Fabrication and characterisation of a Fe3O4/Raphia farinifera nanocomposite for application in heavy metal adsorption

被引:12
作者
Overah, Loretta C. [1 ,2 ,3 ]
Iwegbue, Chukwujindu M. [1 ,2 ]
Babalola, Jonathan O. [3 ]
Martincigh, Bice S. [1 ]
机构
[1] Univ KwaZulu Natal, Sch Chem & Phys, Westville Campus,Private Bag X54001, ZA-4000 Durban, South Africa
[2] Delta State Univ, Fac Sci, Dept Chem, PMB 1, Abraka, Delta State, Nigeria
[3] Univ Ibadan, Fac Sci, Dept Chem, Ibadan, Oyo State, Nigeria
基金
新加坡国家研究基金会;
关键词
Magnetite; Raphia farinifera; Nanocomposite; Surface properties; Adsorption; Heavy metals; MAGNETIC NANOPARTICLES; FE3O4; NANOPARTICLES; AQUEOUS-SOLUTIONS; REMOVAL; IONS; WASTE; HEMICELLULOSE; CELLULOSE; LIGNIN; CARBON;
D O I
10.1016/j.eti.2018.09.007
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Magnetite/Raphia farinifera nanocomposites of different magnetite to Raphia farinifera ratios of 2:1, 1:1, 1:2 and 1:3, designated as MRfA, MRfB, MRfC and MRfD respectively, were successfully prepared by chemical co-precipitation of magnetite precursors in a suspension of Raphia farinifera. The four nanocomposites, and the parent materials, Raphia farinifera and magnetite, were characterised and compared. It was seen that the properties of the nanocomposites were a reflection of the properties of magnetite to degrees which varied with the amount of magnetite. Increased magnetite content in the nanocomposites resulted in higher saturation magnetisation, larger surface area, better thermal stability and better crystallinity. On the other hand, the smaller the amount of magnetite, or the more Rf in the nanocomposites, the smaller the particle size, the better the dispersion or the lower the tendency for agglomeration. Scanning electron (SEM) microscopy showed that the nanocomposites have a morphology similar to that of magnetite, which is a pointer to the fact that the magnetite nanoparticles were successfully dispersed on the surface of the Raphia farinifera. Also, in terms of functionality, the Raphia farinifera enriched the surface of the nanocomposites with functional groups whose amount was determined by the Boehm titration. Both acidic and basic oxygen groups were present on the surface of the composite materials but only acidic groups were present on the Raphia farinifera biomass surface. The total number of acidic and basic oxygen functional groups followed the order: MRfD >Rf > MRfC > MRfB > MRfA. Of the two composites tested for heavy metal ion adsorption MRfD, that contained more biomass, performed better than MRfB. The adsorption of Pb2+ was particularly enhanced with an adsorption capacity of 63.8 mg g(-1). Thus, these magnetic nanocomposites show promise for the remediation of contaminated wastewaters. (C) 2018 Elsevier B.V. All rights reserved.
引用
收藏
页码:11 / 29
页数:19
相关论文
共 50 条
[31]   Green Synthesis of Fe3O4 Nanoparticles and Its Application in Preparation of Fe3O4/Cellulose Magnetic Nanocomposite: A Suitable Proposal for Drug Delivery Systems [J].
Azizi, Amir .
JOURNAL OF INORGANIC AND ORGANOMETALLIC POLYMERS AND MATERIALS, 2020, 30 (09) :3552-3561
[32]   Synthesis of Magnetic Fe3O4 Modified Graphene Nanocomposite and its Application on the Adsorption of some Dyes from Aqueous Solution [J].
Wang, Juntao ;
Ji, Shujing ;
Ma, Ruiyang ;
Wu, Qiuhua ;
Wang, Chun ;
Qiang, Jun ;
Wang, Zhi .
SEPARATION SCIENCE AND TECHNOLOGY, 2014, 49 (06) :861-867
[33]   Effective adsorption of zinc on magnetic nanocomposite of Fe3O4/zeolite/cellulose nanofibers: kinetic, equilibrium, and thermodynamic study [J].
Mirjavadi, Elmira S. ;
Tehrani, Ramin M. A. ;
Khadir, Ali .
ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2019, 26 (32) :33478-33493
[34]   Adsorption of phenol on environmentally friendly Fe3O4/chitosan/zeolitic imidazolate framework-8 nanocomposite: Optimization by experimental design methodology [J].
Keshvardoostchokami, Mina ;
Majidi, Mahyar ;
Zamani, Abbasali ;
Liu, Bo .
JOURNAL OF MOLECULAR LIQUIDS, 2021, 323
[35]   Rapid and high capacity adsorption of heavy metals by Fe3O4/montmorillonite nanocomposite using response surface methodology: Preparation, characterization, optimization, equilibrium isotherms, and adsorption kinetics study [J].
Kalantari, Katayoon ;
Ahmad, Mansor B. ;
Masoumi, Hamid Reza Fard ;
Shameli, Kamyar ;
Basri, Mahiran ;
Khandanlou, Roshanak .
JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2015, 49 :192-198
[36]   Fabrication of Fe3O4/Polypyrrole/Phytic Acid Magnetic Nanocomposite for Preferential Adsorption of Cationic Dye: Adsorption Properties, Kinetics, and Mechanism [J].
Mohanty, Nehapadma ;
Behera, Satyaranjan ;
Patra, Braja N. .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2025, 64 (04) :2274-2282
[37]   Nanosized Fe3O4–curcumin conjugates for adsorption of heavy metals from seawater samples [J].
Ali Mehdinia ;
Reza Mirzaeipour ;
Ali Jabbari .
Journal of the Iranian Chemical Society, 2019, 16 :1431-1439
[38]   Novel sodium lignosulphonate assisted synthesis of well dispersed Fe3O4 microspheres for efficient adsorption of copper (II) [J].
Wang, Yingying ;
Wang, Xiaohong ;
Ding, Yongmei ;
Zhou, Zilong ;
Hao, Chen ;
Zhou, Saisai .
POWDER TECHNOLOGY, 2018, 325 :597-605
[39]   Fabrication and characterization of Fe3O4/perlite, Fe3O4/perlite@SiO2, and Fe3O4/perlite@SiO2@sulfanilamide magnetic nanomaterials [J].
Kutluay, Sinan ;
Sahin, Omer ;
Ece, Mehmet Sakir .
APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2022, 128 (03)
[40]   Application of Fe3O4/RGO Nanocomposite as a Sorbent of Pesticides [J].
Mehdi Tavakoli ;
Mannan Hajimahmoodi ;
Farzaneh Shemirani ;
Amin Shiralizadeh Dezfuli ;
Mahnaz Khanavi .
Chromatographia, 2017, 80 :1423-1432