<?xml version="1.0" encoding="UTF-8" ?>
<rss version="2.0">
<channel>
<title> Institute for Systems Research Events</title>
<description>Events from the AJ Clark School of Engineering</description>
<link>http://eng.umd.edu/events/</link>
<lastBuildDate>Mon, 06 Jul 2026 08:10:14 EDT</lastBuildDate>
<image>
<title>Institute for Systems Research Events</title>
<url>http://eng.umd.edu/images/clark_logo_4email.gif</url>
<link>http://eng.umd.edu/events/</link>
</image>
<item>
<title>NanoColloquium: Kornelius Nielsch - Material Interfaces taking Control of Thermoelectric Transport</title>
<description>Friday, October 02, 2026 6:00 AM, Kay Boardroom - Jeong H. Kim Engineering Building, NanoColloquium 38
Prof. Dr. Kornelius Nielsch
Leibniz Institute for Solid State and Materials Research Dresden, GermanyInstitute of Material Science and Institute of Applied Physics, Technical University of Dresden, Germany

Material Interfaces taking Control of Thermoelectric Transport
The presentation will start with a general introduction on the basic thermoelectric transport effect, explain thermoelectric materials in general, and how these can be used in thermoelectric devices and introduce a few thermoelectric applications. For the core part of this presentation, I will discuss the impact of material interfaces on the thermoelectric transport in general and select three examples, which can let to tailored thermoelectric materials by interface engineering.
Enhancing the thermal stability and suppression of material diffusion in ZnSb compounds by coating the grains of ZnSb with the technique of atomic layer deposition, which allows the conformal coating of nano- and micro-sized powers on the atomic scale and a subsequent compaction.Thermoelectric multilayer systems are ideal to study separately the impact of the reduced dimension of thin films on the electronic and phononic transport. We have used atomic layer deposition to grow multilayers of Sb2Te3 and SbOx and studied in detail the significant impact of the interfaces on the phonon scattering.Several prominent thermoelectric materials like Sb2Te3, Bi2Se3 and Bi2Te3 are topological insulators. When these materials are single crystals, the bulk/volume of the crystals is behaving like ordinary highly doped semiconductor, whereas the surface behaves like graphene with highly mobile charge charrier. We will demonstrate that in nanosized materials the topological effects are enhanced and can significantly dominate the thermoelectric transport in these materials.In summary, the presentation will bridge the areas of solid states physics, solid state chemistry and material engineering and I will give an outlook on the engineering of material interfaces for future thermoelectric applications.
Kornelius Nielsch has been director of the Institute for Metallic Materials (IMW) at the Leibniz Institute for Solid State and Materials Research Dresden (IFW) since 2015, where he leads a research group working on sustainable thermoelectric materials and device for thermoelectric cooling.&amp;nbsp; Prof. Nielsch received his diploma in physics from the University of Duisburg in 1997 and his Ph.D. in physics from Martin Luther University Halle/Wittenberg, Germany, in 2002. From 2002 to 2003, Kornelius Nielsch was a postdoctoral fellow at MIT before taking up the position of group leader at the Max Planck Institute for Microstructure Physics in Halle, Germany, in 2003. Soon after, he moved to the Institute of Applied Physics at the University of Hamburg, where he was Professor of Experimental Physics from 2007 to 2015. From 2009 until 2015 he has coordinated the Priority Program on Nanostructured Thermoelectrics and is now coordinating the Marie Curie Doctoral Network on Mg-based alloys for thermoelectric cooling together with 15 partner institutions from Europe.</description>
<link>http://www.isr.umd.edu/events/index.php?mode=4&amp;id=20726</link>
<guid>http://www.isr.umd.edu/events/index.php?mode=4&amp;id=20726</guid>
</item>
<item>
<title>  Security of Edge Devices in the Post Quantum Era</title>
<description>Tuesday, July 14, 2026 1:30 PM, A.James Clark Hall Forum (Room 1101), EVENT: Security of Edge Devices in the Post Quantum Era
&amp;nbsp;
DATE:&amp;nbsp; Tuesday, July 14, 2026
&amp;nbsp;
TIME:&amp;nbsp; 8:30 a.m. to 3:00 p.m.
&amp;nbsp;
LOCATION: AJC Forum / Clark Hall Room 1101, University of Maryland College Park
&amp;nbsp;
Register&amp;nbsp;HERE
&amp;nbsp;
More Information available&amp;nbsp;HERE
&amp;nbsp;</description>
<link>http://www.isr.umd.edu/events/index.php?mode=4&amp;id=20728</link>
<guid>http://www.isr.umd.edu/events/index.php?mode=4&amp;id=20728</guid>
</item>
<item>
<title>ECE Power Electronics Seminar</title>
<description>Monday, July 27, 2026 7:00 PM, 1146 A.V. Williams, Speaker: Samantha Coday, Assistant Professor, Massachusetts Institute of Technology
&amp;nbsp;
Title:&amp;nbsp;Enabling extreme and flexible ultra-dense and efficient future power conversion
&amp;nbsp;
Abstract:&amp;nbsp;Driven by global energy challenges and the rapid adoption of renewable energy, modern power systems increasingly require efficient, high-density power conversion across wide operating ranges. This presentation explores how advancements in wide-bandgap semiconductors and capacitor-based energy processing can improve the size, efficiency, and performance of buck-boost power converters. By leveraging the high energy density of capacitors, these architectures reduce passive component size and switching stress while achieving high power density and efficiency. This presentation also presents extreme conversion-ratio converters based on capacitively isolated hybrid switched-capacitor architectures, enabling efficient high-step-up and high-step-down conversion for aircraft electrification and next-generation datacenter power delivery. Together, these technologies provide new pathways toward compact, scalable, and efficient power electronics for renewable energy systems, transportation, aerospace, and computing infrastructure.
&amp;nbsp;
Bio:&amp;nbsp;Samantha Coday is an Assistant Professor of Electrical Engineering and Computer Sciences at the Massachusetts Institute of Technology and a Principal Investigator in the MIT Research Laboratory of Electronics. She received the M.S. degree and Ph.D. degree in electrical engineering and computer sciences in 2019 and 2023, respectively, from the University of California, Berkeley. Her research interests include ultra dense power converters enabling renewable energy integration, electric vehicle charging and data center power delivery. She focuses on the optimization, design and control of hybrid switched-capacitor converters. Sam has received the NSF CAREER and the ARPA-E IGNIITE awards.
&amp;nbsp;
&amp;nbsp;
&amp;nbsp;</description>
<link>http://www.isr.umd.edu/events/index.php?mode=4&amp;id=20730</link>
<guid>http://www.isr.umd.edu/events/index.php?mode=4&amp;id=20730</guid>
</item>
</channel>
</rss>