Surface Modifications of Superparamagnetic Iron Oxide Nanoparticles with Polyvinyl Alcohol and Graphite as Methylene Blue Adsorbents

被引:6
作者
Doan, Linh [1 ,2 ,3 ]
机构
[1] Vietnam Natl Univ, Int Univ, Dept Chem Engn, Ho Chi Minh City 700000, Vietnam
[2] Vietnam Natl Univ, Int Univ, Sch Chem & Environm Engn, Ho Chi Minh City 700000, Vietnam
[3] Vietnam Natl Univ, Int Univ, Nanomat Engn Res & Dev NERD Lab, Ho Chi Minh City, Vietnam
关键词
methylene blue; isotherm; thermodynamics; magnetic graphite; nanocomposites; adsorption; ACTIVATED CARBON; AQUEOUS-SOLUTION; GRAPHENE OXIDE; INTERMOLECULAR INTERACTIONS; MAGNETIC NANOPARTICLES; ADSORPTION PROPERTIES; SOLUTE RELEASE; BASIC DYE; REMOVAL; KINETICS;
D O I
10.3390/coatings13091558
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Methylene blue (MB) is one of the toxic synthetic dyes that are being discharged heavily into water supplies. Hence, MB removal is one of the most important tasks for a cleaner water supply. By using inexpensive, abundant, and easy-to-synthesize materials, superparamagnetic iron oxide nanoparticles, which were synthesized using the co-precipitation method with polyvinyl alcohol and graphite (SPION/PVA/GR), can be used to adsorb MB. The adsorbent was characterized using FE-SEM, FTIR, XRD, VSM, and BJH. The entrapment efficiency of MB on SPION/PVA/GR after 12 days was 33.96 & PLUSMN; 0.37-42.55 & PLUSMN; 0.39%, at 333.15, 310.15, and 298.15 K, and the initial concentration of MB was 0.017-0.020 mg/mL. The adsorption process can be considered spontaneous, endothermic, chemisorption, heterogeneous, or multilayer adsorption. When releasing MB at 298.15 K and a pH of 3.85 after 7 days, the release percentage ranged from 11.56 & PLUSMN; 0.33 to 22.93 & PLUSMN; 5.06 depending on the initial loading conditions and mainly the releasing temperature following the Higuchi kinetic model. Since this is a novel SPION-based MB adsorbent, optimization, and different forms of adsorbent (i.e., thin film composite) should be further researched.
引用
收藏
页数:23
相关论文
共 107 条
[21]   Thermodynamical and analytical evidence of lead ions chemisorption onto Pimenta dioica [J].
Cruz-Olivares, J. ;
Perez-Alonso, C. ;
Barrera-Diaz, C. ;
Natividad, R. ;
Chaparro-Mercado, M. C. .
CHEMICAL ENGINEERING JOURNAL, 2011, 166 (03) :814-821
[22]   Eco-friendly polyvinyl alcohol/carboxymethyl cellulose hydrogels reinforced with graphene oxide and bentonite for enhanced adsorption of methylene blue [J].
Dai, Hongjie ;
Huang, Yue ;
Huang, Huihua .
CARBOHYDRATE POLYMERS, 2018, 185 :1-11
[23]   Magnetic and conducting Fe3O4-polypyrrole nanoparticles with core-shell structure [J].
Deng, JG ;
Peng, YX ;
He, CL ;
Long, XP ;
Li, P ;
Chan, ASC .
POLYMER INTERNATIONAL, 2003, 52 (07) :1182-1187
[24]  
Doan L., 2019, Eng. Sci., V7, P10, DOI DOI 10.30919/ES8D510
[26]   Modifying superparamagnetic iron oxides nanoparticles for doxorubicin delivery carriers: a review [J].
Doan, Linh ;
Nguyen, Loc T. ;
Nguyen, Ngan T. N. .
JOURNAL OF NANOPARTICLE RESEARCH, 2023, 25 (04)
[27]   Halloysite nanotube-Fe3O4 composite for removal of methyl violet from aqueous solutions [J].
Duan, Jingmin ;
Liu, Ruichao ;
Chen, Tong ;
Zhang, Bing ;
Liu, Jindun .
DESALINATION, 2012, 293 :46-52
[28]   Modeling and Pareto optimization of gas cyclone separator performance using RBF type artificial neural networks and genetic algorithms [J].
Elsayed, Khairy ;
Lacor, Chris .
POWDER TECHNOLOGY, 2012, 217 :84-99
[29]   Ultrasonic-assisted synthesis of natural clay/Fe3O4/graphene oxide for enhance removal of Cr (VI) from aqueous media [J].
Esmaeili, Hossein ;
Tamjidi, Sajad .
ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2020, 27 (25) :31652-31664
[30]   Using polymer coated nanoparticles for adsorption of micropollutants from water [J].
Fard, Mohammad Alizadeh ;
Vosoogh, Ali ;
Barkdoll, Brian ;
Aminzadeh, Behnoush .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2017, 531 :189-197