BEGIN:VCALENDAR
VERSION:2.0
PRODID:-//CeNSE - ECPv6.17.2//NONSGML v1.0//EN
CALSCALE:GREGORIAN
METHOD:PUBLISH
X-WR-CALNAME:CeNSE
X-ORIGINAL-URL:https://www.cense.iisc.ac.in
X-WR-CALDESC:Events for CeNSE
REFRESH-INTERVAL;VALUE=DURATION:PT1H
X-Robots-Tag:noindex
X-PUBLISHED-TTL:PT1H
BEGIN:VTIMEZONE
TZID:Asia/Kolkata
BEGIN:STANDARD
TZOFFSETFROM:+0530
TZOFFSETTO:+0530
TZNAME:IST
DTSTART:20250101T000000
END:STANDARD
END:VTIMEZONE
BEGIN:VEVENT
DTSTART;TZID=Asia/Kolkata:20260806T160000
DTEND;TZID=Asia/Kolkata:20260806T170000
DTSTAMP:20260717T052731Z
CREATED:20260717T052621Z
LAST-MODIFIED:20260717T052731Z
UID:10699-1786032000-1786035600@www.cense.iisc.ac.in
SUMMARY:[Seminar] : Graphene-Enabled Advances in Flexible Electronics and Bioelectronics
DESCRIPTION:Speaker: Dr. Prashant Hanumant Narute\, Former Postdoctoral Research Associate\, \nDepartment of Biomedical Engineering\, University of Massachusetts\, USA.\n\nTitle: "Graphene-Enabled Advances in Flexible Electronics and Bioelectronics"\n\nDate: Thursday\, 6th August 2026 - Time: 4 PM\n\nHi-Tea & Coffee: 5 PM\n\nVenue: CeNSE Seminar Hall\n\nAbstract:\n\nGraphene\, celebrated for its exceptional mechanical\, electrical\, and biocompatible properties\, \nis driving the next generation of flexible electronics and wearable healthcare technologies. \nThis talk will highlight recent advances in engineering graphene from fundamental materials science \nto practical biomedical applications. The first part will focus on polymer-supported graphene and \nstrategies to overcome key challenges in fabrication\, transfer\, and electromechanical reliability\, \nwith the overarching goal of translating graphene-based flexible and stretchable electronics from the \nlaboratory to real-world technologies. The second part will explore graphene's emerging role in \nbioelectronics\, where its ultrathin\, skin-conformal\, self-adhesive\, and biocompatible nature enables \nseamless integration with the human body. I will present our work on graphene electronic tattoos \n(GETs) – ultrathin\, imperceptible devices for continuous\, non-invasive physiological monitoring – and \ndiscuss their potential for next-generation personalized healthcare. Together\, these advances \ndemonstrate how graphene is bridging engineering and medicine to create transformative technologies \nfor the future.\n\nBiography:\n\nDr. Prashant Narute was a Postdoctoral Research Associate at the University of Massachusetts (UMass)\, \nAmherst\, USA\, specializing in graphene technology. He pursued BE in Chemical Engineering from \nShivaji University and his MTech in Chemical Technology from LIT Nagpur in collaboration with \nCSIR-IICT\, Hyderabad. He pursued his Ph.D. in Nano Science from the University of Science and \nTechnology\, Republic of Korea. His doctoral research was focused on large-area polymer-supported \ngraphene and wrinkled-graphene for flexible electronics and nanomechanics of 2D materials using \nin-situ SEM technique. After Ph.D.\, Dr. Prashant served as a Postdoctoral Researcher at the NUS\, \nSingapore\, and recently at UMass Amherst was focused on graphene-based bioelectronics\, including \ngraphene electronic tattoos (GET) and graphene-integrated devices for physiological signals \nmonitoring and bioelectronics applications. Dr. Prashant was honoured with the "Outstanding Research \nStudent – 2022" for conducting impactful research on graphene during his Ph.D. His research \ncontributions have been published through high-impact publications\, patents\, news articles\, \nand awards. Outside of his academic endeavours\, he enjoys badminton\, swimming\, and travelling.\n\n\nHost Faculty:  Prof. Manoj Varma
URL:https://www.cense.iisc.ac.in/event/seminar-graphene-enabled-advances-in-flexible-electronics-and-bioelectronics/
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=Asia/Kolkata:20260813T080000
DTEND;TZID=Asia/Kolkata:20260821T170000
DTSTAMP:20260717T053611Z
CREATED:20260717T053528Z
LAST-MODIFIED:20260717T053611Z
UID:10704-1786608000-1787331600@www.cense.iisc.ac.in
SUMMARY:Foundational workshop on Semiconductor Manufacturing
DESCRIPTION:
URL:https://www.cense.iisc.ac.in/event/foundational-workshop-on-semiconductor-manufacturing-3/
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=Asia/Kolkata:20260814T160000
DTEND;TZID=Asia/Kolkata:20260814T170000
DTSTAMP:20260810T094321Z
CREATED:20260810T094249Z
LAST-MODIFIED:20260810T094321Z
UID:10754-1786723200-1786726800@www.cense.iisc.ac.in
SUMMARY:[Thesis Colloquium] : Advanced Nanoscale Sensing: From Plasmonic Nanogaps to Micropore-Based Detection
DESCRIPTION:Thesis Title : "Advanced Nanoscale Sensing: From Plasmonic Nanogaps to Micropore-Based Detection"\nName of the Student   : Mr. Avisekh Pal\nDegree Registered : Ph.D. Engineering\nAdvisor : Prof. Manoj Varma\, CeNSE\nDate : 14th August 2026 (Friday)\nTime : 4:00 PM\nVenue: CeNSE Seminar Hall (Hybrid)\n\nAbstract:\nAdvances in nanoscale sensing have enabled unprecedented sensitivity in the detection of \nchemical and biological species\, driven by the development of novel transduction mechanisms \nthat operate at molecular length scales. This thesis explores complementary optical and electrical \napproaches to nanoscale sensing\, focusing on plasmonic nanogap-based platforms and micropore ionic \ncurrent-based sensing\, with the aim of advancing high-sensitivity and real-time analytical capabilities.\nThe work begins with an overview of nanopore-based measurement techniques\, highlighting the \nprinciples of ionic current blockade\, instrumentation requirements\, and challenges associated \nwith low-current detection and signal-to-noise limitations. This provides a foundation for understanding \nelectrical transduction mechanisms and their role in single-entity detection. Besides electrical\, \nthere are several optical and hybrid measurement methods which are recently being explored to provide highly efficient readouts.\n\nSubsequently\, plasmonic nanostructures fabricated via metal de-wetting are investigated \nfor surface-enhanced Raman scattering (SERS)-based sensing. These substrates enable both static \nand dynamic detection of analytes\, demonstrating strong electromagnetic field enhancement and \nreproducible sensing performance. The capability of transport-assisted detection is further explored\, \nestablishing a link between molecular motion and optical signal variation.\n\nBuilding on this\, the thesis examines near-field vibrational energy transfer in plasmonic nanogaps\, \nintroducing mid-infrared (MIR) upconversion as a mechanism for extending the spectral capabilities of\nplasmonic sensing. Molecularly defined nanogap systems are utilized to study donor–acceptor interactions\, \nwith particular emphasis on the role of functional groups and nanoscale orientation in governing energy \ntransfer dynamics. A rate equation model is developed to describe the observed processes\, providing theoretical \ninsight into near-field coupling phenomena.\n\nFinally\, the practical applicability of micropore sensing is demonstrated through the real-time detection \nof antimicrobial resistance (AMR). By analyzing changes in bacterial properties under antibiotic exposure\, \nincluding optical characteristics\, charge\, and translocation behaviour\, the study establishes a rapid and \nlabel-free method for assessing resistance. This highlights the potential of micropore-based systems for \nclinically relevant diagnostics.\n\nOverall\, this thesis demonstrates that integrating optical and electrical transduction mechanisms provides \na comprehensive approach to nanoscale sensing. By combining the chemical specificity of plasmonic platforms \nwith the temporal resolution of micropore detection\, the work lays the foundation for next-generation multimodal \nsensing technologies for chemical analysis and biomedical applications.
URL:https://www.cense.iisc.ac.in/event/thesis-colloquium-advanced-nanoscale-sensing-from-plasmonic-nanogaps-to-micropore-based-detection/
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=Asia/Kolkata:20260825T110000
DTEND;TZID=Asia/Kolkata:20260825T120000
DTSTAMP:20260819T055432Z
CREATED:20260819T055229Z
LAST-MODIFIED:20260819T055432Z
UID:10787-1787655600-1787659200@www.cense.iisc.ac.in
SUMMARY:[Thesis Defense] : Engineering Light-Matter Coupling and Thermal Transport in Freestanding Two-dimensional Materials
DESCRIPTION:Thesis Title : "Engineering Light-Matter Coupling and Thermal Transport in Freestanding \n                Two-dimensional Materials"\n\nName of the Student : Mr. Manavendra Pratap Singh\n\nDegree Registered : Ph D Engineering \n\nAdvisor : Prof. Akshay Naik\, CeNSE\n\nDate : 25th August 2026\, (Tuesday)\n\nTime : 11:00 AM\n\nVenue : CeNSE Seminar hall\n\n\nAbstract:\n\nTwo-dimensional (2D) materials\, especially semiconducting transition-metal dichalcogenides (TMDCs)\, \nare widely studied due to their strong interactions with light and their unique optical and thermal \nproperties. They hold promise for future optoelectronic\, sensing\, and nanoscale thermal management \ndevices. The surrounding dielectric environment significantly influences the properties of these \natomically thin materials. The optical and thermal properties of 2D materials can be modulated by \nvarying the underlying substrate material\, thickness\, or trench depth in suspended samples\, thereby \naltering interference\, absorption\, and heat dissipation. In this thesis\, we study the fabrication \nand characterization of various trench geometries to tune Raman and photoluminescence (PL) signals \nand to investigate thermal transport in 2D TMDCs.\n\nIn the first part of the thesis\, we fabricated trenches of varying depths on the substrate via \ngrayscale electron-beam lithography (g-EBL). Previous studies have used multiple samples to optimize \nsubstrate thickness for enhanced optical properties\, making it difficult to separate sample-to-sample \nvariations. To overcome this issue\, it would be ideal to have a single flake on/ suspended over varying \nsubstrate thicknesses/trench depths in a single sample. Our strategy enables us to fabricate trenches of \ndifferent depths with nanometre-scale control on the same SiO2/Si substrate\, followed by reactive-ion etching (RIE). \nFinally\, we introduce two types of grayscale structures: (i) staircase structure\, and (ii) holey structure in \nthe SiO2 for systematic investigation of Raman and PL of the 2D TMDCs.\n\nThe second part presents the Raman and PL enhancements of 2D TMDCs transferred onto these grayscale structures. \nWe have observed ∼90-fold Raman and ∼150-fold PL intensity enhancements in monolayer MoS2 for a specific air \ngap and SiO2 thickness combination. The multilayer reflection model (MRM) captures the observed intensity \nvariations with SiO2 thickness in our experiments and allows us to predict changes in Raman peak positions as a \nfunction of absorbed power. By using a single flake across the array of structures\, these structures offer a simple \nsolution to reduce sample-to-sample data variation. This method can also be applied to other 2D materials to enhance \ntheir emitted optical intensity.\n\nThe final part of the thesis investigates the anisotropic in-plane thermal conductivity (κ) of freestanding few-layer \nrhenium disulfide (ReS2). Literature suggests strong anisotropic behaviour in the thermal studies of bulk ReS2 \n(thickness > 60 nm). Whether this anisotropy is maintained in few-layer ReS2 has not yet been explored. We have \nfabricated freestanding few-layer ReS2 samples on SiO2/Si holey substrates for optothermal Raman characterization. \nPolarization-dependent Raman measurements revealed variation in thermal conductivity along the high symmetry axes. \nOur results demonstrate clear in-plane anisotropy in κ for both AA and AB stacking orders. AA stacking shows higher \nκ than AB stacking along both directions\, and κ increases with thickness\, more predominant in AB stacking. The \nexperimental results are further supported by density functional theory (DFT) calculations. The in-plane thermal \nconductivity of few-layer ReS2 devices\, which varies with thickness\, holds significant potential for nanoscale \nthermoelectric applications.
URL:https://www.cense.iisc.ac.in/event/thesis-defense-engineering-light-matter-coupling-and-thermal-transport-in-freestanding-two-dimensional-materials/
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=Asia/Kolkata:20260831T160000
DTEND;TZID=Asia/Kolkata:20260831T170000
DTSTAMP:20260819T064900Z
CREATED:20260819T060218Z
LAST-MODIFIED:20260819T064900Z
UID:10795-1788192000-1788195600@www.cense.iisc.ac.in
SUMMARY:[Seminar] : Droplets and Vapours in Microscale Devices
DESCRIPTION:Speaker: Prof Prosenjit Sen\, Professor\, CeNSE\, IISc.\n\nTitle: "Droplets and Vapours in Microscale Devices"\n\nDate: Monday\, 21st August 2026 - Time: 4 PM\n\nHi Tea & Coffee: 5 PM\n\nVenue: CeNSE Seminar hall\n\nAbstract:\n\nDroplets are ubiquitous in modern engineering\, serving as critical components in a \nvast array of applications ranging from electronics manufacturing and material printing \nto biochemical reactors and organ-mimicking platforms. As their size decreases\, surface \ntension increasingly governs their behaviour\, giving rise to phenomena that are both \nscientifically intriguing and technologically important. While this surface-tension \ndominance can be advantageous in some applications such as compartmentalized micro-biochemical \nreactors. In other applications it also introduces profound challenges in the precise creation\, \nhandling\, and management of fluids in highly constrained environments\, such as high-resolution \ndroplet printing and atomic vapor cells.\n\nThis talk will explore how interfacial phenomena can be understood and engineered across a range \nof applications. I will begin with composite droplets\, focusing on how their interface structure \nand material properties determine their equilibrium shapes and dynamic response. I will then discuss \nhow the rapid collapse of a liquid cavity and the singular flow generated during this process can be \nexploited to produce a single droplet on demand. Next\, I will address the challenges of containing \nand hermetically sealing liquids and vapours\, particularly in miniaturized atomic-vapour cells for \nquantum sensing and related devices. Finally\, I will show how multiscale-structured surfaces can \ncontrol liquid spreading\, evaporation\, and boiling to improve device cooling. These examples \ndemonstrate how the same fundamental physics of droplets and interfaces can enable solutions \nacross manufacturing\, quantum technology\, and thermal management.\n\nBiography:\n\nProsenjit Sen is a faculty member at CeNSE\, IISc Bengaluru\, working in interfacial microfluidics \nfor Lab-on-Chip & other applications. His research focuses on Microfluidics\, Lab-on-chip\, Droplets\, \nInterfacial phenomenon in microfluidics\, Fluidic sensors\, Heterogeneous integration.\n\nHost Faculty:  Prof. Vini Gautam
URL:https://www.cense.iisc.ac.in/event/seminar-droplets-and-vapours-in-microscale-devices/
END:VEVENT
END:VCALENDAR