首尔大学、KAIST、延世大学等韩国QS前10名大学的研究室信息。
Professor Yei Hwan Jung's research lab specializes in the development of biocompatible, flexible, and biodegradable electronic systems for advanced biomedical applications. The lab focuses on creating next-generation implantable and wearable devices that mimic biological functions, including artificial sensory systems, haptic interfaces, and real-time biosensors for stress hormones like cortisol. A key research direction involves designing minimally invasive, injectable electronics for precise targeting of deep-tissue organs, enabling long-term monitoring and therapy with reduced physical burden. The lab also pioneers innovative microfabrication techniques for creating complex 3D structures in ultrathin, biocompatible materials to support regenerative approaches in retinal repair.
Professor Jisung Lee's research lab specializes in advanced materials development for sustainable energy technologies and functional materials processing. The lab focuses on designing high-performance anode materials for potassium-ion batteries, leveraging novel nitride and doped carbon architectures to achieve exceptional stability and kinetics. It also explores innovative surface engineering techniques, such as high-frequency induction hardening, to enhance the mechanical durability of structural materials. A key theme across the research is the rational design of materials at the atomic and microstructural levels to optimize electrochemical and mechanical performance.
Professor Zong-Hong Lin's research lab specializes in the development of advanced nanogenerators and nanosensors based on triboelectric and piezoelectric effects. The lab focuses on harvesting mechanical and electrostatic energy from environmental sources such as water drops, waves, and airflow, with applications in self-powered systems and real-time sensing. Key research directions include the design of flexible, transparent, and lead-free nanogenerators using materials like BaTiO₃ nanotubes and PDMS, as well as highly sensitive, low-cost sensors for detecting ions (e.g., Hg²⁺) and organic molecules (e.g., catechin). The lab emphasizes sustainable, scalable, and cost-effective fabrication for practical deployment in wearable electronics, environmental monitoring, and smart infrastructure.
Professor Jae-Do Nam's research lab specializes in the development and characterization of advanced functional materials for sustainable energy, environmental protection, and high-performance composites. Key research directions include the design of graphene-based core-shell microspheres for electronic and biomedical applications, the kinetic modeling of polymer degradation and curing processes, and the creation of eco-friendly alternatives to toxic additives in rubber and composites. The lab also focuses on electromagnetic shielding materials, emphasizing absorption mechanisms and the accurate interpretation of shielding effectiveness to guide next-generation material design.
Professor Young Chul Jun's research lab specializes in nanophotonics and metamaterials, focusing on the design and engineering of tunable, reconfigurable optical and plasmonic devices. The lab explores strong light-matter interactions in hybrid nanostructures, including epsilon-near-zero materials, 2D and 3D photonic waveguides, and chiral metasurfaces, with applications in integrated optics, nanoscale light sources, and active infrared devices. A key research direction involves electrically tunable metamaterials and 4D-printed responsive photonic structures for dynamic control of light across visible to mid-infrared wavelengths. The lab combines theoretical modeling, nanofabrication, and experimental validation to advance next-generation photonic technologies.
Professor Young-Chang Joo's research lab specializes in advanced functional materials for energy and electronics applications, with a strong focus on oxide semiconductors, particularly hematite (α-Fe₂O₃), for photoelectrochemical water splitting. The lab investigates the fundamental roles of defects—especially oxygen vacancies—and their interactions with dopants to enhance charge transport and photoelectrochemical performance. It also explores the reliability and electromigration behavior of thin-film metal lines in flexible electronics, aiming to improve the mechanical and electrical stability of next-generation flexible devices. The lab combines advanced synthesis techniques, in situ characterization, and device-level testing to bridge materials design with practical performance.
Professor Luke P. Lee's research lab specializes in microfluidics, bioengineering, and lab-on-a-chip technologies, focusing on developing miniaturized, portable, and high-throughput systems for biomedical applications. His team pioneers innovative microfluidic devices for single-cell analysis, organ-on-a-chip models such as artificial liver sinusoids, and point-of-care diagnostics with integrated optical detection. The lab emphasizes the design of biologically inspired systems, including artificial compound eyes and controlled cell culture arrays, to enable long-term, dynamic monitoring of cellular behavior under physiologically relevant conditions. Their work bridges fundamental microfabrication techniques with translational applications in drug screening, toxicology, and personalized medicine.
Professor Jong Bhak's research lab specializes in comparative and evolutionary genomics, focusing on the genetic adaptations of mammals, particularly big cats and cetaceans, to extreme environments and specialized diets. The lab employs whole-genome sequencing and advanced bioinformatics to uncover molecular mechanisms underlying traits such as high-altitude adaptation, hypercarnivory, and stress resilience. It also engages in translational epigenomics, investigating DNA methylation dynamics in aging and metabolic interventions using next-generation sequencing technologies. The lab is actively involved in developing and validating cost-effective sequencing platforms for broad genomics applications.
Professor Seung-Jae Lee's research lab focuses on the molecular and genetic mechanisms underlying aging and longevity, with a strong emphasis on model organisms such as *Caenorhabditis elegans*. The lab investigates key regulatory pathways including insulin/IGF-1 signaling, nutrient sensing, and chromatin remodeling, particularly the role of transcriptional coregulators like MDT-15 in lipid homeostasis and proteostasis. A central theme is understanding how environmental cues—such as temperature and dietary restriction—modulate aging through conserved cellular and metabolic networks. The lab also explores the epigenetic regulation of cancer-related genes, such as in rhabdoid tumors, linking chromatin dynamics to disease and aging.
Professor Sung Jin Kim's research lab specializes in thermal management and heat transfer enhancement in electronic cooling systems, with a focus on microchannel heat sinks, finned heat sinks, and advanced thermal modeling. The lab investigates innovative design optimization techniques—such as porous medium modeling and numerical simulation—to minimize thermal resistance and improve thermal performance. Their work bridges experimental validation with predictive modeling, contributing to the development of high-efficiency thermal solutions for electronics and power systems. The lab also develops empirical correlations for friction factor and Nusselt number to support practical heat sink design.
Professor Shukra Raj Paudel's research lab focuses on sustainable water resource management, with a strong emphasis on wastewater treatment, reuse, and the environmental impacts of aquaculture and urbanization in South Asia. The lab investigates innovative solutions such as biogas recovery from wastewater through anaerobic digestion and the reduction of greenhouse gas emissions, particularly nitrous oxide, from aquaculture systems. It also explores institutional and infrastructural challenges in achieving sustainable sanitation and hygiene (WASH) services, especially in rapidly urbanizing regions like Nepal’s Kathmandu Valley. The lab’s work bridges environmental engineering, climate resilience, and policy development to support the achievement of Sustainable Development Goals (SDGs).
Professor Seung Hwan Ko's research lab specializes in the development of advanced nanomaterials and scalable fabrication techniques for next-generation flexible, stretchable, and transparent electronics. The lab focuses on designing and engineering long metallic nanowires, nanowelding processes, and nanostructured photoanodes to enhance electrical conductivity, mechanical robustness, and optoelectronic performance. Key research directions include solution-processed conductive networks, low-temperature sintering via laser and nanosoldering, and hierarchical nanostructures for high-efficiency energy conversion devices such as dye-sensitized solar cells. The lab's work bridges materials synthesis, nanofabrication, and device integration for applications in wearable electronics and sustainable energy technologies.
Professor Dong Won Chun's research lab specializes in advanced materials synthesis and nanofabrication, with a focus on silicon-based micro/nanostructures, magnetic and catalytic materials for energy applications, and functional materials for biomedical sensing. The lab develops innovative techniques such as magnetically guided metal-assisted chemical etching (MACE) to enable precise, high-speed fabrication of vertically aligned Si micro- and nanostructures, while also exploring hydrogen storage materials like Mg–Fe hydrides and magnetic alloys such as FePtSn for high-performance permanent magnets. Their work bridges fundamental materials science with practical applications in renewable energy, medical diagnostics, and nanoelectronics.
Professor Tea-Sung Jun's research lab specializes in the micro-mechanical behavior and deformation mechanisms of advanced light metal alloys, particularly titanium and magnesium alloys. The lab focuses on understanding strain rate sensitivity, local plasticity, and superplasticity at the microscale through in-situ mechanical testing, electron backscatter diffraction (EBSD), and nanoindentation. Key research directions include the role of microstructure—such as grain orientation, texture, and phase morphology—in determining mechanical properties under varying strain rates and temperatures, with applications in high-performance aerospace and structural materials.
Professor Sung-Min Yoon's research lab specializes in advanced oxide semiconductor materials and thin-film transistor (TFT) technologies, with a strong focus on transparent, flexible, and non-volatile memory devices. The lab explores novel ferroelectric and phase-change materials—such as Sb65Se35, Al:HfO2, and IGZO—engineered via atomic layer deposition for next-generation electronic applications. Key research directions include synaptic transistor devices for neuromorphic computing, high-performance and stable TFTs with low-temperature processes, and the development of transparent and flexible electronics for wearable and portable systems.
Professor Hae Jin Jeong's research lab specializes in marine microbial ecology, with a primary focus on the feeding ecology and nutritional physiology of dinoflagellates—particularly mixotrophic and heterotrophic species—in marine food webs. The lab investigates predator-prey interactions involving dinoflagellates, including their roles in energy transfer, carbon cycling, and the dynamics of harmful algal blooms. A key research direction is uncovering the mixotrophic nature of many dinoflagellates previously considered strictly autotrophic, revealing their ability to feed on bacteria, cyanobacteria, and other microplankton under varying nutrient conditions.
Professor Chulhee Choi's research lab focuses on understanding the molecular mechanisms underlying neurodegenerative diseases, mitochondrial dysfunction, and oxidative stress, with a particular emphasis on the role of mitochondria in neuronal cell death. The lab investigates cell death pathways involving Fas/FasL and TRAIL/DR5 systems in the central nervous system, exploring their dual roles in apoptosis and non-apoptotic signaling. A key research direction involves developing innovative drug delivery strategies across the blood-brain barrier, especially using receptor-mediated transcytosis and extracellular vesicles derived from mesenchymal stem cells for targeted CNS therapeutics.
Professor Jin Hyuck Heo's research lab specializes in the development of solution-processed perovskite-based optoelectronic devices, with a strong focus on solar cells and X-ray detectors. The lab explores novel fabrication techniques—such as spin-coating, spray coating, and solvent engineering—to achieve high-efficiency, stable, and hysteresis-free perovskite devices. Key research directions include compositional engineering of hybrid and all-inorganic perovskites, interface optimization, and the design of tandem and planar heterojunction architectures for enhanced performance. The lab also emphasizes practical scalability and commercial viability, aiming to bridge the gap between laboratory-scale prototypes and real-world applications in renewable energy and medical imaging.
Professor Won Sohn's research lab focuses on hepatology and metabolic liver diseases, with a strong emphasis on identifying novel biomarkers and risk prediction models for hepatocellular carcinoma (HCC) and hepatic fibrosis. The lab investigates the role of circulating microRNAs, especially exosomal microRNAs, in early detection of HCC among patients with chronic hepatitis B and nonalcoholic fatty liver disease (NAFLD). It also explores the impact of metabolic factors—such as obesity, insulin resistance, and zinc levels—on liver fibrosis progression, integrating clinical, molecular, and imaging-based approaches for risk stratification.
Professor Seok‐Oh Ko's research lab specializes in environmental remediation and catalytic materials, focusing on the development and application of advanced materials for the removal of hydrophobic organic contaminants (HOCs) from water and soil. The lab investigates surfactant- and cyclodextrin-based solubilization, electrokinetic transport, and biogenic or carbon-based catalysis for pollutant degradation. Key research directions include understanding molecular-scale partitioning behavior, optimizing surfactant and cyclodextrin performance in subsurface systems, and designing nitrogen-doped carbon nanomaterials for efficient peroxymonosulfate activation in advanced oxidation processes. The work bridges environmental chemistry, materials science, and subsurface engineering to address real-world contamination challenges.