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      A biocompatible and novelly-defined Al-HAP adsorption membrane for highly effective removal of fluoride from drinking water

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          Abstract

          A biocompatible and novelly-defined adsorption membrane for rapid removal of fluoride was prepared. Both adsorption and membrane techniques were used in this research. Al(OH)3 nanoparticles modified hydroxyapatite (Al-HAP) nanowires were developed and made into Al-HAP membrane. The adsorption data of Al-HAP adsorbent could be well described by Freundlich isotherm model while the adsorption kinetic followed pseudo-second-order model. The maximum of adsorption capacity was 93.84mg/g when the fluoride concentration was 200mg/L. The adsorption mechanism was anion exchanges and electrostatic interactions. The contribution rates of HAP nanowires and Al(OH)3 nanoparticles in fluoride removal were 36.70% and 63.30%, respectively. The fixed-bed column test demonstrate that the Al-HAP was biocompatible and in a good stability during the process of water treatment. The fluoride removal abilities of Al-HAP membrane with 0.3mm thickness could reach 1568L/m2 when fluoride concentrations were 5mg/L. This study indicated that the Al-HAP membrane could be developed into a very viable technology for highly effective removal of fluoride from drinking water.

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          Author and article information

          Journal
          Journal of Colloid and Interface Science
          Journal of Colloid and Interface Science
          Elsevier BV
          00219797
          March 2017
          March 2017
          : 490
          : 97-107
          Article
          10.1016/j.jcis.2016.11.009
          27870965
          40b536e0-6cf5-4575-a946-3e3c9b7f5741
          © 2017

          https://www.elsevier.com/tdm/userlicense/1.0/

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