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DTSTART;TZID=America/Chicago:20260928T120000
DTEND;TZID=America/Chicago:20260928T130000
DTSTAMP:20260914T141843Z
CREATED:20260820T205717Z
LAST-MODIFIED:20260914T141843Z
UID:10001577-1790596800-1790600400@live-uw-engineering.pantheonsite.io
SUMMARY:BME Seminar Series: Ian Wong
DESCRIPTION:Mechanobiology of Cancer Invasion and Metastasis Mediated by 3D Extracellular Matrix\n\n\n\n\n\n\n\nIan Wong\, PhDAssociate ProfessorSchool of EngineeringPathology and Laboratory MedicineBrown University \n\n\n\nAbstract:Invasion and metastasis are a hallmark of cancer and governed by mechanical interactions with the extracellular matrix. Indeed\, there exists a dynamic reciprocity where by cell migration is shaped by matrix architecture\, but the matrix architecture is (in turn) shaped by cell migration. We seek to reverse engineer human tumor progression using biomimetic platforms that reveal collective behaviors in space and time. Here\, I present my lab’s recent results on the mechanobiology of cancer cells. First\, we analyze the disorganization and dissemination of multicellular spheroids cultured in 3D matrix\, which exhibit a transition from coordinated circumferential orbiting towards radial matrix invasion. Second\, we analyze how human circulating tumor cells that metastasize to particular organs in patients and xenograft models adhere to decellularized extracellular matrix. We further use gene expression profiling to predict drug sensitivity and identify candidate drug compounds. We envision these technologies can enable new fundamental insights into the interplay between tumor cells and their physical microenviroment\, with potential translation for precision medicine and drug development. \n\n\n\nPrint PDF
URL:https://live-uw-engineering.pantheonsite.io/event/bme-seminar-series-ian-wong/
LOCATION:1003 (Tong Auditorium) Engineering Centers Building\, 1550 Engineering Drive\, Madison\, WI\, 53706\, United States
CATEGORIES:Biomedical Engineering,Seminar
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BEGIN:VEVENT
DTSTART;TZID=America/Chicago:20260929T122000
DTEND;TZID=America/Chicago:20260929T125000
DTSTAMP:20260603T151117Z
CREATED:20260603T151009Z
LAST-MODIFIED:20260603T151117Z
UID:10001527-1790684400-1790686200@live-uw-engineering.pantheonsite.io
SUMMARY:ECE Discovery Panel: Semiconductor Engineering
DESCRIPTION:Engineering undergraduates—any major or undecided! Join us in 2317 Engineering Hall as faculty members explore the technical area of Semiconductor Engineering. \n\n\n\nAll undergraduate students are welcome as Assistant Professor Chirag Gupta\, Professor Hongrui Jiang\, and Assistant Professor Jennifer Volk discuss real-world applications\, where engineers are making an impact\, and possible career paths. \n\n\n\nThis session is a great opportunity to learn about courses in this area and where this knowledge can take you. \n\n\n\nCome for the insights\, bring your questions\, and stay for the sandwiches! \n\n\n\n\n\nChirag Gupta\n\n\n\n\n\nHongrui Jiang\n\n\n\n\n\nJennifer Volk
URL:https://live-uw-engineering.pantheonsite.io/event/ece-discovery-panel-semiconductor-engineering/
LOCATION:2317 Engineering Hall\, 1415 Engineering Drive\, Madison\, 53711
CATEGORIES:Electrical & Computer Engineering,Information Session
ATTACH;FMTTYPE=image/jpeg:https://live-uw-engineering.pantheonsite.io/wp-content/uploads/2026/06/ECE-Discovery-Panel-Series-Semiconductor-Engineering.avif
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/Chicago:20260929T160000
DTEND;TZID=America/Chicago:20260929T170000
DTSTAMP:20260819T130757Z
CREATED:20260818T191012Z
LAST-MODIFIED:20260819T130757Z
UID:10001562-1790697600-1790701200@live-uw-engineering.pantheonsite.io
SUMMARY:CBE Seminar Series: Jeffrey Lopez
DESCRIPTION:Jeffrey LopezAssistant ProfessorDepartment of Chemical and Biological EngineeringNorthwestern University \n\n\n\nInterfacial Reaction Mechanisms Toward Precision Engineering of Interphase Chemistry in Next-Generation Batteries\n\n\n\n\n\n\n\nWhile lithium based battery technologies are becoming increasingly widespread in our energy landscape\, both in electric vehicles and grid scale storage\, there is a continued need to increase energy density\, reduce costs\, and improve the sustainability of their manufacturing. At the heart of every battery is an ionically conductive but electronically insulating electrolyte that dictates the safety\, charge rate\, and cycling lifetime of the device. Furthermore\, for every new battery technology\, a new electrolyte must be identified and optimized so that it is compatible with the desired electrode components. Electrolyte decomposition is engineered to produce stabilizing interphases that kinetically passivate electrode surfaces\, but the mechanisms to form these interphases and their ideal microstructure and composition are not well understood. In this presentation\, I will discuss recent progress in our group toward improving the precision with which interphases can be designed to enable high energy density and low cost storage. \n\n\n\nFirst\, I will detail our group’s efforts to better understand electrolyte reaction mechanisms that initiate and propagate organic SEI matrix growth. I will discuss the development of spin trapping to stabilize radical intermediates in electrolyte reduction pathways to clarify reaction mechanisms. Through this approach\, we have confirmed a ring opening mechanism for fluoroethylene carbonate (FEC) reduction and the reduction of 1\,1\,2\,2-tetrafluoroethyl 2\,2\,3\,3-tetrafluoropropylether (TTE) into vinyl monomers that protect inorganic interphase components. Second\, the kinetic competition between electrolyte components influences the composition of the organic phase of the SEI. We have used operando FTIR to identify how lithium hexafluorophosphate (LiPF6) modulates the competition between FEC and lithium bis(fluorosulfonyl)imide (LiFSI) during interphase formation\, and we have used quantitative measurements of selectivity to anion decomposition to develop a framework for estimating the solvent vs anion selectivity in interphase formation. Finally\, I will discuss efforts to understand and control the morphology of the composite electrodes within which these interphase formation reactions take place. We have used Contrast Variation Small Angle Neutron Scattering (CV-SANS) for quantitative analysis of nanoscale interfaces in the composite electrode and surface modification to control the electrode-binder interfaces and improve dry battery electrode manufacturing. Increased cohesion between the active material and the PTFE dry binder enables more uniform distribution of the carbon and binder throughout the electrode and the use of only 0.1 wt% binder to fabricate dry electrodes. Together\, these results build toward a more detailed understanding of critically important interphase chemistry. With a comprehensive view of reaction mechanisms\, kinetics\, and electrode structure\, new opportunities will arise for precise design and control of the interphase in next generation batteries.
URL:https://live-uw-engineering.pantheonsite.io/event/cbe-seminar-series-jeffrey-lopez/
LOCATION:1610 Engineering Hall\, 1415 Engineering Drive\, Madison\, 53706
CATEGORIES:Chemical & Biological Engineering,Seminar
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DTSTART;TZID=America/Chicago:20261001T120000
DTEND;TZID=America/Chicago:20261001T130000
DTSTAMP:20260922T151937Z
CREATED:20260914T170233Z
LAST-MODIFIED:20260922T151937Z
UID:10001602-1790856000-1790859600@live-uw-engineering.pantheonsite.io
SUMMARY:NEEP Seminar Series: So Yeon Kim\, University of Wisconsin–Madison
DESCRIPTION:NEEP Seminar SeriesThursdays12:00 – 1:00 PM106 Engineering Research BuildingBuilding Robust Energy Materials: Managing Damage Carriers in Open-System EnvironmentsEfficient and robust energy infrastructures for decarbonization require materials that can mediate nuclear\, electrochemical\, or electrical reactions over long periods\, often while converting or releasing large amounts of energy\, as in nuclear reactor walls and battery electrodes. Because these reactions occur in open systems that exchange atoms\, neutrons\, or electrons\, they can generate internal stresses on the order of gigapascals\, leading to material degradation and creating challenges across the energy life cycle.In this seminar\, I will present my approach to designing damage-tolerant energy materials under these open-system conditions. The central idea is to redistribute “damage carriers”—the atomic species exchanged during operation—into regions where they are less harmful or even beneficial. I will highlight one example in which helium-induced damage in fusion reactor materials is proactively redirected into more benign forms\, along with an approach for accelerating materials screening using a foundation model for chemistry.Together\, these efforts support a broader vision: empowering the systems engineering of energy materials by reframing their design challenges through a unified understanding of mechanical behavior in open systems\, grounded in the fundamentals and informatics of material imperfections. \n\n\n\n\n\n\n\nSo Yeon Kim is an Assistant Professor in the Department of Mechanical Engineering at the University of Wisconsin–Madison. She received her B.Sc. and M.Sc. in Materials Science and Engineering from Seoul National University in South Korea\, earned her Sc.D. in Materials Science and Engineering from MIT\, and completed postdoctoral research in Nuclear Science and Engineering at MIT. Her research focuses on designing damage-tolerant materials for robust energy systems. She combines modeling\, data-driven methods\, and experiments to understand and control how material imperfections evolve\, with the goal of mitigating degradation and failure.Please contact office@neep.wisc.edu for assistance with remote participation.
URL:https://live-uw-engineering.pantheonsite.io/event/neep-seminar-series-so-yeon-kim-university-of-wisconsin-madison/
LOCATION:Wisconsin
CATEGORIES:Nuclear Engineering & Engineering Physics
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END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/Chicago:20261001T130000
DTEND;TZID=America/Chicago:20261001T140000
DTSTAMP:20260928T195832Z
CREATED:20260928T195830Z
LAST-MODIFIED:20260928T195832Z
UID:10001614-1790859600-1790863200@live-uw-engineering.pantheonsite.io
SUMMARY:MS&E Seminar Series: Dr. Enyuan Hu\, Brookhaven National Laboratory
DESCRIPTION:UW-Madison Department of Materials Science and Engineering welcomes Dr. Enyuan Hu. His seminar\, “Making Redox Reactions Reversible: FromFundamental Chemistry to Battery Design”\, will take place on Thursday\, October 1 from 1-2 p.m. in MSE 265. \n\n\n\n\n\n\n\nBio \n\n\n\nDr. Enyuan Hu is a Chemist and Principal Investigator in the Chemistry Division at Brookhaven National Laboratory and an Adjunct Professor in Materials Science and Chemical Engineering at Stony Brook University. He earned his Ph.D. in Mechanical Engineering from Stony Brook University. His research spans battery materials design\, synthesis\, and characterization\, with particular emphasis on synchrotron X-ray and neutron techniques for understanding electrodes and interphases. His group studies lithium- metal\, sodium-ion\, lithium–sulfur\, and solid-state batteries. He was named a Clarivate Highly Cited Researcher from 2022 to 2025 and received the 2023 International Battery Materials Association Early Career Award and the Materials Today Rising Star Award. \n\n\n\nAbstract \n\n\n\nReversible redox reactions underpin rechargeable batteries\, yet electron transfer is often accompanied by structural rearrangements\, bond cleavage\, and parasitic reactions that prevent full recovery of the initial chemical state. Understanding these coupled processes is essential for designing batteries with greater efficiency and longer lifetimes. \n\n\n\nThis seminar will examine three interconnected challenges: structural and bonding changes\, interphasereactions\, and chemical crosstalk between electrodes. Examples from copper-containing sodium cathodes will illustrate how coordination geometry and cation migration connect atomic structure with electronic structure and redox behavior. Studies of sulfurized polyacrylonitrile will reveal how synthesis-dependent bonding and residual hydrogen influence first-cycle irreversibility. At lithium-metal interfaces\, identifying hidden reaction products and estimating component-resolved electron consumption provide insight into degradation beyond what Coulombic efficiency alone can reveal. Polysulfide shuttling will illustrate how mobile intermediates couple reactions across a cell. \n\n\n\nThroughout the seminar\, mechanistic understanding will be connected to strategies for improving reversibility\, including compositional control of structural evolution\, electrolyte and additive design\, and separator coatings that regulate polysulfide transport while sustaining sulfur utilization. Together\, these examples show how controlling local chemistry and interactions across a battery can help make redox reactions more reversible.
URL:https://live-uw-engineering.pantheonsite.io/event/mse-seminar-series-dr-enyuan-hu-brookhaven-national-laboratory/
LOCATION:Wisconsin
CATEGORIES:Materials Science & Engineering
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BEGIN:VEVENT
DTSTART;TZID=America/Chicago:20261001T160000
DTEND;TZID=America/Chicago:20261001T170000
DTSTAMP:20260923T172555Z
CREATED:20260805T184419Z
LAST-MODIFIED:20260923T172555Z
UID:10001538-1790870400-1790874000@live-uw-engineering.pantheonsite.io
SUMMARY:ME 903 Graduate Seminar: Yijin Liu
DESCRIPTION:The ME 903: Graduate Student Lecture Series features campus and visiting speakers who present on a variety of research topics in the field of mechanical engineering. Professor Yijin Liu is an Associate Professor at The University of Texas at Austin.  \n\n\n\nPresentation Title: Structural and Chemical Dynamics in Electrochemical Energy Storage Systems \n\n\n\nAbstract: Lithium-ion batteries exhibit structural and chemical complexity across multiple length scales. Understanding their function\, degradation\, and failure therefore requires a holistic perspective that integrates structural\, chemical\, mechanical\, and dynamic information. In this talk\, I will present our efforts to investigate these coupled processes by combining advanced operando imaging with computer vision algorithms to visualize the evolving structural hierarchy of practical battery cells. Our analyses capture damage\, deformation\, and chemical heterogeneity across multiple length scales and connect these observations to a range of degradation phenomena. The results highlight the critical role of electrode mechanical properties\, which evolve during cycling and strongly influence both short-term electrochemical performance and long-term stability. I hope this presentation will spark new ideas and foster future collaborations in this rapidly advancing field. \n\n\n\nBio: Dr. Yijin Liu received his B.S. (2004) and Ph.D. (2009) degrees from the Physics Department at the University of Science & Technology of China. He joined Stanford University as a postdoctoral scholar in 2009 and became an Associate Staff Scientist at the SLAC National Accelerator Laboratory in 2012\, a Staff Scientist in 2015\, and a Lead Scientist in 2020. In August 2023\, Dr. Liu joined the Walker Department of Mechanical Engineering at UT Austin as an Associate Professor. \n\n\n\nIn his previous role as a National Lab Scientist\, Dr. Liu led the technical developments and scientific applications for the Transmission X-ray Microscopy program at SLAC/Stanford. With nearly 20 years of experience in this field\, Dr. Liu has developed and applied X-ray characterization methods for a broad range of research fields. In more recent years\, Dr. Liu’s research focused on studying energy storage materials using high-throughput experimental methods as well as machine learning-assisted statistical analysis. Specific areas of focus include battery manufacturing\, safety\, degradation\, and failure analysis.
URL:https://live-uw-engineering.pantheonsite.io/event/me-903-graduate-seminar-yijin-liu/
LOCATION:3M Auditorium\, rm 1106 Mechanical Engineering Building\, 1513 University Ave\, Madison\, 53711
CATEGORIES:Mechanical Engineering,Seminar
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BEGIN:VEVENT
DTSTART;TZID=America/Chicago:20261002T120000
DTEND;TZID=America/Chicago:20261002T130000
DTSTAMP:20260923T173908Z
CREATED:20260820T172606Z
LAST-MODIFIED:20260923T173908Z
UID:10001567-1790942400-1790946000@live-uw-engineering.pantheonsite.io
SUMMARY:Mechanics Seminar: Professor Alexander Vakakis
DESCRIPTION:The Mechanics Seminar Series is a weekly seminar given by campus and visiting speakers on topics across the spectrum of mechanics research (solids\, fluids\, and dynamics). Professor Alex Vakakis is a professor at the University of Illinois Urbana-Champaign. \n\n\n\nTitle: Quantifying Energy Dissipation in Mechanical Systems \n\n\n\nAbstract: The quantification of the inherent dissipative capacity and the rate of energy dissipation in mechanical systems is of importance in engineering design. Energy dissipation in a system is affected by diverse\, multi-scale effects\, such as\, its damping distribution\, possible time-varying and nonlinear effects\, interfacial effects at the boundaries and/or internal attachments\, interactions with its environment (e.g.\, fluid-structure interactions)\, etc. This dictates the development of reliable dissipative measures capable of accurately accounting for such diverse effects. To address this need an analytical and data-driven numerical framework is developed based on the generalization of the concepts of bandwidth – BW (in frequency)\, time constant or energy storage time – EST (in time)\, and time bandwidth product – TBP (in frequency-time)\, typically only defined for single-DOF\, linear\, time-invariant oscillators. The aim is to derive physically meaningful dissipative measures that are applicable to general classes of linear/nonlinear\, time-invariant/variant\, single-/multi-DOF models of practical systems. A first example of application of these measures is given for a model airplane with imperfectly attached stores generating strong nonlinearities (in the form of vibro-impacts). We quantify the effects of vibro-impacts on the global dissipative capacity and rate of energy dissipation of the entire plane though computational and experimental studies. A second example of application is the study of the limits of energy dissipation in linear multi-DOF mechanical models with classical viscous damping distribution. Interestingly enough\, it appears to be an optimal design for this class of systems\, corresponding to a global minimum of their TBP\, which seems to be invariant to system topology and mass/stiffness distribution\, and depends only of the number of DOF. Finally\, some possible paths forward are discussed. \n\n\n\nBio: Alexander F. Vakakis received his Ph.D. from Caltech (1990 – T.K. Caughey advisor)\, M.Sc. from Imperial College\, London\, UK (1985 – D.J. Ewins advisor)\, and Diploma in Mechanical Engineering from the University of Patras\, Greece (1984 – S.A. Paipetis advisor). Currently he is the Donald Biggar Willett Professor of the College of Engineering at the University of Illinois at Urbana – Champaign (UIUC) where he co-directs the Linear and Nonlinear Dynamics and Vibrations Laboratory (http://lndvl.mechse.illinois.edu/); moreover\, he is co-affiliate faculty at the University of Stuttgart\, Germany. Recipient of the Tau Beta Pi Daniel C. Drucker Eminent Faculty Award from the UIUC College of Engineering (2023)\, the best paper award of the journal Nonlinear Dynamics (2023)\, an Alexander von Humboldt Research Award (2019)\, the Edmond J. Safra Visiting Professorship from Technion (2019)\, and the ASME Thomas K. Caughey Award in nonlinear dynamics (2014). He has published a volume of archival journal publications\, holds four patents (with two more pending)\, and has authored/edited 6 technical texts and monographs. Many of his PhD students and postdoctoral fellows are faculty members in US and International Universities and researchers in National Laboratories and R&D Centres. His research interests include nonlinear dynamics\, vibrations and acoustics\, passive energy management and targeted energy transfer across scales\, phononics and acoustic metamaterials\, system identification and reduced order modelling\, non-smooth dynamics and vibration energy harvesting.
URL:https://live-uw-engineering.pantheonsite.io/event/mechanics-seminar-professor-alex-vakakis/
LOCATION:1610 Engineering Hall\, 1415 Engineering Drive\, Madison\, 53706
CATEGORIES:Mechanical Engineering,Seminar
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BEGIN:VEVENT
DTSTART;TZID=America/Chicago:20261002T120000
DTEND;TZID=America/Chicago:20261002T130000
DTSTAMP:20260930T153621Z
CREATED:20260917T134053Z
LAST-MODIFIED:20260930T153621Z
UID:10001605-1790942400-1790946000@live-uw-engineering.pantheonsite.io
SUMMARY:ISyE Colloquia Series
DESCRIPTION:UW-ISyE looks forward to welcoming Bhaskar Ray Chaudhury from the University of Illinois Urbana–Champaign. \n\n\n\nResponse-Aware Rational Equilibrium (RARE) in Pricing Games \n\n\n\n\n\n\n\nWe study a broad class of pricing games with budget-constrained buyers\, encompassing both rival and non-rival assets. We show that pure Nash equilibria may fail to exist even when buyer preferences have a simple structure. This instability can arise from myopic price deviations whose apparent profitability relies on competitors leaving their prices unchanged. Once competitors respond in their own interests\, however\, the gains from such deviations may disappear. Motivated by this observation\, we introduce response-aware rational equilibrium (RARE)\, a notion of stability in which sellers anticipate the joint responses of their competitors when evaluating a price change. We require these responses to be individually rational: each responding seller must earn at least as much as it would by maintaining its price after the initial deviation. A price profile is a RARE if no seller has a deviation that remains profitable against every admissible response. We study the existence and structural properties of RARE\, as well as its emergence through natural revenue-improving market dynamics. Response-aware equilibria offer a natural framework for studying emerging economies populated by AI agents\, whose ability to model other agents and simulate their responses brings strategic anticipation to the forefront of economic decision-making. \n\n\n\nBio:  Bhaskar Ray Chaudhury is an Assistant Professor in the Department of Industrial and Enterprise Systems Engineering at the University of Illinois Urbana–Champaign\, with an affiliate appointment in the Siebel School of Computing and Data Science. His research lies at the intersection of theoretical computer science\, economics\, and machine learning\, with a focus on fair division\, equilibrium computation\, and the foundations of data economics. He has received several honors\, including the NSF Career Award\, best paper awards at the ACM Conference on Economics and Computation\, and an oral presentation at ICML.
URL:https://live-uw-engineering.pantheonsite.io/event/isye-colloquia-series/
LOCATION:1163 Mechanical Engineering\, 1513 Engineering Dr.\, Madison\, WI\, 53706\, United States
CATEGORIES:Colloquium,Industrial & Systems Engineering
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BEGIN:VEVENT
DTSTART;TZID=America/Chicago:20261003T090000
DTEND;TZID=America/Chicago:20261003T113000
DTSTAMP:20260922T181326Z
CREATED:20260731T164255Z
LAST-MODIFIED:20260922T181326Z
UID:10001535-1791018000-1791027000@live-uw-engineering.pantheonsite.io
SUMMARY:College of Engineering Alumni Tailgate
DESCRIPTION:College of Engineering Alumni Homecoming Tailgate\n\n\n\n \n\n\n\nMark your calendars for the College of Engineering Alumni Homecoming Tailgate on Saturday\, October 3\, before the Wisconsin Badgers take on Michigan State.  \n\n\n\nJoin fellow Badger engineers\, Dean Devesh Ranjan (MS ’05\, PhD ’07)\, college leadership\, and friends of the college for an afternoon of food\, conversation\, and Homecoming spirit on the UW-Madison engineering campus. \n\n\n\nThe tailgate will begin at 9 a.m. in the Mechanical Engineering Atrium. The game will kick off at 11:30 a.m. Attendees will enjoy a large buffet and two drink tickets\, with tickets priced at $25 per person. Children under 5 attend free. \n\n\n\nGuests will also have the opportunity to purchase lower-level football tickets in Section Y1 through the event registration site when registration opens. \n\n\n\nWhether you’re reconnecting with classmates\, meeting fellow alumni\, or celebrating all things Wisconsin Engineering\, this Homecoming tradition is a great way to kick off your game day. Watch for registration details and additional event information coming soon. \n\n\n\n \n\n\n\n\nRegister Today!
URL:https://live-uw-engineering.pantheonsite.io/event/college-of-engineering-alumni-tailgate/
LOCATION:Wisconsin
CATEGORIES:Alumni events,Biomedical Engineering,Chemical & Biological Engineering,Civil & Environmental Engineering,Departments,Electrical & Computer Engineering,Industrial & Systems Engineering,Materials Science & Engineering,Mechanical Engineering,Nuclear Engineering & Engineering Physics
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