From Hazardous Chrysotile and Polyamide Wastes into Sustainable Serpentine/Polyamide Nanocomposite Membrane: Fabrication, Characterization, and Environmental Application

被引:16
作者
El Maghrabi, Amal H. [1 ,2 ]
El-Rabiee, Mohmmed M. [1 ]
Metwally, Bahaa S. [2 ,3 ]
Masoud, Mostafa A. [2 ]
Abdelaziz, Mohamed H. [2 ]
Petrounias, Petros [4 ]
Koukouzas, Nikolaos [4 ]
Zayed, Ahmed M. [2 ]
机构
[1] Fayoum Univ, Fac Sci, Chem Dept, Al Fayyum 63514, Egypt
[2] Beni Suef Univ, Fac Sci, Geol Dept, Appl Mineral & Water Res Lab AMWRL, Bani Suwayf 62521, Egypt
[3] Beni Suef Univ, Fac Technol & Educ, Text Technol Dept, Bani Suwayf 62521, Egypt
[4] Ctr Res & Technol Hellas CERTH, Chem Proc & Energy Resources Inst, Athens 15125, Greece
关键词
electro-spinning; nanocomposite; polyamide; chrysotile; dyes; ferric iron; METHYL-ORANGE; ADSORPTION; REMOVAL; WATER; NANOFIBERS; KINETICS; INSIGHTS; GASES; GLASS; IRON;
D O I
10.3390/su15097060
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Sustainable serpentine/polyamide nanocomposite (SP/PAM) was fabricated using malicious mining (serpentine chrysotile, SP Ctl) and industrial (polyamide, PA6) wastes via the electro-spinning technique. Before fabrication, the fibrous nature of Ctl was demolished through intensive grinding into nano-fractions. The successful impregnation of Ctl within PA6 via the electro-spinning technique at fixed ratios of precursor raw materials in the dissolving agent (7.5/92.5% SP/PA wt/wt solid/solid) created an internal network structure within the polymer fibers by molecular self-assembly. SP/PAM showcased its prowess in tackling the remediation of diverse dyes and Fe(III) from synthetic solutions in a batch system. Based on correlation coefficient outcomes (R-2 approximate to 0.999), the pseudo-second-order equation justified the sorption data in an adequate way for all contaminants. In addition, intra-particle diffusion was not the only driving factor in the sorption process. Similarly, the Langmuir equation with maximum removal capacity (qmax) 5.97, 4.33, and 5.36 mg/g for MO, MB, and Fe(III), respectively, defined the sorption data better than Freundlich.
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页数:25
相关论文
共 75 条
[1]   Application of response surface methodology for enhanced synthesis of chitosan tripolyphosphate/TiO2 nanocomposite and adsorption of reactive orange 16 dye [J].
Abdulhameed, Ahmed Saud ;
Mohammad, AbdulKarim-Talaq ;
Jawad, Ali H. .
JOURNAL OF CLEANER PRODUCTION, 2019, 232 :43-56
[2]   Effect of milling time on the performance of ceramic membrane from ball clay for the treatment of nickel plating wastewater [J].
Abubakar, Muazu ;
Noor, Siti Fawziah Binti Mohd ;
Ahmad, Norhayati .
JOURNAL OF THE AUSTRALIAN CERAMIC SOCIETY, 2019, 55 (03) :667-679
[3]   Optical spectroscopy, thermal analysis, and dynamic mechanical properties of graphene nano-platelets reinforced polyvinylchloride [J].
Ahmed, R. M. ;
Atta, M. M. ;
Taha, E. O. .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 2021, 32 (17) :22699-22717
[4]  
[Anonymous], 2013, ASTM E1621
[5]  
[Anonymous], 2008, ASTM D7348
[6]   Additive manufacturing of polyamide nanocomposites for electrostatic charge dissipation applications [J].
Arigbabowo, Oluwasola K. ;
Tate, Jitendra S. .
MATERIALS SCIENCE AND ENGINEERING B-ADVANCED FUNCTIONAL SOLID-STATE MATERIALS, 2021, 271
[7]   Adsorption of methyl orange and Cr(VI) on mesoporous TiO2 prepared by hydrothermal method [J].
Asuha, S. ;
Zhou, X. G. ;
Zhao, S. .
JOURNAL OF HAZARDOUS MATERIALS, 2010, 181 (1-3) :204-210
[8]   Kinetics and mechanism of photocatalytic degradation of methyl orange in water by mesoporous Nd-TiO2-SBA-15 nanocatalyst [J].
Bai, Liming ;
Wang, Shuo ;
Wang, Zhiyu ;
Hong, Enlv ;
Wang, Yu ;
Xia, Chunhui ;
Wang, Baiqi .
ENVIRONMENTAL POLLUTION, 2019, 248 :516-525
[9]   Selected Heavy Metals Removal From Electroplating Wastewater by Purified and Polyhydroxylbutyrate Functionalized Carbon Nanotubes Adsorbents [J].
Bankole, Mercy Temitope ;
Abdulkareem, Ambali Saka ;
Mohammed, Ishaq Alhassan ;
Ochigbo, Stephen Shaibu ;
Tijani, Jimoh Oladejo ;
Abubakre, Oladiran Kamaldeen ;
Roos, Wiets Daniel .
SCIENTIFIC REPORTS, 2019, 9 (1)
[10]   THE DETERMINATION OF PORE VOLUME AND AREA DISTRIBUTIONS IN POROUS SUBSTANCES .1. COMPUTATIONS FROM NITROGEN ISOTHERMS [J].
BARRETT, EP ;
JOYNER, LG ;
HALENDA, PP .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1951, 73 (01) :373-380