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  <title><![CDATA[PhD Proposal by Isabella Stepanek]]></title>
  <body><![CDATA[<p><strong>Isabella Stepanek</strong><br>Advisor: Prof. Eric Vogel</p><p><br><em>will propose a doctoral thesis entitled</em>,</p><p><br><strong>Low temperature synthesis of MAX-phase Ti2AlC coatings and their performance as hydrogen isotope permeation barriers for fusion technologies</strong></p><p><br><em>On</em></p><p><br>Monday, October 12 at 12 p.m.<br>Pettit&nbsp;Microelectronics Building&nbsp;Room 102A</p><p>and/or&nbsp;virtually via&nbsp;<a href="https://teams.microsoft.com/meet/263376518936170?p=j6inS9c8ubYnh2WXhX">MS Teams</a></p><p>&nbsp;</p><p><strong>Abstract</strong></p><p>Realizing practical fusion energy requires materials that can withstand simultaneous neutron irradiation, thermal cycling, and corrosive molten salts without degrading. Conventional barriers such as Al2O3&nbsp;achieve high reduction factors in laboratory conditions but degrade irreversibly under neutron irradiation and thermal cycling. This work exploits the unique defect tolerance and self-healing behavior of the nanolaminated MAX-phases, specifically Ti2AlC, to address the hydrogen isotope permeation control problem in fusion blanket design.<strong>&nbsp;</strong>Aim 1 establishes a simplified bilayer synthesis approach combining an aluminum precursor layer with a TiAlC layer, enabling Ti2AlC formation at 650 °C through controlled Al diffusion, reducing the temperature requirements of conventional synthesis while eliminating the per-layer calibration challenges of prior methods.<strong>&nbsp;</strong>Aim 2 adapts this route to Grade 91 steel, a fusion-relevant structural substrate, and provides the first quantified permeation reduction factors for Ti2AlC-containing coatings through gas-driven deuterium permeation experiments, demonstrating one order of magnitude reduction in hydrogen isotope flux.<strong>&nbsp;</strong>Aim 3 evaluates barrier durability by measuring coating performance and structure before and after heavy-ion irradiation and molten salt exposure, establishing whether the predicted radiation tolerance and corrosion stability of MAX-phases hold in thin-film form under fusion-relevant conditions.<strong>&nbsp;</strong>Together, these efforts validate a pathway for engineering MAX-phase permeation barriers on structural materials within realistic fusion reactor thermal budgets.</p><p><strong>Committee</strong></p><ul><li data-list-item-id="e2d31d247d2c2a73decc975bfe8c41eae">Prof. Eric Vogel – School of Materials Science and Engineering (advisor)</li><li data-list-item-id="e4b40413c6c678787b51c5461a3c16c79">Dr. Dale Hitchcock – Savannah River National Laboratory</li><li data-list-item-id="e31ce42a9d552901a2d494c19c5295504">Prof. Mark Losego – School of Materials Science and Engineering</li><li data-list-item-id="e459549b4aa57d8c2ea91090d6bcb9a82">Prof. Caitanya Deo – School of Mechanical Engineering</li></ul>]]></body>
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      <value><![CDATA[Low temperature synthesis of MAX-phase Ti2AlC coatings and their performance as hydrogen isotope permeation barriers for fusion technologies]]></value>
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      <value><![CDATA[<p>Low temperature synthesis of MAX-phase Ti2AlC coatings and their performance as hydrogen isotope permeation barriers for fusion technologies</p>]]></value>
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      <value><![CDATA[2026-10-12T12:00:53-04:00]]></value>
      <value2><![CDATA[2026-10-12T14:00:53-04:00]]></value2>
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      <timezone><![CDATA[America/New_York]]></timezone>
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      <value><![CDATA[Pettit Microelectronics Building Room 102A and/or virtually via MS Teams]]></value>
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        <value><![CDATA[Phd proposal]]></value>
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