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    <link>http://pucir.inflibnet.ac.in:8080/jspui/handle/123456789/522</link>
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    <pubDate>Thu, 30 Oct 2025 07:09:44 GMT</pubDate>
    <dc:date>2025-10-30T07:09:44Z</dc:date>
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      <title>Hybrid materials in the remediation of arsenic contaminated waters: a physico-chemical study</title>
      <link>http://pucir.inflibnet.ac.in:8080/jspui/handle/123456789/523</link>
      <description>Title: Hybrid materials in the remediation of arsenic contaminated waters: a physico-chemical study
Authors: Thanhmingliana
Abstract: Hybrid materials are obtained by the organic modification of sericite using the organic cations&#xD;
viz. tetramethylammonium chloride (TMA or T) and dimethyldioctadecylammonium&#xD;
chloride as (DDDMA or D) by a simple wet cation exchange process. Surface morphology&#xD;
of these solids is discussed with the Scanning Electron Microscopic images. Moreover, the&#xD;
materials are characterized by the X-ray diffraction and Fourier Transform-Infrared&#xD;
analytical techniques. Removal behavior of these organo-modified sericite samples is&#xD;
assessed for arsenite and arsenate from aqueous solutions under the batch and column reactor&#xD;
operations. The batch reactor experiments show that increasing the sorptive concentration&#xD;
(1–20 mg/L) and pH (2–10) is caused to decrease the percent uptake of arsenite and&#xD;
arsenate significantly. Increasing the background electrolyte concentrations from 0.0001 to&#xD;
0.1 mol/L NaNO3 causes a significant decrease in percent removal of As(III) which infers&#xD;
that As(III) is sorbed onto the solid surface, primarily, by weak electrostatic or by van der&#xD;
Waals forces hence, forming an outer-sphere complexes at the solid surface. On the other&#xD;
hand As(V) uptake is insignificantly affected in presence of background electrolyte concentrations.&#xD;
This indicates that As(V) is sorbed by a strong chemical force and forming an inner&#xD;
sphere complexes onto the solid surface. The equilibrium state modeling shows that the&#xD;
data is fitted well to the Freundlich and Langmuir adsorption isotherms. The sorption&#xD;
capacities of these solids are calculated under these equilibrium conditions which indicate&#xD;
that organo-modified-sericite samples possess significantly higher removal capacity comparing&#xD;
to the virgin sericite. The leaching of the organic molecules (T or D) are also conducted&#xD;
in the sorption process of As(III) or As(V) and shows that almost negligible amount of T or&#xD;
D leaches in the bulk solutions since the Total Organic Carbon value of the bulk solution is&#xD;
not increased. Further, the breakthrough curves are obtained for these oxyanions under the&#xD;
column experimentations and the data is fitted well to the Thomas equation hence, the&#xD;
maximum loading capacity for arsenic is estimated under the dynamic conditions</description>
      <pubDate>Sun, 12 Oct 2014 00:00:00 GMT</pubDate>
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      <dc:date>2014-10-12T00:00:00Z</dc:date>
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