{"id":{"repo_id":"wayne-thes","oai_identifier":"oai:digitalcommons.wayne.edu:oa_dissertations-1464"},"canonical_url":"https://search.dev.ndltd.org/etd/wayne-thes/oai:digitalcommons.wayne.edu:oa_dissertations-1464","repository":{"repo_id":"wayne-thes","name":"Wayne State University","base_url":"https://digitalcommons.wayne.edu/do/oai/"},"display":{"title":"Multi-component ab2 metal hydride alloys for nickel metal hydride battery applications","abstract":"<p>Compared to the mish metal-based AB<sub>5</sub> MH alloy commonly used in Ni/MH batteries, the transition metal-based AB<sub>2</sub> MH alloy not only reduces the rare earth dependency, it also has higher specific energy. In order to further improve the performance of AB<sub>2</sub> MH alloy, it's crucial to full understand its multi-phase nature, which includes the main C14/C15 Laves phases and the secondary non-Laves phases.</p> <p>In order to optimize the gaseous phase and electrochemical advantages of both the C14 and C15 Laves phases, a study was established to recognize the factors that affect the C14/C15 phase abundance. Average electron density (<i>e</i>/<i>a</i>) was proven to be an influential parameter in determining the C14/C15 phase abundance: as <i>e</i>/<i>a</i> increased, C14/C15 became less/more dominant, respectively. However, with different A-site composition, a shift in <i>e</i>/<i>a</i> was observed in the C14/C15 phase abundance vs. <i>e</i>/<i>a</i> relationship. The average chemical potential for electronic charge of A atoms (<i>Φ</i> <sup>*</sup> <sub>A</sub>) was found to show a nearly perfect linear correlation to the C14/C15 threshold with various selections of A-site elements. The combination of e/a and <i>Φ</i> <sup>*</sup> <sub>A</sub> can be used to predict the C14/C15 phase abundance and assist future AB<sub>2</sub> MH alloy design process.</p> <p>Four non-Laves phase alloys, Zr<sub>8</sub>Ni<sub>21</sub>, Zr<sub>7</sub>Ni<sub>10</sub>, Zr<sub>9</sub>Ni<sub>11</sub>, and ZrNi, commonly seen in AB<sub>2</sub> MH alloys were studied. Annealing treatment was adopted on each alloy to change the abundances of various phases. Annealing suppressed secondary phases except for the case of Zr<sub>9</sub>Ni<sub>11</sub>, where its secondary ZrNi phase increased. As the Zr/Ni ratio increased, the maximum gaseous phase hydrogen storage capacity increased but maximized at Zr : Ni = 9 : 11. Comparing the properties before and after annealing, it was clear that the natures of constituent phases influenced the gaseous phase storage. The highest full discharge capacity was obtained at Zr : Ni = 7 : 10, which is a compromise between the hydrogen desorption rate and the theoretical maximum gaseous phase hydrogen storage. As the Zr/Ni ratio increased, the amount of metallic Ni in the surface oxide decreased, therefore the high-rate dischargeablity decreased. Among all alloys, the unannealed Zr<sub>7</sub>Ni<sub>10</sub> demonstrated the best gaseous phase hydrogen storage and electrochemical capacities, and the unannealed Zr<sub>8</sub>Ni<sub>21</sub> showed excellent HRD and activation.</p> <p>Zr<sub>8</sub>Ni<sub>21</sub> alloy was then chosen based on its promising performance to be further modified for the purpose of developing alternative MH alloys for Ni/MH batteries. Zr<sub>8</sub>Ni<sub>19</sub> <i>X</i> <sub>2</sub> alloys (<i>X</i> = Ni, Mg, Al, Sc, V, Mn, Co, Sn, La, and Hf) were prepared and studied. The effect of annealing on these alloys was also investigated. Only the main phase of the annealed Sn-substitution remained Zr<sub>8</sub>Ni<sub>21</sub>-structured while those of other substitutions turned into Zr<sub>7</sub>Ni<sub>10</sub> or Zr<sub>2</sub>Ni<sub>7</sub>. Annealing generally suppressed secondary phases except for the case of Zr<sub>8</sub>Ni<sub>19</sub>Sn<sub>2</sub>, where the major phase transformed from Zr<sub>2</sub>Ni<sub>7</sub> to Zr<sub>8</sub>Ni<sub>21</sub>. Both the maximum gaseous phase hydrogen storage and electrochemical full discharge capacities followed the increasing order of B/A ratio of the main phase. After annealing, all alloys except for the Sn-substituion showed degradation in full discharge capacity due to the reduction in number and abundance of the catalytic secondary phases. Among all alloys, the as-cast Hf-substituted Zr<sub>8</sub>Ni<sub>21</sub> alloy demonstrated the best overall gaseous phase hydrogen storage and electrochemical properties.</p>","abstract_html":"&lt;p&gt;Compared to the mish metal-based AB&lt;sub&gt;5&lt;/sub&gt; MH alloy commonly used in Ni/MH batteries, the transition metal-based AB&lt;sub&gt;2&lt;/sub&gt; MH alloy not only reduces the rare earth dependency, it also has higher specific energy. In order to further improve the performance of AB&lt;sub&gt;2&lt;/sub&gt; MH alloy, it&#x27;s crucial to full understand its multi-phase nature, which includes the main C14/C15 Laves phases and the secondary non-Laves phases.&lt;/p&gt; &lt;p&gt;In order to optimize the gaseous phase and electrochemical advantages of both the C14 and C15 Laves phases, a study was established to recognize the factors that affect the C14/C15 phase abundance. Average electron density (&lt;i&gt;e&lt;/i&gt;/&lt;i&gt;a&lt;/i&gt;) was proven to be an influential parameter in determining the C14/C15 phase abundance: as &lt;i&gt;e&lt;/i&gt;/&lt;i&gt;a&lt;/i&gt; increased, C14/C15 became less/more dominant, respectively. However, with different A-site composition, a shift in &lt;i&gt;e&lt;/i&gt;/&lt;i&gt;a&lt;/i&gt; was observed in the C14/C15 phase abundance vs. &lt;i&gt;e&lt;/i&gt;/&lt;i&gt;a&lt;/i&gt; relationship. The average chemical potential for electronic charge of A atoms (&lt;i&gt;Φ&lt;/i&gt; &lt;sup&gt;*&lt;/sup&gt; &lt;sub&gt;A&lt;/sub&gt;) was found to show a nearly perfect linear correlation to the C14/C15 threshold with various selections of A-site elements. The combination of e/a and &lt;i&gt;Φ&lt;/i&gt; &lt;sup&gt;*&lt;/sup&gt; &lt;sub&gt;A&lt;/sub&gt; can be used to predict the C14/C15 phase abundance and assist future AB&lt;sub&gt;2&lt;/sub&gt; MH alloy design process.&lt;/p&gt; &lt;p&gt;Four non-Laves phase alloys, Zr&lt;sub&gt;8&lt;/sub&gt;Ni&lt;sub&gt;21&lt;/sub&gt;, Zr&lt;sub&gt;7&lt;/sub&gt;Ni&lt;sub&gt;10&lt;/sub&gt;, Zr&lt;sub&gt;9&lt;/sub&gt;Ni&lt;sub&gt;11&lt;/sub&gt;, and ZrNi, commonly seen in AB&lt;sub&gt;2&lt;/sub&gt; MH alloys were studied. Annealing treatment was adopted on each alloy to change the abundances of various phases. Annealing suppressed secondary phases except for the case of Zr&lt;sub&gt;9&lt;/sub&gt;Ni&lt;sub&gt;11&lt;/sub&gt;, where its secondary ZrNi phase increased. As the Zr/Ni ratio increased, the maximum gaseous phase hydrogen storage capacity increased but maximized at Zr : Ni = 9 : 11. Comparing the properties before and after annealing, it was clear that the natures of constituent phases influenced the gaseous phase storage. The highest full discharge capacity was obtained at Zr : Ni = 7 : 10, which is a compromise between the hydrogen desorption rate and the theoretical maximum gaseous phase hydrogen storage. As the Zr/Ni ratio increased, the amount of metallic Ni in the surface oxide decreased, therefore the high-rate dischargeablity decreased. Among all alloys, the unannealed Zr&lt;sub&gt;7&lt;/sub&gt;Ni&lt;sub&gt;10&lt;/sub&gt; demonstrated the best gaseous phase hydrogen storage and electrochemical capacities, and the unannealed Zr&lt;sub&gt;8&lt;/sub&gt;Ni&lt;sub&gt;21&lt;/sub&gt; showed excellent HRD and activation.&lt;/p&gt; &lt;p&gt;Zr&lt;sub&gt;8&lt;/sub&gt;Ni&lt;sub&gt;21&lt;/sub&gt; alloy was then chosen based on its promising performance to be further modified for the purpose of developing alternative MH alloys for Ni/MH batteries. Zr&lt;sub&gt;8&lt;/sub&gt;Ni&lt;sub&gt;19&lt;/sub&gt; &lt;i&gt;X&lt;/i&gt; &lt;sub&gt;2&lt;/sub&gt; alloys (&lt;i&gt;X&lt;/i&gt; = Ni, Mg, Al, Sc, V, Mn, Co, Sn, La, and Hf) were prepared and studied. The effect of annealing on these alloys was also investigated. Only the main phase of the annealed Sn-substitution remained Zr&lt;sub&gt;8&lt;/sub&gt;Ni&lt;sub&gt;21&lt;/sub&gt;-structured while those of other substitutions turned into Zr&lt;sub&gt;7&lt;/sub&gt;Ni&lt;sub&gt;10&lt;/sub&gt; or Zr&lt;sub&gt;2&lt;/sub&gt;Ni&lt;sub&gt;7&lt;/sub&gt;. Annealing generally suppressed secondary phases except for the case of Zr&lt;sub&gt;8&lt;/sub&gt;Ni&lt;sub&gt;19&lt;/sub&gt;Sn&lt;sub&gt;2&lt;/sub&gt;, where the major phase transformed from Zr&lt;sub&gt;2&lt;/sub&gt;Ni&lt;sub&gt;7&lt;/sub&gt; to Zr&lt;sub&gt;8&lt;/sub&gt;Ni&lt;sub&gt;21&lt;/sub&gt;. Both the maximum gaseous phase hydrogen storage and electrochemical full discharge capacities followed the increasing order of B/A ratio of the main phase. After annealing, all alloys except for the Sn-substituion showed degradation in full discharge capacity due to the reduction in number and abundance of the catalytic secondary phases. Among all alloys, the as-cast Hf-substituted Zr&lt;sub&gt;8&lt;/sub&gt;Ni&lt;sub&gt;21&lt;/sub&gt; alloy demonstrated the best overall gaseous phase hydrogen storage and electrochemical properties.&lt;/p&gt;","abstract_has_math":false,"creators":["Nei, Jean"],"institution":null,"degree_name":"Ph.D.","degree_level":"Open Access Dissertation","degree_discipline":"Chemical Engineering and Materials Science","degree_department":null,"school":null,"contributors":["Simon Ng","Steve O. Salley"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2012,"date_issued":"2012-01-01T08:00:00Z","date_published":"2012-01-01T08:00:00Z","updated_at":"2026-07-24T05:59:04Z","subjects":["Electrochemical reactions, Hydrogen absorbing materials, Metal hydride electrodes, Nickel metal hydride battery, Synergetic effect, Transition metal alloys","Materials Science and Engineering","Oil, Gas, and Energy"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://digitalcommons.wayne.edu/oa_dissertations/465","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Simon Ng","Steve O. Salley"]},{"key":"dc:creator","label":"Author","values":["Nei, Jean"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.available","label":"Dc Date Available","values":["2013-05-07T07:00:00Z"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Chemical Engineering and Materials Science"]},{"key":"thesis:degree_level","label":"Degree Level","values":["Open Access Dissertation"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Ph.D."]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Electrochemical reactions, Hydrogen absorbing materials, Metal hydride electrodes, Nickel metal hydride battery, Synergetic effect, Transition metal alloys","Materials Science and Engineering","Oil, Gas, and Energy"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://digitalcommons.wayne.edu/oa_dissertations/465"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>Compared to the mish metal-based AB<sub>5</sub> MH alloy commonly used in Ni/MH batteries, the transition metal-based AB<sub>2</sub> MH alloy not only reduces the rare earth dependency, it also has higher specific energy. In order to further improve the performance of AB<sub>2</sub> MH alloy, it's crucial to full understand its multi-phase nature, which includes the main C14/C15 Laves phases and the secondary non-Laves phases.</p> <p>In order to optimize the gaseous phase and electrochemical advantages of both the C14 and C15 Laves phases, a study was established to recognize the factors that affect the C14/C15 phase abundance. Average electron density (<i>e</i>/<i>a</i>) was proven to be an influential parameter in determining the C14/C15 phase abundance: as <i>e</i>/<i>a</i> increased, C14/C15 became less/more dominant, respectively. However, with different A-site composition, a shift in <i>e</i>/<i>a</i> was observed in the C14/C15 phase abundance vs. <i>e</i>/<i>a</i> relationship. The average chemical potential for electronic charge of A atoms (<i>Φ</i> <sup>*</sup> <sub>A</sub>) was found to show a nearly perfect linear correlation to the C14/C15 threshold with various selections of A-site elements. The combination of e/a and <i>Φ</i> <sup>*</sup> <sub>A</sub> can be used to predict the C14/C15 phase abundance and assist future AB<sub>2</sub> MH alloy design process.</p> <p>Four non-Laves phase alloys, Zr<sub>8</sub>Ni<sub>21</sub>, Zr<sub>7</sub>Ni<sub>10</sub>, Zr<sub>9</sub>Ni<sub>11</sub>, and ZrNi, commonly seen in AB<sub>2</sub> MH alloys were studied. Annealing treatment was adopted on each alloy to change the abundances of various phases. Annealing suppressed secondary phases except for the case of Zr<sub>9</sub>Ni<sub>11</sub>, where its secondary ZrNi phase increased. As the Zr/Ni ratio increased, the maximum gaseous phase hydrogen storage capacity increased but maximized at Zr : Ni = 9 : 11. Comparing the properties before and after annealing, it was clear that the natures of constituent phases influenced the gaseous phase storage. The highest full discharge capacity was obtained at Zr : Ni = 7 : 10, which is a compromise between the hydrogen desorption rate and the theoretical maximum gaseous phase hydrogen storage. As the Zr/Ni ratio increased, the amount of metallic Ni in the surface oxide decreased, therefore the high-rate dischargeablity decreased. Among all alloys, the unannealed Zr<sub>7</sub>Ni<sub>10</sub> demonstrated the best gaseous phase hydrogen storage and electrochemical capacities, and the unannealed Zr<sub>8</sub>Ni<sub>21</sub> showed excellent HRD and activation.</p> <p>Zr<sub>8</sub>Ni<sub>21</sub> alloy was then chosen based on its promising performance to be further modified for the purpose of developing alternative MH alloys for Ni/MH batteries. Zr<sub>8</sub>Ni<sub>19</sub> <i>X</i> <sub>2</sub> alloys (<i>X</i> = Ni, Mg, Al, Sc, V, Mn, Co, Sn, La, and Hf) were prepared and studied. The effect of annealing on these alloys was also investigated. Only the main phase of the annealed Sn-substitution remained Zr<sub>8</sub>Ni<sub>21</sub>-structured while those of other substitutions turned into Zr<sub>7</sub>Ni<sub>10</sub> or Zr<sub>2</sub>Ni<sub>7</sub>. Annealing generally suppressed secondary phases except for the case of Zr<sub>8</sub>Ni<sub>19</sub>Sn<sub>2</sub>, where the major phase transformed from Zr<sub>2</sub>Ni<sub>7</sub> to Zr<sub>8</sub>Ni<sub>21</sub>. Both the maximum gaseous phase hydrogen storage and electrochemical full discharge capacities followed the increasing order of B/A ratio of the main phase. After annealing, all alloys except for the Sn-substituion showed degradation in full discharge capacity due to the reduction in number and abundance of the catalytic secondary phases. Among all alloys, the as-cast Hf-substituted Zr<sub>8</sub>Ni<sub>21</sub> alloy demonstrated the best overall gaseous phase hydrogen storage and electrochemical properties.</p>"]},{"key":"dc:title","label":"Title","values":["Multi-component ab2 metal hydride alloys for nickel metal hydride battery applications"]}]}],"canonical_facts":{"dc:contributor":["Simon Ng","Steve O. Salley"],"dc:creator":["Nei, Jean"],"dc:date.available":["2013-05-07T07:00:00Z"],"dc:description.abstract":["<p>Compared to the mish metal-based AB<sub>5</sub> MH alloy commonly used in Ni/MH batteries, the transition metal-based AB<sub>2</sub> MH alloy not only reduces the rare earth dependency, it also has higher specific energy. In order to further improve the performance of AB<sub>2</sub> MH alloy, it's crucial to full understand its multi-phase nature, which includes the main C14/C15 Laves phases and the secondary non-Laves phases.</p> <p>In order to optimize the gaseous phase and electrochemical advantages of both the C14 and C15 Laves phases, a study was established to recognize the factors that affect the C14/C15 phase abundance. Average electron density (<i>e</i>/<i>a</i>) was proven to be an influential parameter in determining the C14/C15 phase abundance: as <i>e</i>/<i>a</i> increased, C14/C15 became less/more dominant, respectively. However, with different A-site composition, a shift in <i>e</i>/<i>a</i> was observed in the C14/C15 phase abundance vs. <i>e</i>/<i>a</i> relationship. The average chemical potential for electronic charge of A atoms (<i>Φ</i> <sup>*</sup> <sub>A</sub>) was found to show a nearly perfect linear correlation to the C14/C15 threshold with various selections of A-site elements. The combination of e/a and <i>Φ</i> <sup>*</sup> <sub>A</sub> can be used to predict the C14/C15 phase abundance and assist future AB<sub>2</sub> MH alloy design process.</p> <p>Four non-Laves phase alloys, Zr<sub>8</sub>Ni<sub>21</sub>, Zr<sub>7</sub>Ni<sub>10</sub>, Zr<sub>9</sub>Ni<sub>11</sub>, and ZrNi, commonly seen in AB<sub>2</sub> MH alloys were studied. Annealing treatment was adopted on each alloy to change the abundances of various phases. Annealing suppressed secondary phases except for the case of Zr<sub>9</sub>Ni<sub>11</sub>, where its secondary ZrNi phase increased. As the Zr/Ni ratio increased, the maximum gaseous phase hydrogen storage capacity increased but maximized at Zr : Ni = 9 : 11. Comparing the properties before and after annealing, it was clear that the natures of constituent phases influenced the gaseous phase storage. The highest full discharge capacity was obtained at Zr : Ni = 7 : 10, which is a compromise between the hydrogen desorption rate and the theoretical maximum gaseous phase hydrogen storage. As the Zr/Ni ratio increased, the amount of metallic Ni in the surface oxide decreased, therefore the high-rate dischargeablity decreased. Among all alloys, the unannealed Zr<sub>7</sub>Ni<sub>10</sub> demonstrated the best gaseous phase hydrogen storage and electrochemical capacities, and the unannealed Zr<sub>8</sub>Ni<sub>21</sub> showed excellent HRD and activation.</p> <p>Zr<sub>8</sub>Ni<sub>21</sub> alloy was then chosen based on its promising performance to be further modified for the purpose of developing alternative MH alloys for Ni/MH batteries. Zr<sub>8</sub>Ni<sub>19</sub> <i>X</i> <sub>2</sub> alloys (<i>X</i> = Ni, Mg, Al, Sc, V, Mn, Co, Sn, La, and Hf) were prepared and studied. The effect of annealing on these alloys was also investigated. Only the main phase of the annealed Sn-substitution remained Zr<sub>8</sub>Ni<sub>21</sub>-structured while those of other substitutions turned into Zr<sub>7</sub>Ni<sub>10</sub> or Zr<sub>2</sub>Ni<sub>7</sub>. Annealing generally suppressed secondary phases except for the case of Zr<sub>8</sub>Ni<sub>19</sub>Sn<sub>2</sub>, where the major phase transformed from Zr<sub>2</sub>Ni<sub>7</sub> to Zr<sub>8</sub>Ni<sub>21</sub>. Both the maximum gaseous phase hydrogen storage and electrochemical full discharge capacities followed the increasing order of B/A ratio of the main phase. After annealing, all alloys except for the Sn-substituion showed degradation in full discharge capacity due to the reduction in number and abundance of the catalytic secondary phases. Among all alloys, the as-cast Hf-substituted Zr<sub>8</sub>Ni<sub>21</sub> alloy demonstrated the best overall gaseous phase hydrogen storage and electrochemical properties.</p>"],"dc:identifier":["https://digitalcommons.wayne.edu/oa_dissertations/465"],"dc:subject":["Electrochemical reactions, Hydrogen absorbing materials, Metal hydride electrodes, Nickel metal hydride battery, Synergetic effect, Transition metal alloys","Materials Science and Engineering","Oil, Gas, and Energy"],"dc:title":["Multi-component ab2 metal hydride alloys for nickel metal hydride battery applications"],"thesis:degree_discipline":["Chemical Engineering and Materials Science"],"thesis:degree_level":["Open Access Dissertation"],"thesis:degree_name":["Ph.D."]},"updated_at":"2026-07-24T05:59:04Z"}