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  <titleInfo>
    <title>SYNTHESIS AND INVESTIGATION OF NOVEL CATHODE MATERIALS FOR SODIUM ION BATTERIES</title>
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  <name>
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      <roleTerm type="text" authority="marcrelator" authorityURI="http://id.loc.gov/vocabulary/relators" valueURI="http://id.loc.gov/vocabulary/relators/cre">creator</roleTerm>
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    <namePart>Sawicki, Monica</namePart>
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  <name authority="wikidata" authorityURI="https://www.wikidata.org" valueURI="https://www.wikidata.org/wiki/Q101056334">
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      <roleTerm type="text" authority="marcrelator" authorityURI="http://id.loc.gov/vocabulary/relators" valueURI="http://id.loc.gov/vocabulary/relators/ths">advisor</roleTerm>
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    <namePart>Shaw, Leon</namePart>
  </name>
  <abstract>Environmental pollution and eventual depletion of fossil fuels and lithium has increased the need for research towards alternative electrical energy storage systems. In this context, research in sodium ion batteries (NIBs) has become more prevalent since the price in lithium has increased due to its demand and reserve location. Sodium is an abundant resource that is low cost, and safe; plus its chemical properties are similar to that of Li which makes the transition into using Na chemistry for ion battery systems feasible. In this study, we report the effects of processing conditions on the electrochemical properties of Na-ion batteries made of the NaCrO2 cathode. NaCrO2 is synthesized via solid state reactions. The as-synthesized powder is then subjected to high-energy ball milling under different conditions which reduces particle size drastically and causes significant degradation of the specific capacity for NaCrO2. X-ray diffraction reveals that the lattice distortion has taken place during high-energy ball milling and in turn affects the electrochemical performance of the cathode material. This study shows that a balance between reducing particle size and maintaining the layered structure is essential to obtain high specific capacity for the NaCrO2 cathode. In light of the requirements for grid scale energy storage: ultra-long cycle life (&gt;20,000 cycles and calendar life of 15 to 20 years), high round trip efficiency (&gt; 90%), low cost, sufficient power capability, and safety; the need for a suitable cathode materials with excellent capacity retention such as Na2MnFe(CN)6 and K2MnFe(CN)6 will be investigated. Prussian blue (A[FeIIIFeII (CN)6]•xH2O, A=Na+ or K+) and its analogues have been investigated as an alkali ion host for use as a cathode material. Their structure (FCC) provides large ionic channels along the &lt;100&gt; direction enabling facile insertion and extraction of alkali ions. This material is also capable of more than one Na ion insertion per unit formula which holds great promise in increasing the energy density of the NIB. The electrochemical performance of the cathode material will be analyzed using cyclic voltammetry, and galvanostatic charge/discharge investigation.</abstract>
  <note type="provenance">Submitted by Erma Thomas (thomase@iit.edu) on 2016-04-04T20:40:46Z No. of bitstreams: 1 etdadmin_upload_396457.zip: 3109359 bytes, checksum: 3c872ad31b90caf90e96639bb529666f (MD5)</note>
  <note type="provenance">Made available in DSpace on 2016-04-04T20:40:46Z (GMT). No. of bitstreams: 1 etdadmin_upload_396457.zip: 3109359 bytes, checksum: 3c872ad31b90caf90e96639bb529666f (MD5) Previous issue date: 2015-12</note>
  <note type="thesis">Ph.D. in Materials Science and Engineering, December 2015</note>
  <originInfo>
    <dateCaptured>2015</dateCaptured>
  </originInfo>
  <originInfo>
    <dateCreated keyDate="yes">2015-12</dateCreated>
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  <identifier type="hdl">http://hdl.handle.net/10560/3802</identifier>
  <language>
    <languageTerm type="code" authority="rfc3066">en</languageTerm>
  </language>
  <subject>
    <topic>Anodes</topic>
  </subject>
  <subject>
    <topic>Cathodes</topic>
  </subject>
  <subject>
    <topic>Electrolytes</topic>
  </subject>
  <subject>
    <topic>High Energy Ball Milling</topic>
  </subject>
  <subject>
    <topic>Prussian Blue</topic>
  </subject>
  <subject>
    <topic>Sodium Ion Batteries</topic>
  </subject>
  <typeOfResource authority="aat" valueURI="http://vocab.getty.edu/page/aat/300028029">Dissertation</typeOfResource>
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  <accessCondition type="useAndReproduction" displayLabel="rightsstatements.org">In Copyright</accessCondition>
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  <accessCondition type="restrictionOnAccess">Restricted Access</accessCondition>
  <name type="corporate">
    <namePart>MMAE / Mechanical, Materials, and Aerospace Engineering</namePart>
    <affiliation>Illinois Institute of Technology</affiliation>
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      <roleTerm type="text">Affiliated department</roleTerm>
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