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Synthesis of novel adsorbent by intercalation of biopolymer in LDH for the removal of arsenic from synthetic and natural water 被引量:11

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摘要 This study focuses on the synthesis of nanocomposites named CCA and CZA that were prepared by the incorporation of cellulose(CL)in the Ca/Al and Zn/Al layered double hydroxide(LDH),respectively.These materials were then used for the uptake of As(Ⅲ)and As(V)from aqueous medium.Characterization of both nanocomposites(CCA and CZA)was done using FTIR and Raman analysis to identify the functional groups,N2 adsorption-desorption isotherms to determine the specific surface area and pore geometry and XPS analysis to obtain the surface atomic composition.Some other characters were investigated using simultaneous TGA and DTA and elemental chemical analysis(CHNS/O).The crystallinity of the prepared nanocomposites was displayed by XRD patterns.Furthermore,the sheet-like structure of the LDHs and the irregularity of surface morphology with porous structure were observed by TEM and SEM microphotographs.Optimization of maximum adsorption capacity was adjusted using different parameters including pH,contact time and adsorbent dosage.The pseudo-second-order model was in good fitting with kinetics results.The adsorption isotherm results showed that CZA exhibits better adsorption capacity for As(Ⅲ)than CCA and the Langmuir isotherm model described the data well for both nanocomposites.Thermodynamic studies illustrated the endothermic nature of CCA and exothermic nature on CZA,as well as the fact that the adsorption process is spontaneous.A real water sample collected from well located in Gabes(Tunisia),has also been treated.The obtained experimental results were confirmed that these sorbents are efficient for the treatment of hazardous toxic species such as.
出处 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2020年第5期246-261,共16页 环境科学学报(英文版)
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  • 1Altundogan H S, Altundogan S, Tiimen F, Bildik M, 2000. Arsenic removal from aqueous solutions by adsorption on red mud. Waste Management, 20(8): 761-767.
  • 2Amiri H, J aafarzadeh N, Ahmadi M, Martinez, 2011. Application of LECA modified with Fenton in arsenite and arsenate removal as an adsorbent. Desalination, 272(1-3): 212-217.
  • 3Bellock E, 1971. Arsenic removal from table water. Journal of Water Health, 64: 454-458.
  • 4Bissen M, Rimmel F H, 2003. Arsenic-a review. Part II: oxi-dation of arsenic and its removal in water treatment. Acta Hydrochimica et Hydrobiologica, 31(2): 97-107.
  • 5Bontchev R P, Liu S, Krumhansl J L, Voigt J, NenoffT M, 2003. Synthesis, characterization, and ion exchange properties of hydrotalcite Mg-Al derivatives. Chemistry of Materials, 15(19): 3669-3675.
  • 6Busetto C, Del G P, Mamara G, Trifir6 F, Vaccari A, 1984. Cat-alysts for low-temperature methanol synthesis. Preparation of Cu-Zn-AI mixed oxides via hydrotalcite-like precursors. Journal of Catalysis, 85(1): 260-266.
  • 7Cavani F, Trifiro F, Vaccari A, 1991. Hydrotalcite-type anionic clays: preparation, properties and applications. Catalysis Today, 11(2): 173-301.
  • 8Chaparadza A, Hossenlopp J M, 2011. Removal of 2,4- dichlorophenoxyacetic acid by calcined Zn-AI-Zr layered double hydroxide. Journal of Colloid and Interface Science, 363(1): 92-97.
  • 9Chen R Z, Zhang Z Y, Lei Z F, Sugiura N, 2011. Preparation of iron-impregnated tablet ceramic adsorbent for arsenate removal from aqueous solutions. Desalination, 286: 56-62.
  • 10Chitrakar R, Sonoda A, Makita Y, Hirotsu T, 2011. Calcined MgAI layered double hydroxides for uptake of trace levels of bromate from aqueous solution. Industrial & Engineer-ing Chemistry Research, 50(15): 9280-9285.

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