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DataPort","2025-05-19T15:50:25.567Z","2025-05-19T15:51:19.719Z","2025-05-19T15:50:27.934Z","203",{"id":284,"name":1263,"alternativeText":16,"caption":16,"width":1264,"height":987,"formats":1265,"hash":1287,"ext":19,"mime":20,"size":1179,"url":1288,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1289,"updatedAt":1289},"LargeDataPortLogo.png",1002,{"large":1266,"small":1271,"medium":1277,"thumbnail":1282},{"ext":19,"url":1267,"hash":1268,"mime":20,"name":1269,"path":16,"size":1270,"width":825,"height":987},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/large_Large_Data_Port_Logo_e13a318ba1.png","large_Large_Data_Port_Logo_e13a318ba1","large_LargeDataPortLogo.png",33.51,{"ext":19,"url":1272,"hash":1273,"mime":20,"name":1274,"path":16,"size":1275,"width":66,"height":1276},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/small_Large_Data_Port_Logo_e13a318ba1.png","small_Large_Data_Port_Logo_e13a318ba1","small_LargeDataPortLogo.png",16.91,72,{"ext":19,"url":1278,"hash":1279,"mime":20,"name":1280,"path":16,"size":1281,"width":838,"height":1238},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/medium_Large_Data_Port_Logo_e13a318ba1.png","medium_Large_Data_Port_Logo_e13a318ba1","medium_LargeDataPortLogo.png",26.84,{"ext":19,"url":1283,"hash":1284,"mime":20,"name":1285,"path":16,"size":1286,"width":73,"height":691},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/thumbnail_Large_Data_Port_Logo_e13a318ba1.png","thumbnail_Large_Data_Port_Logo_e13a318ba1","thumbnail_LargeDataPortLogo.png",8.03,"Large_Data_Port_Logo_e13a318ba1","https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/Large_Data_Port_Logo_e13a318ba1.png","2025-05-19T15:49:59.536Z",{"id":436,"variation":39,"button":1291},[1292],{"id":568,"label":82,"size":43,"color":44,"style":16,"icon":45,"iconPosition":46,"url":1293,"newWindow":8,"downloadable":16,"shape":16},"https://ieee-dataport.org/","-167",{"pagination":1296},{"page":5,"pageSize":177,"pageCount":5,"total":96},{"id":414,"heading":415,"pageHeader":1298,"sections":1300},{"id":414,"description":1299,"showPageHeader":8,"backgroundColor":98,"image":16},"Sunday, June 22 | 13:30-16:55",[1301,1318,1413],{"id":409,"__component":1302,"componentVariation":1303,"styles":16,"header":16,"columns":1304},"content.multi-column","Multi Column Base",[1305,1308],{"id":1306,"title":16,"body":1307,"containerWidth":16,"buttonGroup":16,"media":16},78,"\u003Cfigure class=\"image\">\u003Cimg src=\"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/Screenshot_2025_05_21_181337_79e6518283.png\">\u003C/figure>",{"id":1309,"title":16,"body":1310,"containerWidth":16,"buttonGroup":1311,"media":16},79,"\u003Cp style=\"text-align:justify;\">Laser-Induced Graphene (LIG) technology, initially developed for the fabrication of miniaturized sensors, has recently gained traction in broader applications, expanding beyond small-scale devices to include larger structures such as antennas. This evolution paves the way for the development of complete functional systems for the Internet of Things (IoT), where the intrinsic properties of LIG enable a more sustainable and eco-friendly approach to wireless connectivity.\u003C/p>\u003Cp style=\"text-align:justify;\">Given the diverse and rapidly evolving nature of LIG research, this workshop aims to bring together experts from various domains—ranging from materials science to RF engineering and biomedical sensing—to foster interdisciplinary discussions, push the boundaries of innovation, and explore potential collaborations. By consolidating knowledge and expertise from different fields, we hope to accelerate the translation of LIG-based technologies into scalable, real-world applications.\u003C/p>",{"id":455,"variation":39,"button":1312},[1313],{"id":733,"label":1314,"size":43,"color":1315,"style":16,"icon":1316,"iconPosition":46,"url":1317,"newWindow":8,"downloadable":8,"shape":16},"Download Flyer","btn-secondary","ArrowDownTrayIcon","https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/Agenda_1_398f32a195.pdf",{"id":196,"__component":1319,"componentVariation":1320,"styles":1321,"header":1323,"contactGroup":1326},"content.contacts","Contacts Flex Card Image Cover",{"id":291,"edgeTop":97,"edgeBottom":97,"background":1322,"containerWidth":16},"base-50",{"id":1324,"heading":141,"prose":50,"lead":16,"eyebrow":16,"badge":16,"componentVariation":1325,"containerWidth":16,"image":16},60,"Heading Center",[1327],{"id":685,"groupTitle":16,"contacts":1328},[1329,1368],{"id":1330,"contact":1331},82,{"id":1332,"name":1333,"committee":16,"position":16,"affiliation":1334,"email":16,"biography":1335,"createdAt":1336,"updatedAt":1337,"url_path_id":1338,"contactPhoto":1339,"socialLinks":1366,"url_path":1367},85,"Gaetano Marrocco","University of Roma Tor Vergata, Italy","\u003Cp style=\"text-align:justify;\">Gaetano Marrocco is Full Professor of Electromagnetics Engineering at the University of Roma Tor Vergata. Since 2002, he has been a pioneer in Radiofrequency Identification and Sensing. His current research focuses on wireless-activated sensors, Wearable and Epidermal Electronics, antennas for sensorized skins, smart prostheses, finger augmentation devices for Tactile Internet, physical security, graphene and emerging materials. He currently serves as track Editor of the IEEE Journal of Flexible Electronics and chair of the Italian Section of URSI Commission D Electronics and Photonics. He was the general co-chair of the 2024 IEEE FLEPS in Tampere. He is co-founder and president of the University spin-off RADIO6ENSE involved in short-range electromagnetic sensing for Industrial Internet of Things, Smart Manufacturing, Automotive, and Digital Health. He is listed in the PLOS 2023 ranking of the Top 2 % Scientists Worldwide.\u003C/p>","2025-03-24T20:15:08.615Z","2025-03-25T16:58:57.133Z","125",{"id":1340,"name":1341,"alternativeText":16,"caption":16,"width":1342,"height":825,"formats":1343,"hash":1362,"ext":19,"mime":20,"size":1363,"url":1364,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1365,"updatedAt":1365},125,"large_Gaetano_MARROCCO_2023_41b0886aea.png",896,{"small":1344,"medium":1350,"thumbnail":1356},{"ext":19,"url":1345,"hash":1346,"mime":20,"name":1347,"path":16,"size":1348,"width":1349,"height":66},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/small_large_Gaetano_MARROCCO_2023_41b0886aea_dcb448b340.png","small_large_Gaetano_MARROCCO_2023_41b0886aea_dcb448b340","small_large_Gaetano_MARROCCO_2023_41b0886aea.png",331.74,448,{"ext":19,"url":1351,"hash":1352,"mime":20,"name":1353,"path":16,"size":1354,"width":1355,"height":838},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/medium_large_Gaetano_MARROCCO_2023_41b0886aea_dcb448b340.png","medium_large_Gaetano_MARROCCO_2023_41b0886aea_dcb448b340","medium_large_Gaetano_MARROCCO_2023_41b0886aea.png",728.92,672,{"ext":19,"url":1357,"hash":1358,"mime":20,"name":1359,"path":16,"size":1360,"width":1361,"height":1212},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/thumbnail_large_Gaetano_MARROCCO_2023_41b0886aea_dcb448b340.png","thumbnail_large_Gaetano_MARROCCO_2023_41b0886aea_dcb448b340","thumbnail_large_Gaetano_MARROCCO_2023_41b0886aea.png",36.85,140,"large_Gaetano_MARROCCO_2023_41b0886aea_dcb448b340",306.46,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/large_Gaetano_MARROCCO_2023_41b0886aea_dcb448b340.png","2025-03-24T20:15:05.295Z",[],"-103",{"id":1369,"contact":1370},83,{"id":845,"name":1371,"committee":16,"position":16,"affiliation":1372,"email":16,"biography":1373,"createdAt":1374,"updatedAt":1375,"url_path_id":1376,"contactPhoto":1377,"socialLinks":1411,"url_path":1412},"Alessio Mostaccio","University of Rome Tor Vergata, Rome, Italy","\u003Cp style=\"text-align:justify;\">Alessio Mostaccio received the MSc in MedicalEngineering (Hons.) in 2021 from the University of Rome Tor Vergata, Italy, where he is concluding his PhD. He is also a part-time employee in the RADIO6ENSE Srl company. His research is focused on laser-induced graphene (LIG) for designing and manufacturing antennas starting from polymeric precursors. He is also focused on researching and developing biocompatible RFID-based methods to monitor food quality. He has been a co-author of the paper ”Cyber-tooth: Antennified dental Implant for RFID Wireless temperature Monitoring” winner of the Best Student Paper Award at the 2021 IEEE International Conference on RFID Technology and Applications (RFID-TA). He secured the 2nd place at the Student Best Paper Award competition at the 2023 IEEE International Conference on Flexible, Printable Sensors and Systems (IEEE FLEPS).\u003C/p>","2025-03-25T17:01:32.120Z","2025-04-28T22:20:09.712Z","135",{"id":1378,"name":1379,"alternativeText":16,"caption":16,"width":1380,"height":1381,"formats":1382,"hash":1407,"ext":19,"mime":20,"size":1408,"url":1409,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1410,"updatedAt":1410},130,"Alessio MOSTACCIO.png",1032,1092,{"large":1383,"small":1389,"medium":1395,"thumbnail":1401},{"ext":19,"url":1384,"hash":1385,"mime":20,"name":1386,"path":16,"size":1387,"width":1388,"height":825},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/large_Alessio_MOSTACCIO_6ba9faa142.png","large_Alessio_MOSTACCIO_6ba9faa142","large_Alessio MOSTACCIO.png",1635.83,945,{"ext":19,"url":1390,"hash":1391,"mime":20,"name":1392,"path":16,"size":1393,"width":1394,"height":66},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/small_Alessio_MOSTACCIO_6ba9faa142.png","small_Alessio_MOSTACCIO_6ba9faa142","small_Alessio MOSTACCIO.png",472.04,473,{"ext":19,"url":1396,"hash":1397,"mime":20,"name":1398,"path":16,"size":1399,"width":1400,"height":838},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/medium_Alessio_MOSTACCIO_6ba9faa142.png","medium_Alessio_MOSTACCIO_6ba9faa142","medium_Alessio MOSTACCIO.png",995.67,709,{"ext":19,"url":1402,"hash":1403,"mime":20,"name":1404,"path":16,"size":1405,"width":1406,"height":1212},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/thumbnail_Alessio_MOSTACCIO_6ba9faa142.png","thumbnail_Alessio_MOSTACCIO_6ba9faa142","thumbnail_Alessio MOSTACCIO.png",52.92,147,"Alessio_MOSTACCIO_6ba9faa142",489.96,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/Alessio_MOSTACCIO_6ba9faa142.png","2025-03-25T17:01:21.210Z",[],"-111",{"id":28,"__component":1414,"componentVariation":1415,"contactsVariation":1416,"styles":16,"header":1417,"sessionsGroup":1419},"content.sessions","Sessions Base","Card Contact Full",{"id":733,"heading":1418,"prose":50,"lead":16,"eyebrow":16,"badge":16,"componentVariation":1325,"containerWidth":16,"image":16},"Presentations",[1420],{"id":757,"groupTitle":16,"sessions":1421},[1422,1456,1490,1544,1582,1608,1641],{"id":455,"session":1423},{"id":436,"title":1424,"teaser":1425,"body":1426,"createdAt":1427,"updatedAt":1428,"publishedAt":1429,"url_path_id":1430,"contacts":1431,"url_path":1455},"Digital fabrication of sustainable electronics and bioelectronics from nature-derived green laser-induced graphene materials","\u003Cp style=\"text-align:justify;\">The photothermal synthesis and patterning of laser-induced graphene from aromatic polymers, through digital fabrication frameworks enabled by Direct Laser Writing, established the grounds for high prototyping and efficient fabrication of carbon-based circuits and electrodes. However, novel nature-derived lignocellulosic and polysaccharide-based materials are increasingly performing as highly effective LIG precursors, through improvements in their formulation and rational control of laser irradiation protocols, boosting graphitization potential and yielding highly conductive graphitic structures of interest. In this presentation, we showcase recent advances on the synthesis of laser-induced graphene from such precursors, including paper substrates, cork and custom-made polysaccharide films, focusing on precursor preparation, compatible laser processing parameters and irradiation outcomes.&nbsp;\u003C/p>","\u003Cp style=\"text-align:justify;\">Additionally, we discuss different uses cases of the resulting graphitized materials, for energy-storage applications, electrochemical biosensors and wearable bioelectrodes, demonstrating the multi-functionality and potential of green LIG in the development of eco-friendly components and systems for integrated IoT devices for sensing and biosensing.\u003C/p>","2025-04-28T22:33:11.410Z","2025-04-28T22:33:12.998Z","2025-04-28T22:33:12.986Z","188",[1432],{"id":1433,"name":1434,"committee":16,"position":16,"affiliation":1435,"email":16,"biography":1436,"createdAt":1437,"updatedAt":1437,"url_path_id":1438,"contactPhoto":1439,"socialLinks":1453,"url_path":1454},103,"Tomás  Pinheiro","Nova School of Science and Technology, Portugal","\u003Cp style=\"text-align:justify;\">Tomás Pinheiro received his integrated master’s degree in Biomedical Engineering from Nova School of Science and Technology in 2018, with his master thesis developed at i3N|CENIMAT in the area of paper microfluidics and gold nanoparticles applied for plasmonic, colorimetric transduction targeting the development of new diagnostic tools for relevant health markers. Currently, he is a PhD student in the Nanotechnology and Nanoscience program, aiming at the study and application of Laser-induced Graphene for the development of electrochemical biosensors and their translation towards wearable biosensing systems for sweat biochemical monitorization. The main topics of his research consist of the study of laser-induced graphene in sustainable substrates, such as paper, as its application for the development of versatile electrochemical biosensors able to be applied into biosensing systems for diabetes management.\u003C/p>","2025-04-28T22:23:35.305Z","181",{"id":1440,"name":1441,"alternativeText":16,"caption":16,"width":1442,"height":1442,"formats":1443,"hash":1449,"ext":819,"mime":822,"size":1450,"url":1451,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1452,"updatedAt":1452},160,"Tomas Pinheiro.jpg",453,{"thumbnail":1444},{"ext":819,"url":1445,"hash":1446,"mime":822,"name":1447,"path":16,"size":1448,"width":1212,"height":1212},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/thumbnail_Tomas_Pinheiro_a624a41cb8.jpg","thumbnail_Tomas_Pinheiro_a624a41cb8","thumbnail_Tomas Pinheiro.jpg",5.14,"Tomas_Pinheiro_a624a41cb8",27.06,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/Tomas_Pinheiro_a624a41cb8.jpg","2025-04-28T22:22:57.670Z",[],"-147","-154",{"id":322,"session":1457},{"id":455,"title":1458,"teaser":1459,"body":1460,"createdAt":1461,"updatedAt":1462,"publishedAt":1463,"url_path_id":1464,"contacts":1465,"url_path":1489},"Laser Induced Graphene for Soft Actuators and Sensors","\u003Cp style=\"text-align:justify;\">Laser Induced Graphene (LIG) is a three-dimensional porous conductive carbon material created through the laser-induced pyrolysis of polymer precursors. Recently, it has been utilized in soft and wearable electronics, as well as energy storage devices, among other applications.1–3 LIG tracks are produced in a single synthesis/patterning step using laser scribing with an IR or UV laser on polymer precursors. Additionally, biologically-derived precursors are being explored and utilized.4,5 LIG technology provides a maskless and chemical-free alternative to conventional printing methods, opening up unique possibilities for embedding circuits on a wide range of surfaces. In our LAMPSE group, we investigate LIG for developing soft sensors and actuators, and their use in various Robotics and Bioengineering applications. Stretchable conductive composites are produced by incorporating LIG into elastomeric matrices.&nbsp;\u003C/p>","\u003Cp style=\"text-align:justify;\">The distinctive piezoresistive properties leads to the development of strain, bending, pressure, and temperature sensors for a range of applications: sensorization of soft pneumatic grippers for proprioception, thin wearable sensors that conform to human skin for personal monitoring, wearable haptic devices. Recently, LIG/elastomer composites have been combined with Au-based nanostructured neuromorphic devices. Conversely, by integrating LIG/elastomer stretchable conductors with stimuli-responsive polymers, new strategies for soft actuation can be developed. A smart humidity-responsive hydrogel (poly-(N-vinylcaprolactam), pNVCL) enables the creation of a multi-responsive soft bending actuator that can self-sense. Novel directions are explored by investigating LIG obtained from bio-sourced materials as they can enable sustainable approaches to soft robotics and electronics. Our recent discovery of an entirely new type of LIG precursors -some selected dyes and inks/paints- enables the scribing of LIG sensors on nearly any surface or object. I will present some proof of concept of soft sensors realized with a “Paint &amp; Scribe” approach, greatly expanding the reach of this research.\u003C/p>","2025-04-28T22:34:09.375Z","2025-04-28T22:34:11.728Z","2025-04-28T22:34:11.723Z","189",[1466],{"id":1467,"name":1468,"committee":16,"position":16,"affiliation":1469,"email":16,"biography":1470,"createdAt":1471,"updatedAt":1471,"url_path_id":1472,"contactPhoto":1473,"socialLinks":1487,"url_path":1488},104,"Francesco Greco","Scuola Superiore Sant’Anna, Pisa, Italy","\u003Cp style=\"text-align:justify;\">Francesco Greco is an Associate Professor at the Biorobotics Institute of Scuola Superiore Sant’Anna (SSSA), Pisa since Sep 2021 and Head of the Laboratory of Applied Materials for Printed and Soft Electronics.\u003Cbr>Formerly, he has been Assistant Professor at &nbsp;Institute of Solid State Physics – TUGraz (Austria), 2017-2021, Associate Professor at School of Advanced Science and Engineering, Waseda University, Tokyo (Japan), Jan 2016 - Sep 2017, and then Invited Lecturer in 2018 and 2020, appointed by the Top Global University Program, Unit for Energy and Nanomaterials, JAPAN. He was a Researcher (Team Leader) at Center for MicroBiorobotics of Istituto Italiano di Tecnologia (CMBR IIT), 2013 – 2017. He was a postdoc at CRIM Lab (Center of Research in MicroEngineering) of Scuola Superiore Sant’Anna, Pisa (Italy) in 2009 and then at CMBR-IIT 2009-2013. In 2007 he was a guest researcher at SOPRA S.A. (Paris, France). He received a MSc in Materials Science (with honours) in 2004 and Ph.D. in Chemical Sciences in 2009 from the University of Pisa, Italy.\u003C/p>\u003Cp style=\"text-align:justify;\">His research focuses on functional polymer and composite materials with applications in organic bioelectronics, biomedicine, soft- and bio-robotics, sensors, within 2 main themes: 1) Tattoo Electronics and 2) Laser Induced Graphene . &nbsp;He has relevant experience as PI in several European, National, Regional and Industry-funded projects and as academic consultant for advanced polymer materials and electromedical devices. He is the (co)author of ~ 80 peer-reviewed full papers, 4 book chapters and coinventor of 8 international patents/patents applications.\u003Cbr>&nbsp;\u003C/p>","2025-04-28T22:24:51.411Z","182",{"id":1474,"name":1475,"alternativeText":16,"caption":16,"width":1476,"height":1476,"formats":1477,"hash":1483,"ext":819,"mime":822,"size":1484,"url":1485,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1486,"updatedAt":1486},161,"Francesco Greco.jpg",400,{"thumbnail":1478},{"ext":819,"url":1479,"hash":1480,"mime":822,"name":1481,"path":16,"size":1482,"width":1212,"height":1212},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/thumbnail_Francesco_Greco_dc7729c915.jpg","thumbnail_Francesco_Greco_dc7729c915","thumbnail_Francesco Greco.jpg",4.16,"Francesco_Greco_dc7729c915",18.9,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/Francesco_Greco_dc7729c915.jpg","2025-04-28T22:24:23.864Z",[],"-148","-155",{"id":568,"session":1491},{"id":322,"title":1492,"teaser":1493,"body":1494,"createdAt":1495,"updatedAt":1496,"publishedAt":1497,"url_path_id":1498,"contacts":1499,"url_path":1543},"Perspectives on Laser Induced Graphene and scalability of energy research infrastructures","\u003Cp style=\"text-align:justify;\">Laser-induced graphene (LIG) can be considered as disruptive technology for creating devices that received much attention in the field of flexible electronics. Among all, energy storage, catalysis, sensing, and separation are the main applications that have been investigated in recent years with large improvements in the respective device performance. Miniaturized supercapacitor - usually called micro-supercapacitor (µSC) - is the most investigated field in which LIG can strongly provide outstanding results concerning the state-of-the-art simplification of the fabrication procedure of the device. However, many open points still limit the possible full exploitation of this technology in the energy storage sector.\u003C/p>","\u003Cp style=\"text-align:justify;\">Turin’s research area, Politecnico di Torino and the Italian Institute of Technology – Center for Sustainable and Future Technologies, has invested in research and technological infrastructures that are promising with respect to the fast development of the technologies for the energy transition, covering the low TRL to the pre-industrial level. The infrastructural strengthening has brought cutting edge facilities concerning materials processing and characterization to kick the research activities.\u003C/p>\u003Cp style=\"text-align:justify;\">The talk will cover an overview of LIG research products, and the perspectives on the related scale-up processing, highlighting the pivotal role that the advanced research infrastructures play in accelerating the energy transition.\u003Cbr>&nbsp;\u003C/p>","2025-04-28T22:34:53.491Z","2025-04-28T22:34:55.210Z","2025-04-28T22:34:55.205Z","190",[1500],{"id":1501,"name":1502,"committee":16,"position":16,"affiliation":1503,"email":16,"biography":1504,"createdAt":1505,"updatedAt":1505,"url_path_id":1506,"contactPhoto":1507,"socialLinks":1541,"url_path":1542},106,"Pietro Zaccagnini","Università Politecnico di Torino, Turin, Italy","\u003Cp style=\"text-align:justify;\">Pietro Zaccagnini is a Researcher of Materials Science at the Department of Applied Science and Technology (DISAT) of Politecnico di Torino, since 2023, specialized in Supercapacitors and Electrochemical Systems. He retains affiliation at the Italian Institute of Technology - Centre for Sustainable and Future Technologies in Turin.\u003Cbr>He has received his bachelor degree in Electronics engineering at Roma Tre University in Rome, Italy, in 2015. He has moved to Politecnico di Torino, Turin, Italy, and received his master of science in Nanotechnologies for ICTs in 2017 and got a PhD in Materials Science on the topic \"Graphene Based Supercapacitors for Harsh Environment Applications\" in 2021. During this period, he has deepened his studies in electrochemistry by attending courses in the University of Southampton and during a visiting period in the University of Jena.\u003C/p>\u003Cp style=\"text-align:justify;\">He is expert in laser processing of polymeric substrates, materials characterization techniques and electrochemical analyses, in particular electrochemical impedance spectroscopy. He has been awarded a conference prize for his work in phenomenological modeling of electrochemical systems during the GEI conference in Orvieto in 2022.\u003Cbr>&nbsp;\u003C/p>","2025-04-28T22:27:21.492Z","184",{"id":1508,"name":1509,"alternativeText":16,"caption":16,"width":1510,"height":1511,"formats":1512,"hash":1537,"ext":1514,"mime":822,"size":1538,"url":1539,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1540,"updatedAt":1540},163,"Zaccagnini Picture.JPG",4284,5712,{"large":1513,"small":1519,"medium":1525,"thumbnail":1531},{"ext":1514,"url":1515,"hash":1516,"mime":822,"name":1517,"path":16,"size":1518,"width":838,"height":825},".JPG","https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/large_Zaccagnini_Picture_7584aadd85.JPG","large_Zaccagnini_Picture_7584aadd85","large_Zaccagnini Picture.JPG",83.66,{"ext":1514,"url":1520,"hash":1521,"mime":822,"name":1522,"path":16,"size":1523,"width":1524,"height":66},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/small_Zaccagnini_Picture_7584aadd85.JPG","small_Zaccagnini_Picture_7584aadd85","small_Zaccagnini Picture.JPG",23.78,375,{"ext":1514,"url":1526,"hash":1527,"mime":822,"name":1528,"path":16,"size":1529,"width":1530,"height":838},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/medium_Zaccagnini_Picture_7584aadd85.JPG","medium_Zaccagnini_Picture_7584aadd85","medium_Zaccagnini Picture.JPG",49.45,563,{"ext":1514,"url":1532,"hash":1533,"mime":822,"name":1534,"path":16,"size":1535,"width":1536,"height":1212},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/thumbnail_Zaccagnini_Picture_7584aadd85.JPG","thumbnail_Zaccagnini_Picture_7584aadd85","thumbnail_Zaccagnini Picture.JPG",3.62,117,"Zaccagnini_Picture_7584aadd85",1984.44,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/Zaccagnini_Picture_7584aadd85.JPG","2025-04-28T22:26:56.875Z",[],"-150","-156",{"id":733,"session":1545},{"id":568,"title":1546,"teaser":1547,"body":50,"createdAt":1548,"updatedAt":1549,"publishedAt":1550,"url_path_id":1551,"contacts":1552,"url_path":1581},"Standalone stretchable device platform for biomedicine","\u003Cp style=\"text-align:justify;\">Conventional electronics today form on the planar surfaces of brittle wafer substrates and are not compatible with 3D deformable surfaces. As a result, stretchable electronic devices have been developed for continuous health monitoring. Practical applications of the next-generation stretchable electronics hinge on the integration of stretchable sustained power supplies with highly sensitive on-skin sensors and wireless transmission modules. This talk presents the challenges, design strategies, and novel fabrication processes behind a potential standalone stretchable device platform that integrates with 3D curvilinear dynamically changing surfaces. The resulting device platform creates application opportunities in fundamental biomedical research, disease diagnostic confirmation, healthy aging, human-machine interface, and smart Internet of Things.\u003C/p>","2025-04-28T22:35:22.176Z","2025-04-28T22:35:23.585Z","2025-04-28T22:35:23.579Z","191",[1553],{"id":588,"name":1554,"committee":16,"position":16,"affiliation":1555,"email":16,"biography":50,"createdAt":1556,"updatedAt":1556,"url_path_id":1557,"contactPhoto":1558,"socialLinks":1579,"url_path":1580},"Huanyu \"Larry\" Cheng","Pennsylvania State University, USA","2025-01-08T20:41:47.938Z","76",{"id":1559,"name":1560,"alternativeText":16,"caption":16,"width":1476,"height":1561,"formats":1562,"hash":1575,"ext":819,"mime":822,"size":1576,"url":1577,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1578,"updatedAt":1578},70,"huanyu_cheng_edit.jpg",560,{"small":1563,"thumbnail":1569},{"ext":819,"url":1564,"hash":1565,"mime":822,"name":1566,"path":16,"size":1567,"width":1568,"height":66},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/small_huanyu_cheng_edit_6b2964a8b2.jpg","small_huanyu_cheng_edit_6b2964a8b2","small_huanyu_cheng_edit.jpg",18.26,357,{"ext":819,"url":1570,"hash":1571,"mime":822,"name":1572,"path":16,"size":1573,"width":1574,"height":1212},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/thumbnail_huanyu_cheng_edit_6b2964a8b2.jpg","thumbnail_huanyu_cheng_edit_6b2964a8b2","thumbnail_huanyu_cheng_edit.jpg",3.85,111,"huanyu_cheng_edit_6b2964a8b2",18.8,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/huanyu_cheng_edit_6b2964a8b2.jpg","2025-01-08T20:41:45.422Z",[],"-58","-157",{"id":253,"session":1583},{"id":733,"title":1584,"teaser":1585,"body":1586,"createdAt":1587,"updatedAt":1588,"publishedAt":1589,"url_path_id":1590,"contacts":1591,"url_path":1607},"Metal-Free Wireless Sensors by Laser-Induced Graphene: From Food Safety to Biodegradable Electronics","\u003Cp style=\"text-align:justify;\">The increasing number of electronic devices in the Internet-of-Things poses serious concerns about their long-term sustainability. Laser-Induced Graphene is an emerging material whose versatility, ease of fabrication and biocompatibility align well with the next-generation metal-free wireless sensors and antennas.&nbsp;\u003C/p>","\u003Cp style=\"text-align:justify;\">At the Pervasive Electromagnetics Lab, the LIG has been employed for fabricating hybrid wireless devices, mostly based on the Radio Frequency Identification (RFID) technology, &nbsp;to combine both sensing and communication functionalities. Among these it is worth mentioning the first example of a full-LIG wireless sensor for the detection of food spoilage inside smart packaging, soft and flexible smart plasters for monitoring skin temperature, as well as wireless sensing transponders engraved on the surface of implanted prostheses. In all the cases considered the achieved performances ensured a robust communication link with read ranges (approx. 1.5 meters) compatible with the intended applications. Despite in their infancies, promising results have been achieved also in the hybridization of the LIG conductor with nanomaterials (e.g., copper, silver, and gold nanoparticles) deposited on the LIG trace by electroplating. This approach combines the superior electrical conductivity of conventional metals with the ease of fabrication of LIG, even on conformal surfaces, enabling the fabrication of antennas whose performance approaches that of fully metallic counterparts, while reducing the amount of metal.\u003C/p>\u003Cp style=\"text-align:justify;\">In parallel, a new research line is exploring the transfer of LIG patterns onto biodegradable substrates, such as polyvinyl alcohol (PVA), to create transient wireless devices that naturally dissolve at the end of their lifecycle.&nbsp;\u003C/p>","2025-04-28T22:36:32.503Z","2025-04-28T22:36:34.096Z","2025-04-28T22:36:34.090Z","192",[1592,1600],{"id":845,"name":1371,"committee":16,"position":16,"affiliation":1372,"email":16,"biography":1373,"createdAt":1374,"updatedAt":1375,"url_path_id":1376,"contactPhoto":1593,"socialLinks":1599,"url_path":1412},{"id":1378,"name":1379,"alternativeText":16,"caption":16,"width":1380,"height":1381,"formats":1594,"hash":1407,"ext":19,"mime":20,"size":1408,"url":1409,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1410,"updatedAt":1410},{"large":1595,"small":1596,"medium":1597,"thumbnail":1598},{"ext":19,"url":1384,"hash":1385,"mime":20,"name":1386,"path":16,"size":1387,"width":1388,"height":825},{"ext":19,"url":1390,"hash":1391,"mime":20,"name":1392,"path":16,"size":1393,"width":1394,"height":66},{"ext":19,"url":1396,"hash":1397,"mime":20,"name":1398,"path":16,"size":1399,"width":1400,"height":838},{"ext":19,"url":1402,"hash":1403,"mime":20,"name":1404,"path":16,"size":1405,"width":1406,"height":1212},[],{"id":1332,"name":1333,"committee":16,"position":16,"affiliation":1334,"email":16,"biography":1335,"createdAt":1336,"updatedAt":1337,"url_path_id":1338,"contactPhoto":1601,"socialLinks":1606,"url_path":1367},{"id":1340,"name":1341,"alternativeText":16,"caption":16,"width":1342,"height":825,"formats":1602,"hash":1362,"ext":19,"mime":20,"size":1363,"url":1364,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1365,"updatedAt":1365},{"small":1603,"medium":1604,"thumbnail":1605},{"ext":19,"url":1345,"hash":1346,"mime":20,"name":1347,"path":16,"size":1348,"width":1349,"height":66},{"ext":19,"url":1351,"hash":1352,"mime":20,"name":1353,"path":16,"size":1354,"width":1355,"height":838},{"ext":19,"url":1357,"hash":1358,"mime":20,"name":1359,"path":16,"size":1360,"width":1361,"height":1212},[],"-158",{"id":272,"session":1609},{"id":253,"title":1610,"teaser":1611,"body":1612,"createdAt":1613,"updatedAt":1614,"publishedAt":1615,"url_path_id":1616,"contacts":1617,"url_path":1640},"Sustainable Electrochemical Sensing Manufacture: Developing Low-Cost, High-Performance Sensors using Laser","\u003Cp style=\"text-align:justify;\">The development of cost-effective electrochemical sensors has advanced significantly through innovative manufacturing techniques like laser-induced carbonization and 3D printing, which offer lower fabrication costs and faster production. Our research aims to enhance the sustainability and accessibility of sensor production while maintaining high electrochemical performance. One key method involves using CO₂ laser-induced carbonization to fabricate electrodes by carbonizing non-conductive substrates in a single step.&nbsp;\u003C/p>","\u003Cp style=\"text-align:justify;\">By adjusting fabrication parameters like line spacing, we can control mass transport phenomena like radial and semi-infinite diffusion. A new spiral electrode design has been developed, offering faster production while delivering electrochemical responses comparable to traditional electrodes. Additionally, we explore 3D-printed electrodes made from conductive thermoplastics, further enhanced with nanostructured gold films via infrared laser photothermal treatment, making them suitable for non-enzymatic glucose detection. Although 3D-printed electrodes face material resistance challenges, our design effectively mitigates these issues, resulting in improved electrochemical performance. The process involves surface ablation with an infrared laser to enable metallic precursor adhesion, followed by the formation of the nanostructured film. This technique produces a simple yet highly selective sensor successfully tested for glucose quantification in sports drinks, showing accuracy similar to commercial devices. These methods demonstrate the potential for sustainable, affordable, high-performance electrochemical sensors using accessible technologies like laser cutters and 3D printers. By focusing on innovative design and mass transport control, we aim to make advanced sensing solutions more accessible, creating new opportunities in analytical sciences and environmental monitoring.\u003C/p>","2025-04-28T22:37:17.882Z","2025-04-28T22:37:19.252Z","2025-04-28T22:37:19.248Z","193",[1618],{"id":1619,"name":1620,"committee":16,"position":16,"affiliation":1621,"email":16,"biography":1622,"createdAt":1623,"updatedAt":1623,"url_path_id":1624,"contactPhoto":1625,"socialLinks":1638,"url_path":1639},107,"Thiago Paixao","University of Sao Paulo, Sao Paulo, Brazil","\u003Cp style=\"text-align:justify;\">Thiago Regis Longo Cesar da Paixão holds a degree in Chemistry with Technological Attributes (2001), as well as a Master’s (2004) and Ph.D. (2007) in Chemistry with a focus on Analytical Chemistry from the University of São Paulo. He is currently a Full Professor at the Institute of Chemistry at the University of São Paulo, where he also leads the Laboratory of Electronic Tongues and Chemical Sensors.\u003Cbr>His research focuses on developing chemical sensors and electronic tongue sensor arrays for analytical applications in environmental, clinical, forensic, and food analysis. Among his pioneering contributions is a seminal study published in Angewandte Chemie International Edition (2017), in which his group introduced a single-step laser-scribing process to fabricate nanostructured electrodes on paper-based devices. This low-cost, reagent-free technique uses a CO₂ laser to pyrolyze the surface of paperboard, forming a conductive, porous, non-graphitizing carbon material composed of graphene sheets and aluminosilicate nanoparticles. The resulting material demonstrated excellent electrochemical performance—high conductivity, increased electroactive surface area—and was successfully applied in real-world clinical, pharmaceutical, food, and forensic analyses. The innovation represents a scalable, green approach to producing portable electrochemical devices.\u003C/p>\u003Cp style=\"text-align:justify;\">Between 2009 and 2022, he coordinated 15 research projects funded by major Brazilian agencies, including CNPq, FAPESP, ONGR, and CAPES.\u003C/p>\u003Cp style=\"text-align:justify;\">Professor Paixão has held several key academic leadership roles. He served as Coordinator of the Graduate Program in Chemistry (2014–2018) and President of the Graduate Studies Commission at the Institute of Chemistry (2018–2022). At the national level, he was appointed Coordinator of the Chemistry Area at CAPES (2022–2024), with a renewed mandate for 2023–2026. He was a full member of the Technical-Scientific Council for Higher Education (CTC-ES) at CAPES in 2022.\u003C/p>\u003Cp style=\"text-align:justify;\">He has supervised five master’s dissertations, ten doctoral theses, and five postdoctoral fellows. Recognizing his scientific contributions, he was named an Affiliate Member of the Brazilian Academy of Sciences in 2018. In 2024, he was appointed Associate Editor of Analytica Chimica Acta, one of the leading journals in analytical chemistry. He also serves as an Advisor to the Scientific Directorate of FAPESP and contributes to its Ethics and Research Integrity Program.\u003C/p>","2025-04-28T22:29:21.100Z","185",{"id":1003,"name":1626,"alternativeText":16,"caption":16,"width":265,"height":1627,"formats":1628,"hash":1634,"ext":819,"mime":822,"size":1635,"url":1636,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1637,"updatedAt":1637},"Thiago Paixao.jpg",261,{"thumbnail":1629},{"ext":819,"url":1630,"hash":1631,"mime":822,"name":1632,"path":16,"size":1633,"width":1467,"height":1212},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/thumbnail_Thiago_Paixao_d692c1301d.jpg","thumbnail_Thiago_Paixao_d692c1301d","thumbnail_Thiago Paixao.jpg",6.45,"Thiago_Paixao_d692c1301d",14.1,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/Thiago_Paixao_d692c1301d.jpg","2025-04-28T22:28:51.288Z",[],"-151","-159",{"id":291,"session":1642},{"id":272,"title":1643,"teaser":1644,"body":1645,"createdAt":1646,"updatedAt":1647,"publishedAt":1648,"url_path_id":1649,"contacts":1650,"url_path":1692},"Tuning of parameters and substrates to optimize the performance of laser-induced graphene based devices","\u003Cp style=\"text-align:justify;\">Laser-induced graphene (LIG) is fabricated by direct laser writing, which is a low-cost and time effective technique, with a wide range of available precursors including biodegradable, biocompatible and eco-friendly materials. The optimization of the main patterning parameters-power and scan speed-was key to achieve the LIG from polyimide with the best structural morphology, graphitization degree, and electrochemical performance, achieving a supercapacitor with a capacitance of 22.2 mF/cm2 at 0.05 mA/cm2.\u003C/p>","\u003Cp style=\"text-align:justify;\">The multiple laser pass strategy is another parameter used to modulate the structure and the properties of LIG. The application of a double pass step during the fabrication of LIG electrodes had the following effects on the produced material: (a) an increase in the pore size of the microstructure, (b) an increase in the degree of graphitization, (c) and the improvement of the sheet resistance. These material engineering was translated into an enhancement of the supercapacitor energy density from 0.77 to 2.20 μWh/cm2 at 0.05 mA/cm2. On the other hand, for flexible electronics and smart sensors fields, the LIG fabricated on polyimide has to be transferred to another functional substrate, for instance, to polydimethylsiloxane (PDMS) to produce strain sensors for bending angle detection or to commercial polyurethane to produce strain sensors for potential skin applications.\u003C/p>","2025-04-28T22:38:07.164Z","2025-04-28T22:38:10.755Z","2025-04-28T22:38:10.751Z","194",[1651],{"id":1238,"name":1652,"committee":16,"position":16,"affiliation":1653,"email":16,"biography":1654,"createdAt":1655,"updatedAt":1655,"url_path_id":1656,"contactPhoto":1657,"socialLinks":1690,"url_path":1691},"Yu Kyoung Ryu","Dep. Física Aplicada e Ingeniería de MateriaIes (ETSI Industriales), Madrid, Spain","\u003Cp style=\"text-align:justify;\">Dr. Yu Kyoung Ryu is Assistant Professor at Departamento de Física Aplicada e Ingeniería de Materiales (E.T.S.I Industriales, UPM). Currently, she develops her research focused on graphene in energy applications and thermal scanning probe lithography at Instituto de Sistemas Optoelectrónicos y Microtecnología (UPM).&nbsp;\u003C/p>\u003Cp style=\"text-align:justify;\">She received the Physics degree from Universidad Complutense de Madrid. She achieved the PhD in 2015 at Instituto de Ciencia de Materiales de Madrid (ICMM, CSIC), under the supervision of Prof. Ricardo Garcia. She did a postdoctoral stay at IBM Research Zurich in the group of Dr. Armin Knoll (Jan. 2016 - Sep. 2017) and a postodctoral stay at ICMM (CSIC) in the group of Dr. Andrés Castellanos-Gomez (Feb. 2019 - Jan. 2020).&nbsp;\u003C/p>\u003Cp style=\"text-align:justify;\">She has expertise in the patterning and fabrication of nanodevices based on Si and 2D materials by scanning probe lithography techniques and the application of laser-induced graphene as supercapacitors. She has published 25 peer-reviewed articles in international journals (including ACS Nano, Nano Letters, Physical Review Letters, 2D Materials), 3 book chapters and a scientific book. She is the co-supervisor of 2 PhD, 4 MSc and 2 BSc thesis students.\u003C/p>","2025-04-28T22:31:29.383Z","187",{"id":1658,"name":1659,"alternativeText":16,"caption":16,"width":1660,"height":1661,"formats":1662,"hash":1686,"ext":819,"mime":822,"size":1687,"url":1688,"previewUrl":16,"provider":23,"provider_metadata":16,"createdAt":1689,"updatedAt":1689},165,"YKRyu Picture.jpg",2195,2465,{"large":1663,"small":1668,"medium":1674,"thumbnail":1680},{"ext":819,"url":1664,"hash":1665,"mime":822,"name":1666,"path":16,"size":1574,"width":1667,"height":825},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/large_YK_Ryu_Picture_ff67886afd.jpg","large_YK_Ryu_Picture_ff67886afd","large_YKRyu Picture.jpg",890,{"ext":819,"url":1669,"hash":1670,"mime":822,"name":1671,"path":16,"size":1672,"width":1673,"height":66},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/small_YK_Ryu_Picture_ff67886afd.jpg","small_YK_Ryu_Picture_ff67886afd","small_YKRyu Picture.jpg",26.63,445,{"ext":819,"url":1675,"hash":1676,"mime":822,"name":1677,"path":16,"size":1678,"width":1679,"height":838},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/medium_YK_Ryu_Picture_ff67886afd.jpg","medium_YK_Ryu_Picture_ff67886afd","medium_YKRyu Picture.jpg",58.95,668,{"ext":819,"url":1681,"hash":1682,"mime":822,"name":1683,"path":16,"size":1684,"width":1685,"height":1212},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/thumbnail_YK_Ryu_Picture_ff67886afd.jpg","thumbnail_YK_Ryu_Picture_ff67886afd","thumbnail_YKRyu Picture.jpg",4.04,139,"YK_Ryu_Picture_ff67886afd",768.48,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/fleps25/YK_Ryu_Picture_ff67886afd.jpg","2025-04-28T22:31:02.118Z",[],"-153","-160",{"data":1694,"meta":1695},{"id":414,"heading":415,"createdAt":416,"updatedAt":417,"publishedAt":418,"url_path_id":419,"url_path":422,"contentType":123},{},1778852370386]