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Image Left",{"id":1430,"title":16,"body":1605,"containerWidth":16,"buttonGroup":1606,"media":16},"\u003Cp>ISAF-ICE-ISIF-PFM 2025 will offer tutorial courses on Sunday, July 13, 2025. &nbsp;Tutorials can be added to your registration.&nbsp;\u003C/p>\u003Cp>Tutorials are conducted by leading experts, researchers, or practitioners in the field. Attendees will benefit from direct access to their insights, experience, and advice. Tutorials are designed to provide focused, in-depth exploration of specific topics or emerging technologies. This structured format allows attendees to gain a deeper understanding that often goes beyond regular conference sessions.\u003C/p>\u003Cfigure class=\"image\">\u003Ca href=\"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/ISAF_2025_Tutorial_Schedule_Overview_7_9_2025_7818ae09ad.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">\u003Cimg src=\"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/ISAF_2025_Tutorial_Schedule_Overview_7_9_2025_0c4f4668fa.jpg\">\u003C/a>\u003C/figure>",{"id":1552,"variation":40,"button":1607},[1608],{"id":725,"label":1609,"size":44,"color":45,"style":16,"icon":768,"iconPosition":46,"url":1610,"newWindow":8,"downloadable":8,"shape":16},"Download Schedule","https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/ISAF_2025_Tutorial_Schedule_Overview_7_9_2025_7818ae09ad.pdf",{"id":39,"__component":1612,"componentVariation":1613,"contactsVariation":1614,"styles":16,"header":16,"sessionsGroup":1615},"content.sessions","Sessions Base","Card Contact Full",[1616],{"id":53,"groupTitle":16,"sessions":1617},[1618,1661,1711,1742,1794,1847,1898,1945,1985,2033,2068],{"id":294,"session":1619},{"id":92,"title":1620,"teaser":1621,"body":1622,"createdAt":1623,"updatedAt":1624,"publishedAt":1625,"url_path_id":1626,"contacts":1627,"url_path":1660},"Using ferroelectrics to enhance (photo)catalytic activity for clean fuel production: Experimental and computational approaches","\u003Cp style=\"text-align:justify;\">Future clean energy systems require efficient means of storing and transporting energy obtained from intermittent renewable sources, such as solar and wind. One way of achieving this is through electrochemical conversion of clean electricity to chemical energy stored in fuels such as hydrogen produced through water splitting [1]. Such electrochemical processes can be driven either directly by sunlight (referred to as photo-electrocatalysis) or indirectly (i.e. by producing electricity from solar, wind or other clean energy sources, which is then fed into the electrochemical cell).\u003C/p>","\u003Cp style=\"text-align:justify;\">While such electrochemical and photoelectrochemical (PEC) processes for clean fuel production are well established, they are not yet commercially viable at a large scale, due to low efficiencies and high costs. Novel materials and approaches are needed.\u003C/p>\u003Cp style=\"text-align:justify;\">Electrochemical clean fuel production processes are based on redox reactions, with oxidation occurring at the surface of an anode and reduction occurring at the surface of a cathode. In the case of PEC processes, at least one electrode must be a semiconductor that absorbs photons from incident sunlight to produce excited electron-hole pairs, with the charges then needing to be separated and transported to the electrode surfaces to undergo the reactions. It is these charge separation and transport steps that are often a limiting factor in PEC processes and a significant cause of inefficiencies and energy losses.\u003C/p>\u003Cp style=\"text-align:justify;\">One novel approach to enhancing efficiency in (photo)electrochemistry is to use ferroelectric materials for the (photo)electrodes [2,3]. \u003Cspan lang=\"FR\" dir=\"ltr\">The \u003C/span>polarization-induced internal electric field of the ferroelectric can facilitate charge separation and transport, while also potentially tuning the surface chemistry and electronic states to optimize the reaction processes at the surface.\u003C/p>\u003Cp style=\"text-align:justify;\">This tutorial will cover the basic principles of PEC clean fuel generation and the application of ferroelectric materials. The ferroelectric polarization field can have a variety of effects on charge separation and transport, which are often in competition with each other and each need to be considered in order to understand and optimize PEC performance [4,5]. The array of experimental methods that can be used to help resolve these effects will be discussed.\u003C/p>\u003Cp style=\"text-align:justify;\">Understanding the atomic-scale effects of ferroelectric polarization on electronic structures, surface chemistry and reaction processes is particularly challenging. Here, application of computational methods such as density functional theory (DFT) in parallel with experimental methods is a powerful approach. Relevant computational methods and the insights they can provide will be discussed.\u003C/p>\u003Cp style=\"text-align:justify;\">\u003Cspan lang=\"FR\" dir=\"ltr\">[1]&nbsp; W. Yang, R. R. Prabhakar, J. Tan, S. D. Tilley, J. Moon, \u003C/span>\u003Ci>\u003Cspan lang=\"FR\" dir=\"ltr\">Chemical Society Reviews\u003C/span>\u003C/i>\u003Cspan lang=\"FR\" dir=\"ltr\">, \u003Cstrong>48\u003C/strong>, 4979-5015 (2019).\u003C/span>\u003C/p>\u003Cp style=\"text-align:justify;\">\u003Cspan lang=\"FR\" dir=\"ltr\">[2]&nbsp; D. Tiwari, S. Dunn, \u003C/span>\u003Ci>\u003Cspan lang=\"FR\" dir=\"ltr\">Journal of Materials Science\u003C/span>\u003C/i>\u003Cspan lang=\"FR\" dir=\"ltr\">, \u003Cstrong>44\u003C/strong>, 5063-5079 (2009).\u003C/span>\u003C/p>\u003Cp style=\"text-align:justify;\">\u003Cspan lang=\"FR\" dir=\"ltr\">[3]&nbsp; M. Gunawan, \u003C/span>\u003Ci>\u003Cspan lang=\"FR\" dir=\"ltr\">et al.\u003C/span>\u003C/i>\u003Cspan lang=\"FR\" dir=\"ltr\">, \u003C/span>\u003Ci>\u003Cspan lang=\"FR\" dir=\"ltr\">J. Materials Chemistry A\u003C/span>\u003C/i>\u003Cspan lang=\"FR\" dir=\"ltr\">, \u003Cstrong>13\u003C/strong>, 1612-1640 (2025).\u003C/span>\u003C/p>\u003Cp style=\"text-align:justify;\">\u003Cspan lang=\"FR\" dir=\"ltr\">[4]&nbsp; M. Gunawan, \u003C/span>\u003Ci>\u003Cspan lang=\"FR\" dir=\"ltr\">et al.\u003C/span>\u003C/i>\u003Cspan lang=\"FR\" dir=\"ltr\">, \u003C/span>\u003Ci>\u003Cspan lang=\"FR\" dir=\"ltr\">Advanced Functional Materials\u003C/span>\u003C/i>\u003Cspan lang=\"FR\" dir=\"ltr\">, 2417651 (2025).\u003C/span>\u003C/p>\u003Cp style=\"text-align:justify;\">\u003Cspan lang=\"FR\" dir=\"ltr\">[5]&nbsp; W. Yang, \u003C/span>\u003Ci>\u003Cspan lang=\"FR\" dir=\"ltr\">et al.\u003C/span>\u003C/i>\u003Cspan lang=\"FR\" dir=\"ltr\">, \u003C/span>\u003Ci>\u003Cspan lang=\"FR\" dir=\"ltr\">Nano Letters\u003C/span>\u003C/i>\u003Cspan lang=\"FR\" dir=\"ltr\">, \u003Cstrong>15\u003C/strong>, 7574-7580 (2015).\u003C/span>\u003C/p>","2025-02-13T21:00:26.374Z","2025-02-13T21:00:30.352Z","2025-02-13T21:00:30.341Z","107",[1628],{"id":257,"name":1629,"committee":16,"position":16,"affiliation":1630,"email":16,"biography":1631,"createdAt":1632,"updatedAt":1632,"url_path_id":1633,"contactPhoto":1634,"socialLinks":1658,"url_path":1659},"Judy Hart","School of Materials Science and Engineering, UNSW Sydney","\u003Cp style=\"text-align:justify;\">Associate Professor Judy Hart joined the School of Materials Science and Engineering at UNSW Sydney in July, 2013. After completing her PhD in Materials Engineering at Monash University (Melbourne, Australia), she was a post-doctoral researcher at the University of Bath, U.K., and then held a Ramsay Memorial Fellowship in the Centre for Computational Chemistry, University of Bristol, U.K. Her research interests are in the combined use of computational and experimental approaches to design and enhance semiconductor and catalytic materials, particularly for renewable energy applications, and to develop fundamental understanding of the atomic-scale mechanisms at play in these materials.\u003C/p>\u003Cp style=\"text-align:justify;\">http://www.unsw.edu.au/staff/judy-hart\u003C/p>","2025-02-13T20:55:27.514Z","104",{"id":1635,"name":1636,"alternativeText":16,"caption":16,"width":1637,"height":1637,"formats":1638,"hash":1654,"ext":19,"mime":20,"size":1655,"url":1656,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1657,"updatedAt":1657},135,"Judy Hart.png",939,{"small":1639,"medium":1644,"thumbnail":1649},{"ext":19,"url":1640,"hash":1641,"mime":20,"name":1642,"path":16,"size":1643,"width":787,"height":787},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/small_Judy_Hart_98cdbf9db2.png","small_Judy_Hart_98cdbf9db2","small_Judy Hart.png",591.89,{"ext":19,"url":1645,"hash":1646,"mime":20,"name":1647,"path":16,"size":1648,"width":794,"height":794},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/medium_Judy_Hart_98cdbf9db2.png","medium_Judy_Hart_98cdbf9db2","medium_Judy Hart.png",1283.02,{"ext":19,"url":1650,"hash":1651,"mime":20,"name":1652,"path":16,"size":1653,"width":263,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_Judy_Hart_98cdbf9db2.png","thumbnail_Judy_Hart_98cdbf9db2","thumbnail_Judy Hart.png",64.95,"Judy_Hart_98cdbf9db2",357.46,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/Judy_Hart_98cdbf9db2.png","2025-02-13T20:55:06.402Z",[],"-67","-70",{"id":92,"session":1662},{"id":127,"title":1663,"teaser":1664,"body":1665,"createdAt":1666,"updatedAt":1667,"publishedAt":1668,"url_path_id":1669,"contacts":1670,"url_path":1710},"Electrical and mechanical characterization of piezo- & ferroelectrics","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Piezoelectric materials are integral to numerous advanced technologies including sensors and actuators due to their unique electromechanical coupling properties. Understanding and characterizing these materials require precise measurement techniques that reliably determine key parameters, such as piezoelectric coefficients, dielectric constants, and polarization behavior. This tutorial offers an in-depth exploration of the theoretical principles underpinning piezoelectricity and the advanced measurement methodologies used to evaluate these properties.\u003C/span>\u003C/p>","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">The discussion begins with a concise review of the fundamental theory of piezoelectric materials, emphasizing the relationships between electrical and mechanical responses under applied stimuli. We then transition to advanced measurement techniques that enable accurate characterization. These include displacement measurements, dynamic piezoelectric coefficient evaluation, and dielectric spectroscopy. Methods for analyzing polarization hysteresis loops, small-signal impedance, and resonance characteristics are detailed, providing insights into material behavior under various operational conditions.\u003C/span>\u003C/p>\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Special attention is given to precision measurement setups that integrate automated control and high-sensitivity detection, ensuring repeatability and accuracy. Techniques for determining material non-linearity, fatigue, and aging effects are also examined, alongside tools for highly accelerated lifetime testing (HALT) of piezoelectric materials and devices. In addition, techniques to detect material defects as the measurement of thermally stimulated depolarization currents (TSDC) are presented.&nbsp;\u003C/span>\u003C/p>\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">The tutorial emphasizes methodologies that combine hardware and software innovations, facilitating robust analysis of piezoelectric performance. Illustrative examples demonstrate how these techniques can be applied to research and development in fields such as microelectromechanical systems (MEMS) and advanced sensors.\u003C/span>\u003C/p>\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">By the end of the session, participants will have a comprehensive understanding of both the theoretical framework and the practical measurement tools necessary to characterize piezoelectric materials effectively. This knowledge will empower researchers and engineers to conduct precise evaluations, driving advancements in material design and application.\u003C/span>\u003C/p>","2025-02-13T21:03:41.033Z","2025-02-13T21:03:45.692Z","2025-02-13T21:03:45.683Z","110",[1671],{"id":681,"name":1672,"committee":16,"position":16,"affiliation":1673,"email":16,"biography":1674,"createdAt":1675,"updatedAt":1675,"url_path_id":1676,"contactPhoto":1677,"socialLinks":1708,"url_path":1709},"Tom Kremers","aixACCT Systems GmbH","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Tom Kremers studied Electrical Engineering at RWTH Aachen University, Aachen, Germany and received his master’s degree in 2015. During his doctoral studies his major research focused on digital microfluidic systems He received his PhD in 2021 and joined aixACCT systems being responsible for measurement tool developments as a member of the R&amp;D division. Since 2024 he is deputy CTO at aixACCT systems and coordinates developments and innovations.\u003C/span>\u003C/p>","2025-02-13T20:58:48.152Z","106",{"id":384,"name":1678,"alternativeText":16,"caption":16,"width":1679,"height":1680,"formats":1681,"hash":1704,"ext":816,"mime":819,"size":1705,"url":1706,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1707,"updatedAt":1707},"Tom (1).jpg",5472,3648,{"large":1682,"small":1687,"medium":1693,"thumbnail":1698},{"ext":816,"url":1683,"hash":1684,"mime":819,"name":1685,"path":16,"size":231,"width":779,"height":1686},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/large_Tom_1_7048f2022f.jpg","large_Tom_1_7048f2022f","large_Tom (1).jpg",667,{"ext":816,"url":1688,"hash":1689,"mime":819,"name":1690,"path":16,"size":1691,"width":787,"height":1692},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/small_Tom_1_7048f2022f.jpg","small_Tom_1_7048f2022f","small_Tom (1).jpg",11.24,333,{"ext":816,"url":1694,"hash":1695,"mime":819,"name":1696,"path":16,"size":1697,"width":794,"height":787},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/medium_Tom_1_7048f2022f.jpg","medium_Tom_1_7048f2022f","medium_Tom (1).jpg",20.19,{"ext":816,"url":1699,"hash":1700,"mime":819,"name":1701,"path":16,"size":1702,"width":1703,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_Tom_1_7048f2022f.jpg","thumbnail_Tom_1_7048f2022f","thumbnail_Tom (1).jpg",4.05,234,"Tom_1_7048f2022f",660.38,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/Tom_1_7048f2022f.jpg","2025-02-13T20:58:37.192Z",[],"-69","-73",{"id":714,"session":1712},{"id":445,"title":1713,"teaser":1714,"body":60,"createdAt":1715,"updatedAt":1716,"publishedAt":1717,"url_path_id":1718,"contacts":1719,"url_path":1741},"Engineering ferroelectric domains in oxide heterostructures and membranes ","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Ferroelectric materials exhibit electrically switchable polarization, with their nano- and mesoscale polarization arrangements giving rise to distinct ferroelectric domains. The functional properties of ferroelectrics, including their dielectric, piezoelectric, and ferroelectric responses, are intrinsically coupled to domain configurations. By strategically designing and controlling domain structures, these properties can be significantly enhanced. In this tutorial, I will focus on low-dimensional ferroelectrics, from epitaxial heterostructures to freestanding membranes, to introduce key strategies for domain engineering. Specifically, I will discuss how orientation control, electrostatic engineering, strain engineering, and size effects can be leveraged to tailor ferroelectric domain structures and induce emerging and competing ferroic orders in complex oxide heterostructures and membranes.\u003C/span>\u003C/p>","2025-02-13T21:02:30.689Z","2025-02-13T21:02:34.004Z","2025-02-13T21:02:33.996Z","109",[1720],{"id":662,"name":1721,"committee":16,"position":16,"affiliation":1722,"email":16,"biography":1723,"createdAt":1724,"updatedAt":1724,"url_path_id":1725,"contactPhoto":1726,"socialLinks":1738,"url_path":1740},"Ruijuan Xu","North Carolina State University","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Ruijuan Xu is an Assistant Professor of Materials Science and Engineering at North Carolina State University. Before joining NC State, she worked as a GLAM&nbsp;\u003C/span>\u003Cspan style=\"background-color:#ffffff;color:#000000;\">Postdoctoral Fellow in the Department of Applied Physics at Stanford University and SLAC National Laboratory. She received her B.E. from Zhejiang University, her M.S. from the University of Illinois at Urbana-Champaign, and her Ph.D. from the University of California, Berkeley, all in Materials Science and Engineering. Her current research&nbsp;\u003C/span>\u003Cspan style=\"background-color:transparent;color:#000000;\">focuses on the design and manipulation of novel functional properties and exotic phenomena in oxide thin films, heterostructures, and membranes. Her research group leverages atomic-scale epitaxy and state-of-the-art characterization techniques to construct novel ferroic materials, with an emphasis on applications in next-generation microelectronics and energy technologies\u003C/span>\u003Cspan style=\"background-color:#ffffff;color:#000000;\">.&nbsp;\u003C/span>\u003Cspan style=\"background-color:transparent;color:#000000;\">Ruijuan has been recently recognized with several awards including the 2024 ACS PRF Doctoral New Investigator Award and the 2024 iWOE Prize in Oxide Electronics for Excellence in Research for “her outstanding progress in the creation and control of dielectric and ferroelectric properties in complex oxide thin films and freestanding membranes”.&nbsp;\u003C/span>\u003C/p>","2025-02-13T20:57:29.418Z","105",{"id":347,"name":1727,"alternativeText":16,"caption":16,"width":787,"height":787,"formats":1728,"hash":1734,"ext":816,"mime":819,"size":1735,"url":1736,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1737,"updatedAt":1737},"Ruijuan 500x500 (1).jpg",{"thumbnail":1729},{"ext":816,"url":1730,"hash":1731,"mime":819,"name":1732,"path":16,"size":1733,"width":263,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_Ruijuan_500x500_1_9ab47c8bb6.jpg","thumbnail_Ruijuan_500x500_1_9ab47c8bb6","thumbnail_Ruijuan 500x500 (1).jpg",7.83,"Ruijuan_500x500_1_9ab47c8bb6",53.34,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/Ruijuan_500x500_1_9ab47c8bb6.jpg","2025-02-13T20:56:26.299Z",[1739],{"id":14,"url":16,"platform":16},"-68","-72",{"id":127,"session":1743},{"id":154,"title":1744,"teaser":1745,"body":1746,"createdAt":1747,"updatedAt":1748,"publishedAt":1749,"url_path_id":1750,"contacts":1751,"url_path":1793},"Emerging Ferroelectricity in Fluorite-Structured (Hf,Zr)O2:  From Fundamentals to Practical Semiconductor Applications","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">The ferroelectricity discovered in (Hf,Zr)O\u003Csub>2\u003C/sub> has garnered increasing interest from both academia and industry since its first report in 2011.[1] Even from the first report, the ferroelectricity could be demonstrated in sub-10-nm thickness, which is now confirmed within sub-1-nm thickness.[2,3] The origin of the unexpected ferroelectricity has been intensively studied and the formation of the metastable orthorhombic (space group:&nbsp;\u003Ci>Pca\u003C/i>2\u003Csub>1\u003C/sub>) or rhombohedral (space group:&nbsp;\u003Ci>R\u003C/i>3\u003Ci>m\u003C/i> or&nbsp;\u003Ci>R\u003C/i>3) phases is believed as the crystallographic origin. Owing to the robust ferroelectricity in sub-5-nm thickness regime which is beneficial to achieve low-power semiconductor devices as well as an endurable cycle number even beyond 10\u003Csup>12\u003C/sup> cycles of ferroelectric (Hf,Zr)O\u003Csub>2\u003C/sub>, ferroelectric random-access memory is more promising for practical applications than ever.[4-6]\u003C/span>\u003C/p>","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">However, there are technical issues requiring urgent solutions, such as insufficient endurance and switching speed, which are strongly related to the intrinsically high coercive field and its wide distribution.[4-6] In this tutorial, therefore, the ferroelectricity in (Hf,Zr)O2 is reviewed from the fundamental theory behind the unexpected formation of the ferroelectric phase to the practical semiconductor applications. The strong quantitative correlation between the material properties and device performances are reviewed with considering various factors including interfacial redox chemistry [7], defect chemistry [8,9], polymorphism [10], stress/strain [11], and crystallographic texture.&nbsp;&nbsp;\u003C/span>&nbsp;\u003C/p>\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">[1] T. S. Boescke et al. Appl. Phys. Lett. 99, 102903 (2011).&nbsp;\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[2] S. Cheema et al. Nature 580, 478-482 (2021).\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[3] S. Cheema et al. Science 376, 648-652 (2022).\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[4] M. H. Park et al. MRS Commun. 8, 795-808 (2018).\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[5] U. Schroeder and M. H. Park et al. Nat. Rev. Mater. 7, 653-669 (2022).\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[6] J. Y. Park, D.-H. Choe and D. H. Lee et al. Adv. Mater. 35, 2204904 (2022).\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[7] K. Yang et al. Chem. Mater. 35 (6), 2219-2237 (2023).\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[8] M. H. Park et al. J. Mater. Chem. C (31), 10526-10550 (2020).\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[9] J. Lee, K. Yang and J. Y. Kwon et al. Nano Convergence 10, 55 (2024).\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[10] M. H. Park et al. Adv. Electron. Mater. 5, 1800522 (2019).\u003C/span>\u003Cbr>\u003Cspan style=\"background-color:transparent;color:#000000;\">[11] Y. Lee and H. W. Jeong et al. Mater. Sci. Semicond. Proc. 160, 107411 (2023).\u003C/span>\u003C/p>","2025-02-18T06:39:39.605Z","2025-02-18T06:39:43.776Z","2025-02-18T06:39:43.771Z","113",[1752],{"id":1430,"name":1753,"committee":16,"position":16,"affiliation":1754,"email":16,"biography":1755,"createdAt":1756,"updatedAt":1756,"url_path_id":1757,"contactPhoto":1758,"socialLinks":1791,"url_path":1792},"Min Hyuk Park","Department of Materials Science and Engineering of Seoul National University","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Prof. Min Hyuk Park received his BS and PhD degrees in Materials Science and Engineering from Seoul National University, Seoul, Korea, in 2008 and 2014, respectively. He worked as a Postdoc in Seoul National University (2014–2015) and NaMLab gGmbH in Dresden Germany (2015–2018), and an Assistant Professor in the School of Materials Science and Engineering of Pusan National University (2018-2021). He is currently an associate professor in the Department of Materials Science and Engineering of Seoul National University. His research interests include ferroelectric and antiferroelectric thin films for neuromorphic computing, memory, energy storage, energy harvesting, and solid-state cooling.\u003C/span>\u003C/p>","2025-02-18T06:37:39.703Z","112",{"id":579,"name":1759,"alternativeText":16,"caption":16,"width":1760,"height":1761,"formats":1762,"hash":1787,"ext":816,"mime":819,"size":1788,"url":1789,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1790,"updatedAt":1790},"Photo_MHPark - Min Hyuk Park.jpg",1882,2393,{"large":1763,"small":1769,"medium":1775,"thumbnail":1781},{"ext":816,"url":1764,"hash":1765,"mime":819,"name":1766,"path":16,"size":1767,"width":1768,"height":779},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/large_Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3.jpg","large_Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3","large_Photo_MHPark - Min Hyuk Park.jpg",89.54,786,{"ext":816,"url":1770,"hash":1771,"mime":819,"name":1772,"path":16,"size":1773,"width":1774,"height":787},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/small_Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3.jpg","small_Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3","small_Photo_MHPark - Min Hyuk Park.jpg",23.53,393,{"ext":816,"url":1776,"hash":1777,"mime":819,"name":1778,"path":16,"size":1779,"width":1780,"height":794},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/medium_Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3.jpg","medium_Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3","medium_Photo_MHPark - Min Hyuk Park.jpg",50.65,590,{"ext":816,"url":1782,"hash":1783,"mime":819,"name":1784,"path":16,"size":1785,"width":1786,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3.jpg","thumbnail_Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3","thumbnail_Photo_MHPark - Min Hyuk Park.jpg",3.45,123,"Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3",425.84,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/Photo_MH_Park_Min_Hyuk_Park_69ba8f06e3.jpg","2025-02-18T06:37:07.163Z",[],"-74","-75",{"id":154,"session":1795},{"id":420,"title":1796,"teaser":1797,"body":60,"createdAt":1798,"updatedAt":1799,"publishedAt":1800,"url_path_id":1801,"contacts":1802,"url_path":1846},"Fundamentals of Wurtzite Ferroelectrics","\u003Cp>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(0,0,0);\">Wurtzite (Al,Sc)N bas been utilized as microwave resonator and filter devices in telecommunications due to its large electromechanical coupling. The recent discovery of ferroelectricity in (Al,Sc)N films provides opportunities for new material discoveries and device applications such as tunable filters and non-volatile memories. In this tutorial, I will present unique features of the wurtzite ferroelectric materials. Those include: (1) crystal phases in AlN based materials, (2) on Landau-Devonshire model and global strain effects on ferroelectric responses, (3) local bonding effects on ferroelectric switching pathway, and (4) anomalously abrupt kinetics in ferroelectric switching dynamics, and (5) leakage current mechanisms. Those fundamental understandings on wurtzite ferroelectric materials provide insights on further material design and improvement on material properties and device performance.\u003C/span>\u003C/p>","2025-02-19T07:20:34.156Z","2025-05-07T04:40:12.484Z","2025-02-19T07:20:36.263Z","116",[1803],{"id":119,"name":1804,"committee":16,"position":16,"affiliation":1805,"email":16,"biography":1806,"createdAt":1807,"updatedAt":1808,"url_path_id":1809,"contactPhoto":1810,"socialLinks":1844,"url_path":1845},"Kei Yazawa","Colorado School of Mines","\u003Cp style=\"margin-left:0in;\">Keisuke Yazawa is a Research Assistant Professor at the Metallurgical and Materials Engineering Department at the Colorado School of Mines (Mines) and joint appoint at the National Renewable Energy Laboratory (NREL). He received a BS degree in Chemistry in 2008 from Sophia University and a MS degree in Materials Science in 2010 from Tokyo Institute of Technology. He spent 6 years as an R&amp;D engineer at Panasonic from 2010 to 2016. He received a PhD in Materials Engineering from Purdue University in 2020. He was a postdoctral researcher at Mines and NREL. His research focus is on functional nitride and oxide thin film synthesis and characterization. He has been recognized as JACerS 2nd Century Trailblazer Finalist and 2023 APL Rising Stars. He recieved several awards including 2024 NREL Postdoctral Research Proposal Award and 2024 ACerS Edward C. Henry Award.\u003C/p>","2024-08-19T18:49:33.732Z","2025-05-07T05:37:31.450Z","37",{"id":1811,"name":1812,"alternativeText":16,"caption":16,"width":1813,"height":1814,"formats":1815,"hash":1840,"ext":816,"mime":819,"size":1841,"url":1842,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1843,"updatedAt":1843},88,"KeiYazawa_enhanced.jpg",1036,1256,{"large":1816,"small":1822,"medium":1828,"thumbnail":1834},{"ext":816,"url":1817,"hash":1818,"mime":819,"name":1819,"path":16,"size":1820,"width":1821,"height":779},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/large_Kei_Yazawa_enhanced_80a8977cd9.jpg","large_Kei_Yazawa_enhanced_80a8977cd9","large_KeiYazawa_enhanced.jpg",1650.63,825,{"ext":816,"url":1823,"hash":1824,"mime":819,"name":1825,"path":16,"size":1826,"width":1827,"height":787},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/small_Kei_Yazawa_enhanced_80a8977cd9.jpg","small_Kei_Yazawa_enhanced_80a8977cd9","small_KeiYazawa_enhanced.jpg",449.72,412,{"ext":816,"url":1829,"hash":1830,"mime":819,"name":1831,"path":16,"size":1832,"width":1833,"height":794},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/medium_Kei_Yazawa_enhanced_80a8977cd9.jpg","medium_Kei_Yazawa_enhanced_80a8977cd9","medium_KeiYazawa_enhanced.jpg",963.23,619,{"ext":816,"url":1835,"hash":1836,"mime":819,"name":1837,"path":16,"size":1838,"width":1839,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_Kei_Yazawa_enhanced_80a8977cd9.jpg","thumbnail_Kei_Yazawa_enhanced_80a8977cd9","thumbnail_KeiYazawa_enhanced.jpg",52.91,129,"Kei_Yazawa_enhanced_80a8977cd9",522.09,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/Kei_Yazawa_enhanced_80a8977cd9.jpg","2024-11-27T17:47:44.045Z",[],"-17","-77",{"id":420,"session":1848},{"id":451,"title":1849,"teaser":1850,"body":1851,"createdAt":1852,"updatedAt":1853,"publishedAt":1854,"url_path_id":1855,"contacts":1856,"url_path":1897},"Integration of thin-film ferroelectrics on non-conventional substrates","\u003Cp>Perovskite ferroelectric thin films have been extensively studied over the past several decades and have been successfully integrated into various devices, including inkjet printheads, inertial sensors, speakers, and microphones.\u003C/p>\u003Cp>The breakthrough in their development was achieved with films grown directly on platinized silicon (polycrystalline films) or oxide single-crystal substrates (epitaxial films), which can withstand the high annealing or deposition temperatures (typically above 650 °C) required for their formation.\u003C/p>","\u003Cp style=\"text-align:justify;\">However, there is a growing demand for integrating these films onto temperature-sensitive, non-conventional substrates, such as transparent glass, flexible polymers, and metallic foils. This trend is driven by emerging applications, including wearables, invisible electronics, and artificial skin.\u003C/p>\u003Cp style=\"text-align:justify;\">In this tutorial, I will discuss three key approaches for integrating oxide ferroelectrics onto temperature-sensitive substrates: 1) lowering the effective crystallization temperature; 2) light-based annealing; and 3) transfer processing, which is intriguing also from a fundamental perspective, as it enables the creation of artificial 2D heterostructures that lead to novel physical phenomena.\u003C/p>","2025-03-06T15:28:21.895Z","2025-03-06T15:33:39.021Z","2025-03-06T15:28:23.953Z","123",[1857],{"id":1552,"name":1858,"committee":16,"position":16,"affiliation":1859,"email":16,"biography":1860,"createdAt":1861,"updatedAt":1862,"url_path_id":1863,"contactPhoto":1864,"socialLinks":1895,"url_path":1896},"Sebastjan Glinsek","Luxembourg Institute of Science and Technology (LIST)","\u003Cp style=\"text-align:justify;\">Sebastjan Glinsek joined the Luxembourg Institute of Science and Technology (LIST) in 2017 and is currently a Senior Lead R&amp;T Scientist. He earned his PhD in Nanosciences and Nanotechnologies from the Jozef Stefan International Postgraduate School (Slovenia), followed by postdoctoral positions at Brown University (USA) and LETI (France). His research focuses on the chemical synthesis and characterization of electronic oxides, with an emphasis on developing innovative processing techniques that enable devices with enhanced or novel functionalities. He is particularly interested in translating fundamental scientific discoveries into real-world applications.\u003C/p>","2025-03-06T15:26:13.407Z","2025-03-07T16:56:32.374Z","122",{"id":1865,"name":1866,"alternativeText":16,"caption":16,"width":1867,"height":1868,"formats":1869,"hash":1891,"ext":816,"mime":819,"size":1892,"url":1893,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1894,"updatedAt":1894},172,"GLINSEK Sebastjan_2024_5R2A6124.jpg",1601,2400,{"large":1870,"small":1875,"medium":1880,"thumbnail":1885},{"ext":816,"url":1871,"hash":1872,"mime":819,"name":1873,"path":16,"size":1874,"width":1686,"height":779},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/large_GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06.jpg","large_GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06","large_GLINSEK Sebastjan_2024_5R2A6124.jpg",62.56,{"ext":816,"url":1876,"hash":1877,"mime":819,"name":1878,"path":16,"size":1879,"width":1692,"height":787},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/small_GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06.jpg","small_GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06","small_GLINSEK Sebastjan_2024_5R2A6124.jpg",15.44,{"ext":816,"url":1881,"hash":1882,"mime":819,"name":1883,"path":16,"size":1884,"width":787,"height":794},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/medium_GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06.jpg","medium_GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06","medium_GLINSEK Sebastjan_2024_5R2A6124.jpg",32.28,{"ext":816,"url":1886,"hash":1887,"mime":819,"name":1888,"path":16,"size":1889,"width":1890,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06.jpg","thumbnail_GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06","thumbnail_GLINSEK Sebastjan_2024_5R2A6124.jpg",2.94,104,"GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06",459.57,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/GLINSEK_Sebastjan_2024_5_R2_A6124_8ccc673b06.jpg","2025-03-07T16:56:29.495Z",[],"-80","-81",{"id":451,"session":1899},{"id":119,"title":1900,"teaser":1901,"body":1902,"createdAt":1903,"updatedAt":1904,"publishedAt":1905,"url_path_id":1906,"contacts":1907,"url_path":1944},"Neutron scattering for unique insight into ferroelectrics and multiferroics","\u003Cp style=\"text-align:justify;\">Neutron diffraction has become an essential technique for investigating the atomic and magnetic structure of ferroelectrics and multiferroics, offering distinct advantages over X-ray and electron-based methods. Since neutrons interact weakly with matter, they penetrate deeply into bulk materials, enabling non-destructive structural analysis as well as in-situ and in-operando studies. Additionally, their sensitivity to light elements such as oxygen can offer insight into lattice distortions and bonding environments. Crucially, neutrons directly interact with magnetic moments, making them well suited to studying magnetic order and magnetoelectric coupling.\u003C/p>","\u003Cp style=\"text-align:justify;\">In this tutorial, I will first introduce the fundamental principles of neutron scattering, including the formalism for neutron-matter interactions. I will then present several specific case studies to demonstrate how neutron diffraction has advanced our understanding of bulk ferroelectrics and thin film multiferroic systems. I will retain the focus on practical applications, for instance, demonstrating how neutron scattering techniques can provide insight into temperature- and field-dependent phase transitions, polarization mechanisms, and magnetoelectric coupling. Several specific experimental methods, such as powder and single-crystal neutron diffraction, inelastic neutron scattering, and polarized neutron reflectometry, will be introduced in the context of real-world materials research. By the end of the tutorial, participants will have a understanding of how neutron scattering can provide a unique understanding of ferroelectric and multiferroic materials, beyond x-ray or electron-based techniques.\u003C/p>","2025-03-13T18:04:14.166Z","2025-03-13T18:04:17.720Z","2025-03-13T18:04:17.715Z","126",[1908],{"id":1909,"name":1910,"committee":16,"position":16,"affiliation":1911,"email":16,"biography":1912,"createdAt":1913,"updatedAt":1914,"url_path_id":1915,"contactPhoto":1916,"socialLinks":1942,"url_path":1943},50,"Daniel Sando","University of Canterbury","\u003Cp style=\"text-align:justify;\">Daniel Sando earned his PhD from the Queensland University of Technology (Brisbane, Australia) on experimental laser physics in 2010. Following his PhD, he held postdoctoral positions at Unité Mixte de Physique CNRS/Thales (France) and the Center for Correlated Electron Systems (Seoul, South Korea) until 2015. He then joined UNSW Sydney as a research fellow. Since 2022, he has been a Senior Lecturer at the University of Canterbury, New Zealand. In 2023, Dr. Sando joined the MacDiarmid Institute for Advanced Materials and Nanotechnology as Associate Investigator, and since 2025 has been a Principal Investigator.\u003Cbr>Dr. Sando’s research is focused on perovskite oxide thin films as new materials systems for future low energy computation. Using pulsed laser deposition, his team fabricates thin films (10-200 nm thickness) of complex oxide materials including multiferroics, ferroelectrics, optically active materials, and magnetic and topological systems. Then using advanced techniques including scanning probe microscopy and x-ray / neutron diffraction, they determine how we these materials can be implemented in future low-energy computing and nanotechnology applications.\u003C/p>","2025-03-13T18:02:34.358Z","2025-03-13T18:06:00.190Z","125",{"id":1917,"name":1918,"alternativeText":16,"caption":16,"width":1919,"height":779,"formats":1920,"hash":1938,"ext":816,"mime":819,"size":1939,"url":1940,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1941,"updatedAt":1941},175,"Daniel_Sando_photo.jpg",900,{"small":1921,"medium":1927,"thumbnail":1933},{"ext":816,"url":1922,"hash":1923,"mime":819,"name":1924,"path":16,"size":1925,"width":1926,"height":787},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/small_Daniel_Sando_photo_c3cd513455.jpg","small_Daniel_Sando_photo_c3cd513455","small_Daniel_Sando_photo.jpg",21.59,450,{"ext":816,"url":1928,"hash":1929,"mime":819,"name":1930,"path":16,"size":1931,"width":1932,"height":794},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/medium_Daniel_Sando_photo_c3cd513455.jpg","medium_Daniel_Sando_photo_c3cd513455","medium_Daniel_Sando_photo.jpg",41.07,675,{"ext":816,"url":1934,"hash":1935,"mime":819,"name":1936,"path":16,"size":1937,"width":706,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_Daniel_Sando_photo_c3cd513455.jpg","thumbnail_Daniel_Sando_photo_c3cd513455","thumbnail_Daniel_Sando_photo.jpg",3.67,"Daniel_Sando_photo_c3cd513455",65.21,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/Daniel_Sando_photo_c3cd513455.jpg","2025-03-13T18:05:56.285Z",[],"-82","-83",{"id":119,"session":1946},{"id":606,"title":1947,"teaser":1948,"body":1949,"createdAt":1950,"updatedAt":1951,"publishedAt":1952,"url_path_id":1953,"contacts":1954,"url_path":1984},"Ceramic Processing – Synthesis of Metal Oxides","\u003Cp style=\"text-align:justify;\">Synthesis of metal oxides is typically the first step of any materials science research in a field or application involving oxides materials. However, the synthesis is rarely the prime focus in materials science, which usually describe properties and characterizations of said materials. Consequently, synthesis protocols are often given too little attention in the literature and hence poorly described. For scientists starting in the field, it becomes confusing to make the right choice of synthesis route and conditions to successfully prepare what will be the base of their research, which is a pure, single phase, complex oxide powder.&nbsp;\u003C/p>","\u003Cp>With this tutorial, we will provide basic knowledge on the underlying chemistry of oxide synthesis, and simple explanations on what motivates the need of various synthesis routes. Then, four main synthesis routes are described, namely the solid state reaction route, the Pechini route, the combustion route, and the precipitation route. For each routes, the approach is described, and the relevant parameters to be considered are developed. Finally, a step by step general protocol for each route is proposed, which can serve as a solid foundation for unexperienced researchers to become more confident when approaching metal oxide synthesis.\u003C/p>","2025-03-21T15:12:10.280Z","2025-03-21T15:15:18.792Z","2025-03-21T15:12:12.213Z","129",[1955],{"id":1476,"name":1956,"committee":16,"position":16,"affiliation":1957,"email":16,"biography":1958,"createdAt":1959,"updatedAt":1960,"url_path_id":1961,"contactPhoto":1962,"socialLinks":1982,"url_path":1983},"Clement Nicollet","CNRS - University of Nantes","\u003Cp style=\"text-align:justify;\">Dr Clement Nicollet is a tenured researcher of the French National Center for Scientific Research (CNRS) appointed at the Institut des Matériaux de Nantes Jean Rouxel (IMN) since January 2020. His research focuses on oxide materials with mixed electronic and ionic conductivities and on their use as electrodes for fuel cells and electrolyzers. He gained his extensive expertise on this field early on in his career by graduating a PhD from the University of Bordeaux (2016), where his research on oxygen electrodes prepared by infiltration has led to many well cited publications. After graduating his PhD, he spent three years in the US developing his understanding of gas-solid reactions as a postdoctoral associate at the Massachusetts Institute of Technology (MIT) under the guidance of Professor Tuller. Benefiting from the expertise of Professor Tuller in defect chemistry and material science for energy applications, the PI has developed new strategies to both accurately measure surface exchange reaction rates and improve the catalysts activity toward those reactions. During this experience, Dr. Nicollet has developed a strong expertise in the synthesis of a wide range of oxides powders, experimenting with various synthesis routes to meet different requirements. In 2023 he summarized this knowledge in a feature tutorial article published in the Journal of Electroceramics, which aims at helping other researchers to choose the most suitable synthesis protocol for their materials and needs.\u003C/p>","2025-03-21T15:10:40.131Z","2025-05-07T04:42:16.226Z","128",{"id":1534,"name":1963,"alternativeText":16,"caption":16,"width":1964,"height":1965,"formats":1966,"hash":1979,"ext":19,"mime":20,"size":833,"url":1980,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1981,"updatedAt":1981},"Screenshot 2025-04-29 231408.png",509,538,{"small":1967,"thumbnail":1973},{"ext":19,"url":1968,"hash":1969,"mime":20,"name":1970,"path":16,"size":1971,"width":1972,"height":787},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/small_Screenshot_2025_04_29_231408_a2e4164ef3.png","small_Screenshot_2025_04_29_231408_a2e4164ef3","small_Screenshot 2025-04-29 231408.png",221.33,473,{"ext":19,"url":1974,"hash":1975,"mime":20,"name":1976,"path":16,"size":1977,"width":1978,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_Screenshot_2025_04_29_231408_a2e4164ef3.png","thumbnail_Screenshot_2025_04_29_231408_a2e4164ef3","thumbnail_Screenshot 2025-04-29 231408.png",25.47,148,"Screenshot_2025_04_29_231408_a2e4164ef3","https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/Screenshot_2025_04_29_231408_a2e4164ef3.png","2025-04-30T04:14:07.891Z",[],"-85","-86",{"id":606,"session":1986},{"id":178,"title":1987,"teaser":1988,"body":1989,"createdAt":1990,"updatedAt":1990,"publishedAt":16,"url_path_id":1991,"contacts":1992,"url_path":2032},"Polar topological defects and solitons","\u003Cp>In recent years, ferroelectric (polar) topological structures have become a rapidly growing area of research. A steady stream of experimental and theoretical studies reporting novel swirling patterns of polarization continues to expand the field, raising new questions about the underlying physical phenomena and functional properties that remain to be fully understood.\u003C/p>","\u003Cp>In this tutorial, I will provide an introduction into the physics of ferroelectric topological defects and solitons. Starting from the fundamentals of homotopy theory required to navigate the rich landscape of ferroelectric topological defects and solitons, I will move on to the discussion of the physical mechanisms that drive the formation of polar topologies and the emergent functional phenomena associated with these structures. Particular attention will be devoted to placing polar topologies within the broader context of modulated phases and to bridging polar topologies with their counterparts in magnetic materials, liquid crystals and other physical systems. Finally, I will discuss the dynamical excitations associated with various topological states, along with the emergent functional phenomena that suggest new pathways for functionalizing polar topological structures.\u003C/p>","2025-05-07T11:51:18.837Z","145",[1993],{"id":99,"name":1994,"committee":16,"position":16,"affiliation":1995,"email":16,"biography":1996,"createdAt":1997,"updatedAt":1998,"url_path_id":1999,"contactPhoto":2000,"socialLinks":2030,"url_path":2031},"Sergei Prokhorenko","University of Arkansas","\u003Cp>Dr. Sergei Prokhorenko has obtained a master's degree in theoretical physics from Saint-Petersbourg Academic University in 2011 and a Ph.D. degree in materials science in 2014 from Ecole Centrale Paris University. He has then worked as a postdoctoral researcher at the University of Arkansas and after being awarded the Marie Curie BeIPD COFUND fellowship in 2016 has worked on the implementation and development of density functional theory methods at the University of Liege. Currently, Dr. Prokhorenko holds the Research Associate Professor position at the Physics Department, University of Arkansas, Fayetteville.\u003C/p>\u003Cp>Sergei's research interests span multiple topics including the physics of ferroic materials, advanced ab initio methods as well as applications of topology and differential geometry in condensed matter physics.\u003C/p>","2025-05-07T04:49:01.564Z","2025-05-07T11:50:05.440Z","144",{"id":2001,"name":2002,"alternativeText":16,"caption":16,"width":2003,"height":2004,"formats":2005,"hash":2026,"ext":816,"mime":819,"size":2027,"url":2028,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":2029,"updatedAt":2029},203,"photo.jpg",2208,2944,{"large":2006,"small":2011,"medium":2016,"thumbnail":2021},{"ext":816,"url":2007,"hash":2008,"mime":819,"name":2009,"path":16,"size":2010,"width":794,"height":779},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/large_photo_9b987f07b5.jpg","large_photo_9b987f07b5","large_photo.jpg",98.03,{"ext":816,"url":2012,"hash":2013,"mime":819,"name":2014,"path":16,"size":2015,"width":1256,"height":787},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/small_photo_9b987f07b5.jpg","small_photo_9b987f07b5","small_photo.jpg",24.79,{"ext":816,"url":2017,"hash":2018,"mime":819,"name":2019,"path":16,"size":2020,"width":1366,"height":794},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/medium_photo_9b987f07b5.jpg","medium_photo_9b987f07b5","medium_photo.jpg",54.74,{"ext":816,"url":2022,"hash":2023,"mime":819,"name":2024,"path":16,"size":2025,"width":146,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_photo_9b987f07b5.jpg","thumbnail_photo_9b987f07b5","thumbnail_photo.jpg",3.71,"photo_9b987f07b5",708.07,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/photo_9b987f07b5.jpg","2025-05-07T11:49:54.387Z",[],"-94","-95",{"id":178,"session":2034},{"id":192,"title":2035,"teaser":2036,"body":60,"createdAt":2037,"updatedAt":2038,"publishedAt":2039,"url_path_id":2040,"contacts":2041,"url_path":2067},"Understanding the Role of Mechanics and Electromechanics of Atomic Force Microscopy Measurements of Ferroelectric Properties","\u003Cp style=\"text-align:justify;\">The atomic force microscope has emerged as a leading characterization platform for imaging and assessing the functional properties of ferroelectric materials at the nanoscale. Its usefulness derives from the combined ability to apply bias locally (10’s nm) via a conductive scanning probe and sense displacements of the surface (10’s of pm) to yield maps of ferroelectric domains and insights into the local switching behavior of ferroelectrics. However, one must exercise care when setting up an experiment and interpreting results since a range of phenomena, including electrostatic interactions between the scanning probe and the surface, can give responses that can appear as piezoelectric/ferroelectric behaviors. Properly navigating the landscape of nanoscale electromechanical phenomena demands cutting-edge expertise – both in the experimental part and high-level data analytics. This tutorial will start with an overview of how advanced Piezoresponse Force Microscopy (PFM) and related spectroscopic approaches developed over the last two decades have impacted the study of nanoferroics. This perspective will set the stage for then focusing on building a deeper understanding of the mechanics and electromechanics at play when DC and AC bias is applied to a scanning probe positioned at or near the sample surface and discussing strategies for mitigating spurious effects. The intent of this tutorial is to provide guidance for performing PFM and to raise awareness about what to look for when assessing the validity of results either while performing measurements or when examining the open literature.&nbsp;&nbsp;\u003C/p>","2025-06-10T14:59:09.459Z","2025-06-10T15:00:02.256Z","2025-06-10T14:59:11.492Z","151",[2042],{"id":1560,"name":2043,"committee":16,"position":16,"affiliation":2044,"email":16,"biography":2045,"createdAt":2046,"updatedAt":2047,"url_path_id":2048,"contactPhoto":2049,"socialLinks":2065,"url_path":2066},"Stephen Jesse","Oak Ridge National Laboratory","\u003Cp style=\"text-align:justify;\">Stephen Jesse is a distinguished scientist at Oak Ridge National Laboratory and Section Head for the Nanomaterials Characterization Section at the Center for Nanophase Materials Science. His research involves directing, studying, and utilizing nano and atomic scale transformations to enhance understanding of material behavior and to create new materials and devices based on emerging functionalities. Central to this work is developing novel scanning probe and scanning electron microscopy techniques to control and modify materials at the nano and atomic scales including studying the nucleation and growth of domains in ferroelectric materials. This work is combined with developing data analytics of high-dimensional, multi-spectral measurements for functional imaging.\u003C/p>","2025-06-10T14:59:47.879Z","2025-06-18T05:49:24.376Z","152",{"id":2050,"name":2051,"alternativeText":16,"caption":16,"width":2052,"height":2053,"formats":2054,"hash":2061,"ext":816,"mime":819,"size":2062,"url":2063,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":2064,"updatedAt":2064},216,"Stephen Jesse.jpg",449,486,{"thumbnail":2055},{"ext":816,"url":2056,"hash":2057,"mime":819,"name":2058,"path":16,"size":2059,"width":2060,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_Stephen_Jesse_a846227072.jpg","thumbnail_Stephen_Jesse_a846227072","thumbnail_Stephen Jesse.jpg",4.2,144,"Stephen_Jesse_a846227072",26.56,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/Stephen_Jesse_a846227072.jpg","2025-06-18T05:49:22.072Z",[],"-100","-99",{"id":192,"session":2069},{"id":198,"title":2070,"teaser":2071,"body":2072,"createdAt":2073,"updatedAt":2074,"publishedAt":16,"url_path_id":2075,"contacts":2076,"url_path":2114},"Ionic plastic crystal ferroelectrics","\u003Cp>While molecular ferroelectrics are embedded in the history of ferroelectricity, with its discovery in Rochelle Salt (sodium potassium tartrate) crystals in 1920, they have not seen anywhere near the development of metal oxide ferroelectrics. In the last decade and a half however, significant discoveries and developments have occur in a new class of molecular materials known as ionic plastic crystals, and there is growing interest in this new class of ferroelectric to see if they can bring about new applications and niece functionalities.\u003C/p>","\u003Cp>The tutorial will introduce plastic crystals as a material class and explain their history and defining characteristic, which is a mesophase occurring before the melting point in which molecules exhibit translational symmetry but orientational disorder. From here we will discuss the basic principles of piezoelectricity and ferroelectricity and how these properties manifest in ionic plastic crystals. Finally, the tutorial will conclude by using this fundamental knowledge as the basis for identifying some of the challenges and intriguing phenomena related to ionic plastic crystal ferroelectrics, most notably the role of molecular rotation in their functional properties. The tutorial should serve as an introduction to this class of molecular ferroelectrics and a recap of some fundamental ferroelectric related properties sand phenomena.\u003C/p>","2025-06-29T18:54:12.089Z","2025-06-29T18:55:42.901Z","157",[2077],{"id":198,"name":2078,"committee":16,"position":16,"affiliation":2079,"email":16,"biography":2080,"createdAt":2081,"updatedAt":2082,"url_path_id":2083,"contactPhoto":2084,"socialLinks":2112,"url_path":2113},"Julian Walker","Norwegian University of Science and Technology","\u003Cp>Julian Walker is an Associate Professor at the Department of Materials Science and Engineering in the Functional Materials and Materials Chemistry research group (FACET) at The Norwegian University of Science and Technology (NTNU).\u003C/p>\u003Cp>Julian is a materials scientist with expertise in the synthesis and characterization of inorganic and hybrid ionic molecular functional materials. Julian obtained his PhD from the University of New South Wales, Australia in 2014, in the group of Prof. Nagarajan Valanoor. In 2014-2016 he was a postdoctoral researcher at the Electronic Ceramics Department, Jozef Stefan Institute, Slovenia with Prof. Barbara Malic. In 2016-2018 Julian joined the Materials Research Institute, Pennsylvania State University where he spent two and a half years in the group of Prof. Susan Trolier-McKinstry working with piezoelectric thin film application and innovation, with projects like the development of piezoelectric adjustable optics as a candidate technology for NASA's proposed Lynx telescope. In 2018 Julian joined NTNU as a postdoctoral research working with hybrid materials and was appointed Associate Professor in 2021.\u003C/p>","2024-08-19T18:52:00.499Z","2025-07-09T15:54:48.352Z","41",{"id":695,"name":2085,"alternativeText":16,"caption":16,"width":2086,"height":2086,"formats":2087,"hash":2108,"ext":816,"mime":819,"size":2109,"url":2110,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":2111,"updatedAt":2111},"JulianWalker.jpg",1600,{"large":2088,"small":2093,"medium":2098,"thumbnail":2103},{"ext":816,"url":2089,"hash":2090,"mime":819,"name":2091,"path":16,"size":2092,"width":779,"height":779},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/large_Julian_Walker_682b8a440f.jpg","large_Julian_Walker_682b8a440f","large_JulianWalker.jpg",84.53,{"ext":816,"url":2094,"hash":2095,"mime":819,"name":2096,"path":16,"size":2097,"width":787,"height":787},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/small_Julian_Walker_682b8a440f.jpg","small_Julian_Walker_682b8a440f","small_JulianWalker.jpg",23.69,{"ext":816,"url":2099,"hash":2100,"mime":819,"name":2101,"path":16,"size":2102,"width":794,"height":794},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/medium_Julian_Walker_682b8a440f.jpg","medium_Julian_Walker_682b8a440f","medium_JulianWalker.jpg",48.69,{"ext":816,"url":2104,"hash":2105,"mime":819,"name":2106,"path":16,"size":2107,"width":263,"height":263},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/thumbnail_Julian_Walker_682b8a440f.jpg","thumbnail_Julian_Walker_682b8a440f","thumbnail_JulianWalker.jpg",3.9,"Julian_Walker_682b8a440f",204.11,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/isaf25/Julian_Walker_682b8a440f.jpg","2024-11-12T23:26:00.113Z",[],"-10","-101",{"data":2116,"meta":2117},{"id":212,"heading":213,"createdAt":218,"updatedAt":219,"publishedAt":220,"url_path_id":221,"url_path":224,"contentType":97},{},1778852801447]