Zou L, Song H. Preparing MnO2/PSS/CNTs composite electrodes by layer-by-layer deposition of MnO2 in the membrane capacitive deionisation [J]. Desalination, 2012, 286: 108
|
12 |
Shi W B, Zhou X C, Li J Y, et al. High-performance capacitive deionization via manganese oxide-coated, vertically aligned carbon nanotubes [J]. Environ. Sci. Technol. Lett., 2018, 5: 692
|
13 |
Xiong S, Shi Y, Chen S, et al. Interfacial poly Yan L erization of poly(2,5-dimethoxyaniline) and its enhanced capacitive performances [J]. J. Appl. Polym. Sci., 2014, 131(17): 8407
|
14 |
Shao D, Hou G, Li J, et al. PANI/GO as a super adsorbent for the selective adsorption of uranium(VI) [J]. Chem. Eng. J., 2014, 255(7): 604. 2000, 31(5): 548
|
15 |
Yan L S, Wei Q, Wang C Y, et al. Mechanism in electrochemical synthesis of polyaniline film and its doped behaviour [J]. Journal of Functional Materials, 2000, 31(5): 548
|
|
颜流水, 魏洽, 王承宜等. 聚胺膜的电化学合成机理及掺杂行为 [J]. 功能材料, 2000, 31(5): 548
|
16 |
Tang C B, Lu Y X, Wang F, et al. Influence of a MnO2-WC interlayer on the stability and electrocatalytic activity of titanium-based PbO2 anodes [J]. Electrochim. Acta, 2020, 331: 135381
|
17 |
Shi Y H, Meng H M, Sun D B, et al. The research of manganese oxide coating electrodeby anode electrodeposit process [J]. Heat Treatment Technology and Equipment, 2008(1): 39
|
|
史艳华, 孟惠民, 孙冬柏等. 阳极电沉积法制备锰类氧化物涂层电极的研究 [J].热处理技术与装备, 2008(1): 39
|
18 |
Ma Y, Hou C, Zhang H, et al. Synthesis of PANI solid microspheres with convex-fold surface via using polyvinylpyrrolidone micellar template [J]. Synth. Met., 2016, 222: 388
|
19 |
Huang H, He M, Yang X, et al. One-pot hydrothermal synthesis of TiO2/RCN heterojunction photocatalyst for production of hydrogen and rhodamine B degradation [J]. Appl. Surf. Sci., 2019, 493: 202
|
20 |
Jing L, Xu Y, Xie M, et al. Three dimensional polyaniline/MgIn2S4 nanoflower photocatalysts accelerated interfacial charge transfer for the photoreduction of Cr(VI), photodegradation of organic pollution and photocatalytic H2 production [J]. Chem. Eng. J., 2018, 360: 1601
|
21 |
Wang Y, Lei Y, Li J, et al. Synthesis of 3D-nanonet hollow structured Co3O4 for high capacity supercapacitor [J]. ACS Appl. Mater. Interfaces, 2014, 6(9): 6739
|
22 |
Ramezanzadeh B, Bahlakeh G, Ramezanzadeh M. Polyaniline-cerium oxide (PANI-CeO2) coated graphene oxide for enhancement of epoxy coating corrosion protection performance on mild steel [J]. Corrosion Sci., 2018, 137: 111
|
23 |
He Y, Du S, Li H, et al. MnO2/polyaniline hybrid nanostructures on carbon cloth for supercapacitor electrodes [J]. J. Solid State Electrochem., 2016, 20(5): 1459
|
24 |
Mezgebe M M, Xu K, Wei G, et al. Polyaniline wrapped manganese dioxide nanorods: Facile synthesis and as an electrode material for supercapacitors with remarkable electrochemical properties [J]. J. Alloy. Compd., 2019, 794: 634
|
25 |
Oyedotun K O, Madito M J, Momodu D Y, et al. Synthesis of ternary NiCo-MnO2 nanocomposite and its application as a novel high energy supercapattery device [J]. Chem. Eng. J., 2018, 335: 416
|
26 |
Li Y, Cai X, Shen W. Preparation and performance comparison of supercapacitors based on nanocomposites of MnO2 with cationic surfactant of CTAC or CTAB by direct electrodeposition [J]. Electrochim. Acta, 2014, 149: 306
|
27 |
Sun Z, Park Y, Zheng S, et al. Thermal stability and hot-stage Raman spectroscopic study of Ca-montmorillonite modified with different surfactants: A comparative study [J]. Thermochim. Acta, 2013, 569(Complete): 151
|
28 |
Xiong S, Kong Z, Lan J, et al. Fabrication of high yield and highly crystalline poly(2,5-dimethoxyanline) nanoplates using various organic sulfonic acids as the dopant agents and soft-templates [J]. J. Mater. Sci.-Mater. Electron., 2016, 27(11): 1
|
29 |
Bao X J, Zhang Z J, Zhou D B. Pseudo-capacitive performance enhancement of α-MnO2 via in situ coating with polyaniline [J]. Synth. Met., 2020, 260: 112671
|
30 |
Yan L J, Niu L Y, Shen C. Modulating the electronic structure and pseudocapacitance of δ-MnO2 through transitional metal M (M=Fe, Co and Ni) doping [J]. Electrochim. Acta, 2019, 306: 529
|
31 |
Zhang H, Gu L, Zhang L, et al. Removal of aqueous Pb(II) by adsorption on Al2O3-pillared layered MnO2 [J]. Appl. Surf. Sci., 2017, 406: 330
|
32 |
Largitte L, Pasquier R. A review of the kinetics adsorption models and their application to the adsorption of lead by an activated carbon [J]. Chem. Eng. Res. Des., 2016, 109: 495
|
33 |
Omorogie M O, Babalola J O, Unuabonah E I, et al. Solid phase extraction of hazardous metals from aqua system by nanoparticle-modified agrowaste composite adsorbents [J]. J. Environ. Chem. Eng., 2014, 2(1): 675
|
34 |
Runtti H, Tuomikoski S, KangasT, et al. Chemically activated carbon residue from biomass gasification as a sorbent for iron(II), copper(II) and nickel(II) ions [J]. J. Water. Process. Eng., 2014, 4: 12
|
35 |
Zheng X G, Kang F Y, Liu X H, et al. Carbon-coated Mg-Al layered double oxide nanosheets with enhanced removal of hexavalent chromium [J]. J. Ind. Eng. Chem., 2019, 80: 53
|
36 |
Eeshwarasinghe D, Loganathan P, Vigneswaran S. Simultaneous removal of polycyclic aromatic hydrocarbons and heavy metals from water using granular activated carbon [J]. Chemosphere, 2019, 223: 616
|
37 |
Bertagnolli C, da Silva M G C, Guibal E. Chromium biosorption using the residue of alginate extraction from Sargassum filipendula [J]. Chem. Eng. J., 2014, 237: 362
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|