Journal of Water Resource and Protection

Journal of Water Resource and Protection

ISSN Print: 1945-3094
ISSN Online: 1945-3108
www.scirp.org/Journal/jwarp
E-mail: jwarp@scirp.org
"Removal of Methylene Blue from Water Using Hydroxyapatite Submitted to Microwave Irradiation"
written by Khadija Allam, Abdeslam El Bouari, Bouchra Belhorma, Lahcen Bih,
published by Journal of Water Resource and Protection, Vol.8 No.3, 2016
has been cited by the following article(s):
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[5] Drug Molecular Immobilization and Photofunctionalization of Calcium Phosphates for Exploring Theranostic Functions
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[6] Sodium dodecyl sulfate assisted synthesis hydroxyapatite for effective adsorption of methylene blue
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[7] Application of natural hydroxyapatite in the treatment of polluted water: Utilization of dromedary bone as bioadsorbent
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[8] Preparation of Fe3O4/HAp nanoparticles from eggshells with highly adsorption capacity for methylene blue
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[9] Treatment of Blue HB Reactive Dyes in Textile Wastewater using Bio-waste based Hydroxyapatite
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[10] KINETICS AND ISOTHERM STUDIES FOR ADSORPTION OF METHYL ORANGE DYE FROM AQUEOUS SOLUTIONS USING HYDROXYAPATITE
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[11] Applications of Nano Hydroxyapatite as Adsorbents: A Review. Nanomaterials 2022, 12, 2324
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[12] Kinetic, Isotherm and Thermodynamic Study of Acid Blue 29 Textile Dye Removal from Aqueous Solution by Using Hydroxyapatite and Partially Hydrolyzed …
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[13] Effects of different shrimp extracts on Vibrio parahaemolyticus growth and virulence
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[14] Electrochemical preparation of graphene from waste battery-electrodes directed to organic dyes removal in aqueous solution
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[15] Removal of Eriochrome Black T dye from aqueous solutions by using nano-crystalline calcium phosphate tricalcic apatitic
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[16] Synthesis and characterization of hydroxyapatite-(HAP-) clay composites and adsorption studies on methylene blue for water treatment
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[17] Synthesis of hydroxyapatite-sodium metasilicate via double decomposition method: Characterization and application to the removal of methylene blue
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[18] Recent progress in preparation and applications of chitosan/calcium phosphate composite materials
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[19] Preparation of Functionalized Hydroxyapatite with Biopolymers as Efficient Adsorbents of Methylene Blue
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[20] Comparison between nano zero valent iron supporting onto activated carbon collected via two types of reagents statistically: Carbon for cationic dye removal
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[21] Development of green geo-adsorbent pellets from low fire clay for possible use in methylene blue removal in aquaculture
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[22] Adsorpsi Metilen Biru Pada Hidroksiapatit Dari Tulang Ikan Kakap Merah
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[23] Azo dye adsorption on an industrial waste-transformed hydroxyapatite adsorbent: Kinetics, isotherms, mechanism and regeneration studies
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[24] Macromolecular humic acid modified nano-hydroxyapatite for simultaneous removal of Cu (II) and methylene blue from aqueous solution: Experimental design and …
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[25] Application of a novel biochar adsorbent and membrane to the selective separation of phosphate from phosphate-rich wastewaters
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[26] A review on the synthesis of hydroxyapatite, its composites and adsorptive removal of pollutants from wastewater
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[27] Ag Doped Hydroxyapatite Nano Particles for Removal of Methyl Red Azo Dye from Aqueous Solutions (Kinetic and Thermodynamic Studies
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[28] Efficient removal of toxic methylene blue (MB) dye from aqueous solution using a metal-organic framework (MOF) MIL-101 (Fe): isotherms, kinetics, and …
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[29] Ag doped hydroxyapatite nano particles for removal of methyl red azo dye from aqueous solutions (kinetic and thermodynamic studies)
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[30] Kinetic and thermodynamic adsorption of nickel (II) onto hydroxyapatite prepared from Snakehead (Channa striata) fish bone
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[31] Effect of sintering on the mechanical properties of hydroxyapatite from fish bone (Pangasius Hypophthalmus)
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[32] Overview on the use of apatitic materials for environmental applications
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[33] [λ‑Carrageenan‑calcium phosphate] and [sodium alginate‑calcium phosphate] modified with dimethyl diallyl ammonium chloride and diallylamin co-polymer as …
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[34] Fabrication of poorly crystalline hydroxyapatite nano-particles by rapid auto-ignition route as efficient adsorbent for removal of disperse blue dye
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[35] Reed biochar supported hydroxyapatite nanocomposite: Characterization and reactivity for methylene blue removal from aqueous media
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[36] Scalable Synthesis of Hide Substance–Chitosan–Hydroxyapatite: Novel Biocomposite from Industrial Wastes and Its Efficiency in Dye Removal
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[37] Effect of surfactants on the structure and adsorption efficiency of hydroxyapatite nanorods
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[38] Metal and polymer-mediated synthesis of porous crystalline hydroxyapatite nanocomposites for environmental remediation
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[39] Comparative studies of Chloroform adsorption onto Zero-Valent Iron Supported on zeolite as an efficient adsorbent
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[40] Removal of nickel and methylene blue from aqueous solutions by steel slag as a low cost adsorbent
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[41] SYNTHESIS, CHARACTERIZATION OF NANO-HYDROXY APATITE FROM WHITE SNAIL SHELLS AND REMOVAL OF METHYLENE BLUE
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[42] Synthesis, characterization of hydroxyapatite‐lambda carrageenan, and evaluation of its performance for the adsorption of methylene blue from aqueous suspension
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[43] Natural polysaccharides leading to super adsorbent hydroxyapatite nanoparticles for the removal of heavy metals and dyes from aqueous solutions
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[44] Enhancement of Methylene Blue dye adsorption by Fe-Hydroxyapatite composite
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[45] OPTIMASI MASSA KOMPOSIT HIDROKSIAPATIT-KITOSAN TERHADAP ADSORPSI ZAT WARNA METHYLENE BLUE
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