TY - JOUR
T1 - Fabrication of Chitosan-Reinforced ZrxAl1-xOOH Nanocomposites and Their Arsenite and Fluoride Depollution Densities from Single/Binary Systems
AU - Prabhu, Subbaiah Muthu
AU - Sasaki, Keiko
N1 - Funding Information:
Financial support was provided to KS by the Japan Society for the Promotion of Science (JSPS) - Japan through research grants (16H02435, 15F15380) and to SMP (P16082) by the JSPS Postdoctoral Fellowship for Foreign Researchers.
PY - 2017/7/31
Y1 - 2017/7/31
N2 - The unique and versatile adsorbents zirconium oxyhydroxide (ZrOOH), aluminum oxyhydroxide (AlOOH), zirconium-aluminum oxyhydroxide (ZrxAl1-xOOH) and chitosan-supported zirconium-aluminum oxyhydroxide (CS@ZrxAl1-xOOH) were synthesized via a simple co-precipitation method. CS was used as a pillar-like support to reinforce the ZrxAl1-xOOH, the resulting material was capable of simultaneously adsorbing both F− and AsO3 3− because the functional groups of CS facilitated the formation of both ZrOOH and AlOOH nanoparticles. Interestingly, ZrxAl1-xOOH and CS@ ZrxAl1-xOOH had better F− adsorption capacities at pH<7, whereas better AsO3 3− removal was observed at pH>9. The Langmuir maximum adsorption capacity of CS@ZrxAl1-xOOH was 0.655 and 0.983 mmol g−1 for AsO3 3− and F−, respectively and the performance was superior to that of previously reported metallic oxide and chitosan-based sorbents. In addition, the presence of coexisting anions revealed that the CS@ZrxAl1-xOOH material selectively removed AsO3 3− over F− in a binary batch system. The adsorption kinetics of the adsorbents were well fit to the pseudo-second-order model. Due to the simultaneous and quick uptake capacity and cost-effectiveness, CS@ZrxAl1-xOOH nanocomposite have potential application in environmental cleanup.
AB - The unique and versatile adsorbents zirconium oxyhydroxide (ZrOOH), aluminum oxyhydroxide (AlOOH), zirconium-aluminum oxyhydroxide (ZrxAl1-xOOH) and chitosan-supported zirconium-aluminum oxyhydroxide (CS@ZrxAl1-xOOH) were synthesized via a simple co-precipitation method. CS was used as a pillar-like support to reinforce the ZrxAl1-xOOH, the resulting material was capable of simultaneously adsorbing both F− and AsO3 3− because the functional groups of CS facilitated the formation of both ZrOOH and AlOOH nanoparticles. Interestingly, ZrxAl1-xOOH and CS@ ZrxAl1-xOOH had better F− adsorption capacities at pH<7, whereas better AsO3 3− removal was observed at pH>9. The Langmuir maximum adsorption capacity of CS@ZrxAl1-xOOH was 0.655 and 0.983 mmol g−1 for AsO3 3− and F−, respectively and the performance was superior to that of previously reported metallic oxide and chitosan-based sorbents. In addition, the presence of coexisting anions revealed that the CS@ZrxAl1-xOOH material selectively removed AsO3 3− over F− in a binary batch system. The adsorption kinetics of the adsorbents were well fit to the pseudo-second-order model. Due to the simultaneous and quick uptake capacity and cost-effectiveness, CS@ZrxAl1-xOOH nanocomposite have potential application in environmental cleanup.
UR - http://www.scopus.com/inward/record.url?scp=85041463490&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85041463490&partnerID=8YFLogxK
U2 - 10.1002/slct.201701072
DO - 10.1002/slct.201701072
M3 - Article
AN - SCOPUS:85041463490
VL - 2
SP - 6375
EP - 6387
JO - ChemistrySelect
JF - ChemistrySelect
SN - 2365-6549
IS - 22
ER -