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 Joo-Han Kim's research lab specializes in advanced thin film materials and their applications in biomedical and electronic systems. The lab focuses on the development and characterization of functional thin films such as silicon nitride and hydrogenated carbon nitride for use in microelectronics, biocompatible coatings, and regenerative medicine. A key research direction involves understanding the biological responses of tissues—particularly in the brain and intervertebral discs—under radiation and inflammatory conditions, with an emphasis on vascular growth factors and extracellular matrix regulation. The lab also contributes to innovative ultrasound imaging technologies through digital beamforming techniques.
Professor Yong-Jae Lee's research lab specializes in interdisciplinary biomedical and materials science research, focusing on the development of advanced optical devices for enhanced light extraction in organic semiconductors and the investigation of environmental and biological factors influencing chronic disease progression. The lab integrates computational modeling with experimental validation to optimize photonic structures in optoelectronic devices and explores the clinical and epidemiological links between environmental pollutants, metabolic markers, and systemic diseases such as cancer, cardiovascular disease, and non-alcoholic fatty liver disease. Additionally, the lab examines the role of traditional herbal compounds and routine blood biomarkers in predicting and managing metabolic and inflammatory disorders.
Professor Jeonghoon Yang's research lab specializes in critical care cardiology, with a primary focus on mechanical circulatory support and advanced life support in severe cardiovascular emergencies. The lab investigates coronary microvascular dysfunction in heart failure with preserved ejection fraction (HFpEF), extracorporeal membrane oxygenation (ECMO) for refractory shock, and extracorporeal cardiopulmonary resuscitation (ECPR) outcomes. Key research directions include optimizing ECMO cannulation strategies, identifying predictors of neurological and survival outcomes after ECPR, and evaluating clinical outcomes in cardiogenic shock across diverse patient populations. The lab employs single-center registries and observational studies to generate real-world evidence for improving critical care interventions in intensive care settings.
Professor Jae-Hong Kim's research lab focuses on cellular signaling mechanisms, particularly the role of reactive oxygen species (ROS) and small GTPases like Rac in inflammatory and stress responses. The lab investigates redox signaling in tumor necrosis factor-alpha and leukotriene B4 pathways, with a strong emphasis on the interplay between Rac, cytosolic phospholipase A2, and MAPK pathways. Additionally, the lab explores regenerative medicine applications using adipose-derived stem cells for skin repair and anti-aging therapies, highlighting their role in collagen synthesis and angiogenesis. The lab also engages in materials science, particularly in developing thermally stable magnetic tunnel junctions for next-generation memory devices.
Professor Pyuck-Pa Choi's research lab specializes in advanced materials design, with a focus on nanostructured alloys, intermetallic phases, and functional nanomaterials for energy and catalytic applications. The lab investigates precipitation strengthening mechanisms in medium-entropy and high-entropy alloys, explores atomically precise catalysts for electrochemical CO2 reduction, and examines interfacial phenomena in oxide-supported catalysts using advanced characterization techniques such as atom probe tomography and operando spectroscopy. A central theme is the manipulation of atomic-scale structure and chemistry to achieve superior mechanical and electrochemical performance.
Professor Ji-Joon Song's research lab specializes in structural biology and biochemistry, focusing on the molecular mechanisms of epigenetic regulation and RNA interference. The lab investigates chromatin-modifying complexes, small RNA pathways, and enzyme architectures using a combination of X-ray crystallography, cryo-EM, and single-molecule biophysics. Key research directions include understanding how WD40 repeat proteins recognize histone modifications, the structural basis of histone methyltransferase regulation, and the dynamic mechanisms of Argonaute proteins in RNA silencing. These studies provide fundamental insights into gene regulation and have implications for epigenetic therapy and RNA-based therapeutics.
Professor Yongchan Ahn's research lab specializes in radiation oncology and medical physics, with a focus on improving cancer treatment outcomes through advanced radiation therapy techniques and personalized treatment planning. The lab investigates prognostic factors in head and neck, lung, and salivary gland cancers, emphasizing adaptive radiotherapy, tumor volume response, and dosimetric predictors for treatment toxicity. It also explores the integration of cloud computing and virtualization technologies to enhance real-time data processing for mobile and healthcare applications. The lab's work bridges clinical oncology with biomedical informatics to optimize patient care and treatment delivery.
Professor Sang-Won Lee's research lab specializes in advanced mass spectrometry techniques to investigate the structural and functional aspects of biomolecules, particularly in plant immunity and post-translational modifications. The lab focuses on identifying and characterizing signaling molecules such as the Ax21 peptide in rice-Xanthomonas interactions, exploring non-canonical roles of aminoacyl-tRNA synthetases, and analyzing intact ribosomal proteins and modified peptides using high-resolution FT-ICR mass spectrometry. Their work bridges molecular plant pathology, structural biology, and analytical chemistry, with a strong emphasis on gas-phase ion behavior and bioactive compound discovery in stress responses.
Professor Ryu Hye-jin's research lab focuses on the pathophysiological roles of adipokines and hepatokines in metabolic and cardiovascular diseases, particularly in the context of obesity, type 2 diabetes, and atherosclerosis. The lab investigates how bioactive molecules derived from adipose tissue and the liver contribute to systemic inflammation, endothelial dysfunction, and arterial stiffness, with an emphasis on identifying novel biomarkers and therapeutic targets. Their work integrates clinical studies with molecular mechanisms, including the role of omentin-1 and other metabolic regulators in vascular health.
Professor Lee Jeong-woo's research lab specializes in the development of advanced functional nanomaterials and innovative drug delivery systems. The lab focuses on designing graphene-based composites for high-performance energy storage applications, such as supercapacitors, and explores nanostructured hydroxides and oxides for enhanced electrochemical performance. Additionally, the lab is actively engaged in the design and translation of microneedle technologies for painless, self-administered delivery of biopharmaceuticals, with a strong emphasis on maintaining bioactivity and safety. The integration of materials science, electrochemistry, and biomedical engineering defines the lab’s interdisciplinary approach.
Professor Jae-Seung Lee's research lab specializes in the design and application of functional nanomaterials for biosensing and biomedical delivery. The lab focuses on developing colorimetric and optical detection systems using DNA-functionalized gold and silver nanoparticles, leveraging unique metal-nucleobase interactions—particularly Hg²⁺-mediated T-T mismatches—for highly sensitive and selective detection of ions and biomolecules like cysteine. A key research direction involves engineering nanoscale platforms for the safe and efficient delivery of RNA therapeutics, using biodegradable linkages and inorganic nanoparticles. The lab also explores the synthesis of ordered mesoporous materials for advanced functional applications.
Professor Seung-Hoon Hong's research lab specializes in the development and application of advanced nanomaterials for biomedical and electronic technologies. The lab focuses on graphene and carbon nanotube-based substrates to guide stem cell behavior, enabling precise control over cell adhesion, differentiation, and directional growth. It also pioneers bioelectronic sensing platforms, including graphene-based electrodes and olfactory receptor-based biosensors, for high-resolution molecular detection. Additionally, the lab develops innovative nanofabrication techniques such as parallel dip-pen nanolithography and directed assembly of 2D materials for next-generation nanodevices.
Professor Jae Young Lee's research lab specializes in advanced biomaterials and tissue engineering, with a focus on developing functional hydrogels and nanocomposites for regenerative medicine. Key research directions include the design of electrically conductive hydrogels for neural tissue engineering, the fabrication of multifunctional nerve guidance conduits using graphene oxide and biopolymers, and the application of 3D cell printing with bioinks for osteogenic and neural tissue regeneration. The lab also explores laser-matter interactions in materials processing, contributing to precision manufacturing and additive manufacturing technologies.
Professor Hongkyung Lee's research lab specializes in advanced energy storage materials, with a primary focus on next-generation batteries such as lithium-metal, sodium-ion, and lithium-oxygen batteries. The lab investigates critical challenges including dendrite suppression, interfacial stability, and electrode degradation, employing innovative materials design such as modified Prussian blue analogues, functional separators, and carbon- and binder-free cathodes. Key research directions include surface engineering of lithium metal anodes, development of stable solid-electrolyte interphases, and 3D host architectures to enhance cyclability and energy density.
Professor Hyung-Seok Seo's research lab focuses on microbial genomics and immunology, with a strong emphasis on understanding the genetic and molecular mechanisms underlying immune cell dysfunction in cancer and infectious diseases. The lab integrates genomics, systems biology, and immunotherapy approaches to explore T cell and NK cell exhaustion, tumor immune evasion, and the development of novel immunotherapeutic strategies. Key research directions include the role of transcriptional regulators like TOX and NR4A in T cell exhaustion, the impact of MHC-I deficiency on immune surveillance, and the preclinical evaluation of combination immunotherapies involving checkpoint blockade and cytokine support such as IL-21. The lab also contributes to foundational bioinformatics by developing and maintaining the EzBioCloud database for prokaryotic taxonomy and genomics.
Professor Hyun-Kon Song's research lab specializes in advanced materials for next-generation energy storage systems, with a primary focus on high-performance cathode materials and solid-state electrolytes for lithium-ion batteries. The lab explores nanostructured and surface-modified materials—such as spinel-type LNMO, olivine LFP, and polyanion-based compounds—aimed at enhancing rate capability, thermal stability, and cycle life, particularly for electric vehicles and grid-scale energy storage. Innovative strategies like in-situ gel polymer electrolyte coating and conducting polymer-based battery systems further extend the lab’s work toward safer, more durable, and high-power electrochemical devices. The research integrates materials synthesis, nanoengineering, and electrochemical characterization to address critical challenges in energy density, safety, and long-term performance.
Professor Yun Jung Choi's research lab focuses on interdisciplinary biomedical and materials science research, spanning computational biology, systems biology, and advanced materials for energy applications. The lab develops machine learning and bioinformatics approaches to predict disease outcomes and identify differentially regulated genes in complex biological systems, particularly in infectious diseases and neurodevelopmental disorders. It also investigates functional materials such as covalent organic frameworks (COFs) for efficient hydrogen storage, with a focus on ion-doping strategies to enhance adsorption properties. The integration of computational modeling with experimental validation defines the lab’s unique approach to solving challenges in precision medicine and sustainable energy.
Professor Dong Yoon Lee's research lab specializes in the development and application of advanced nanomaterials for biomedical theranostics, with a strong focus on cancer therapy and neurodegenerative diseases. The lab explores novel nanomaterials such as gold nanoparticles, graphene-based nanodots, and functionalized nanofibers for targeted drug delivery, photothermal, and photodynamic therapy. A key research direction involves leveraging the unique optical and physicochemical properties of nanomaterials to enable precise, controlled, and efficient therapeutic interventions. The lab also investigates the molecular mechanisms of disease-related oncoproteins and their impact on cellular signaling, particularly in viral oncogenesis and neurodegeneration.
Professor Suk Kim's research lab specializes in the design and fabrication of advanced functional materials with tunable adhesion and mechanical properties, focusing on bioinspired micro- and nanostructured surfaces. The lab explores reversible dry adhesion using shape memory polymers and elastomeric microfibers, enabling applications in robotics, medical devices, and micro/nano-manufacturing. Key research directions include the integration of smart materials with controlled surface topography for dynamic adhesion switching and the theoretical modeling of topological and supersymmetric field theories in high-energy physics. The lab bridges materials science, soft robotics, and theoretical physics through interdisciplinary innovation.
Professor Dohun Kim's research lab focuses on translational biomedical research with a strong emphasis on clinical epidemiology, metabolic health, and regenerative medicine. The lab investigates the links between metabolic syndrome and cancer risk, explores prognostic biomarkers such as heart rate variability in hospice patients, and develops stem cell-based strategies for diabetes therapy using non-genetic differentiation techniques. Additionally, the lab contributes to energy materials research by studying moisture effects on photovoltaic module degradation, highlighting interdisciplinary applications in health and sustainability.