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  <titleInfo>
    <title>Recovery of metal and energy from capacitive deionization (CDI) discharged brine</title>
  </titleInfo>
  <name type="personal">
    <namePart>Miah, Md. Sazal</namePart>
    <role>
      <roleTerm authority="marcrelator" type="text">creator</roleTerm>
    </role>
  </name>
  <name type="personal">
    <namePart>Bora, Tanujjal</namePart>
    <role>
      <roleTerm type="text">Chairperson  </roleTerm>
    </role>
  </name>
  <name type="personal">
    <namePart>Chanchana Thanachayanont</namePart>
    <role>
      <roleTerm type="text">Examination committee</roleTerm>
    </role>
  </name>
  <name type="personal">
    <namePart>Ricco, Raffaele</namePart>
    <role>
      <roleTerm type="text">Examination committee</roleTerm>
    </role>
  </name>
  <name type="corporate">
    <namePart>His Majesty the King{u2019}s Scholarships (Thailand)</namePart>
    <role>
      <roleTerm type="text">Scholarship Donor</roleTerm>
    </role>
  </name>
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  <originInfo>
    <place>
      <placeTerm type="code" authority="marccountry">th</placeTerm>
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    <place>
      <placeTerm type="text">Pathum Thani</placeTerm>
    </place>
    <publisher>Asian Institute of Technology</publisher>
    <dateIssued>2022</dateIssued>
    <issuance>continuing</issuance>
  </originInfo>
  <language>
    <languageTerm authority="iso639-2b" type="code">eng</languageTerm>
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  <physicalDescription>
    <extent>77 p. : ill.</extent>
  </physicalDescription>
  <abstract>Activated carbon cloth (ACC) electrodes modified with manganese dioxide (MnO2) are  used in capacitive deionization (CDI), a promising strategy for conducting metal and  energy recovery along with desalination. The removal capability of copper (Cu2+),  Nickel (Ni2+), and Chromium (Cr2+) ions and their recovery in the metallic form are  examined. Multiple important concerns have been investigated to test the feasibility of  CDI metal recovery from a practical point of view, like the impact of the voltage on the  ion adsorption, metal recovery, the concentration of metal ions, and its long-term  viability. During the charging step of the CDI cell, some energy is stored in the carbon  electrode, and this energy can be further recovered during the discharging phase. In this  thesis, an energy recovery mechanism is developed and investigated to recover the  energy during the desorption step by utilizing a four-switch buck-boost converter as a  DC/DC converter and a supercapacitor (SC) as the energy storage device. A basic CDI  cell is constructed to perform the above experiments. Faraday's laws of electrolysis and  atomic absorption spectroscopy (AAS) analysis are performed to understand the Cu2+ and Cr3+ deposition efficiency during metal recovery in the form of electroplating, and  to find out the appropriate voltage and pH range. Lastly, energy recovery efficiency  analysis is performed to assess the amount of energy that can actually be recovered  from the CDI cell.  </abstract>
  <note>A thesis submitted in partial fulfillment of the requirements for the degree of  Master of Engineering in Nanotechnology</note>
  <note>Thesis (M. Eng.) - Asian Institute of Technology, 2022</note>
  <subject authority="lcsh">
    <topic>Heavy metals</topic>
    <topic>Environmental aspects</topic>
  </subject>
  <subject authority="lcsh">
    <topic>Energy transfer</topic>
  </subject>
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    <titleInfo>
      <title>Thesis ; no. ISE-22-12</title>
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      <namePart>Asian Institute of Technology.</namePart>
      <namePart/>
    </name>
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  <identifier type="uri">http://203.159.5.9/ait-thesis/detail.php?q=B18187</identifier>
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    <url displayLabel="Full-Text">http://203.159.5.9/ait-thesis/detail.php?q=B18187</url>
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    <recordCreationDate encoding="marc">230203</recordCreationDate>
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