Most of the FINCH Lab piled into a rental van and headed to Boston after Thanksgiving for the 2025 MRS Fall Meeting. Dr. Jibril Ahammad and Tanzila Tasnim shared their work on MBE growth of iridate heterostructures with back to back talks in EL05 on low-dimensional complex oxides. Bhargav Pathuri…
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Our collaborative paper with Pacific Northwest National Laboratory is out in npj Computational Materials. Former Auburn Ph.D. student Rajendra Paudel grew LaFeO3 films on SrTiO3 that PNNL characterized using electron microscopy and irradiated with Au ions to model radiation damage in materials. Their team used machine learning models to segment…
Comments closedOur new paper on the prediction of cation stoichiometry via machine learning analysis of RHEED patterns is out in Nano Letters. This work was co-led by Sumner Harris at Oak Ridge National Lab and our own Patrick Gemperline as part of his Ph.D. thesis at Auburn. Credit also goes to…
Comments closedOur work on RHEED analytics and machine learning continues with a collaborative paper on segmentation of videos to detect changes in growth modes. Led by Tiffany Kaspar and the AT-SCALE team at Pacific Northwest National Lab, the work shows how machine learning can be employed to provide real-time feedback to…
Comments closedWe’ve been working in earnest for several years on machine learning and data analytics for maximizing the information we glean from reflection high-energy electron diffraction (RHEED). In the MBE and PLD world, RHEED is used to monitor the growth of epitaxial films in real time, generating information on growth rates…
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