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 Eunseon Kim's research lab focuses on gastrointestinal and metabolic diseases, with a strong emphasis on endoscopic interventions, colorectal cancer management, and the pathophysiology of chronic conditions such as obesity and chronic obstructive pulmonary disease (COPD). The lab investigates complications of endoscopic submucosal dissection (ESD), including perforation, and explores predictive factors and protective strategies in surgical outcomes. It also examines the role of medicinal plants and proteomic mechanisms in metabolic and renal diseases, aiming to identify novel therapeutic targets. Additionally, the lab contributes to understanding respiratory complications in cancer patients and the impact of lung function on postoperative outcomes.
Professor Jae Sung Lee's research lab specializes in the design and synthesis of advanced functional nanomaterials for energy conversion and environmental applications. Key research directions include the development of mesoporous and porous semiconductors for dye-sensitized solar cells and photocatalysis, as well as the creation of recyclable noble metal nanoparticle catalysts for sustainable hydrogenation reactions. The lab also explores bio-inspired nanomaterials that combine biological activity with inorganic functionality, particularly for bone tissue engineering and regenerative medicine.
Professor Beomjun Kim's research lab specializes in statistical physics and complex systems, focusing on the interplay between network topology, collective dynamics, and phase transitions in spatially embedded systems. The lab investigates non-equilibrium phenomena in small-world and scale-free networks, particularly cooperation dynamics in evolutionary games, path-finding efficiency, and neural network performance under structural constraints. A central theme is understanding how local interactions and network architecture give rise to emergent macroscopic behaviors, including critical phenomena and self-organized patterns in systems ranging from spin models to neuronal networks.
Professor Tae-Wook Kim's research lab focuses on plant hormone signaling, particularly brassinosteroid (BR) biosynthesis, perception, and signal transduction. The lab investigates key enzymes and regulatory proteins involved in BR metabolism, such as CYP85A2 and DWF1, and employs advanced techniques like TurboID-based proximity labeling to map dynamic posttranslational modification networks. Their work elucidates molecular mechanisms underlying BR-regulated development, including root growth, gravitropism, and transcription factor degradation, with a strong emphasis on kinase-phosphatase crosstalk and substrate identification in signaling pathways.
Professor Yunhyun Choi's research lab specializes in cardiovascular magnetic resonance imaging (CMR), focusing on the non-invasive diagnosis and characterization of complex cardiovascular diseases. The lab investigates inflammatory aortopathies such as Takayasu arteritis using contrast-enhanced MRI to assess disease activity and vascular involvement. It also explores cardiomyopathies, including left ventricular non-compaction and hypertrophic cardiomyopathy, with advanced CMR techniques to evaluate myocardial structure, function, and microvascular perfusion. The lab is particularly known for developing quantitative and semi-quantitative CMR methods to improve diagnostic accuracy in congenital and acquired heart diseases.
Professor Jong-Baek Park's research lab specializes in the development of advanced flexible and stretchable electronic skins with multimodal sensing capabilities, inspired by the intricate microstructures and functional mechanisms of human skin. The lab focuses on designing bio-inspired microarchitectures—such as interlocked microdome arrays, fingerprint-like patterns, and hierarchical nanoporous structures—to enhance piezoresistive, piezoelectric, and pyroelectric responses for high-sensitivity detection of multidirectional mechanical and thermal stimuli. Key research directions include tunable force sensitivity, real-time signal discrimination, and integration of soft sensors with haptic feedback systems for applications in wearable health monitoring, robotics, and prosthetics.
Professor Sung Joong Lee's research lab focuses on neuroimmunology and glial cell biology, with a central emphasis on understanding the roles of innate immune mechanisms in central nervous system (CNS) inflammation and neurodegenerative disorders. The lab investigates how glial cells—particularly astrocytes and microglia—respond to viral and inflammatory stimuli through pattern recognition receptors (e.g., TLR3, TLR2) and adhesion molecules (e.g., ICAM-1), contributing to neuroinflammation and neuropathic pain. A key research direction involves dissecting the signaling pathways activated in glial cells that drive cytokine production, immune cell infiltration, and neuronal dysfunction in conditions such as encephalitis, multiple sclerosis, and chronic pain. The lab also explores the crosstalk between glial activation and behavioral comorbidities, such as depression, in chronic pain models.
Professor Jun-Seok Lim's research lab specializes in medical imaging and diagnostic radiology, with a focus on improving the accuracy of cancer staging and treatment response prediction using advanced imaging techniques such as CT, PET, MRI, and diffusion-weighted imaging. The lab investigates the diagnostic performance of various imaging modalities in detecting peritoneal metastasis, lymph node involvement, and treatment response in gastrointestinal cancers, including gastric, rectal, and hepatocellular carcinomas. A key research direction involves the development and validation of quantitative imaging biomarkers—such as apparent diffusion coefficient (ADC) and tumor volume reduction rates—for predicting outcomes in patients undergoing preoperative chemoradiotherapy.
Professor Jung-Hoon Lee's research lab specializes in advanced functional nanomaterials and their applications in biomedicine, energy, and environmental sensing. The lab focuses on plasmonic nanoparticles for photothermal therapy and diagnostics, smart wearable biosensors such as contact lenses for real-time health monitoring, and novel materials like ferroelectric oxides and hybrid perovskites for energy conversion and electronic devices. A key theme across the research is the development of stimuli-responsive, highly sensitive, and biocompatible materials for clinical and environmental applications.
Professor Changhun Kim's research lab specializes in biomedical engineering and clinical research, with a focus on clinical hepatology, particularly drug-induced liver injury (DILI) and the development of improved causality assessment tools. The lab also conducts advanced research in neurosurgical interventions, such as anterior cingulotomy for treatment-resistant psychiatric disorders like OCD. Additionally, the lab contributes to medical imaging and signal processing, including the design of efficient VLSI architectures for finite field arithmetic and the radiological characterization of sinonasal pathologies such as fungal balls and mucoceles.
Professor Young Dok Kim's research lab specializes in the design, synthesis, and application of advanced functional materials for energy and environmental sustainability. Key research directions include the development of metal-organic framework (MOF)-based hybrid materials for selective adsorption and catalysis, nanostructured catalysts for clean energy reactions such as the reverse water gas shift (RWGS) reaction, and stimuli-responsive materials for sensing and preconcentration of hazardous agents. The lab also explores novel organic photovoltaic devices using innovative donor-acceptor systems and buffer layer engineering to enhance device efficiency and stability.
Professor Sung Hoon Lee's research lab specializes in the development of advanced quantum dot (QD) materials and optoelectronic devices, with a focus on solution-processed, core/shell-structured QDs for high-performance light-emitting diodes (QLEDs). The lab pioneers innovative synthetic strategies to engineer compositionally graded QDs—particularly InP- and Cd-based systems—enabling high photoluminescence quantum yield, enhanced stability, and efficient charge transport. Key research directions include optimizing energy level alignment, designing functional electron/hole transport layers, and engineering multilayer QD heterostructures to achieve bright, efficient, and stable QLEDs with narrow emission spectra and long operational lifetimes. The lab also explores scalable fabrication techniques such as layer-by-layer assembly for practical, multicolor QLED applications.
Professor Seongyong Lee's research lab specializes in computer vision and image processing, with a focus on advanced techniques for image morphing, semantic segmentation, and image decomposition. The lab explores multi-modal feature fusion in deep learning for RGB-D semantic segmentation, develops efficient and smooth warping methods using B-spline and free-form deformation models, and investigates gradient-based filtering and curvature-driven algorithms for image abstraction and texture-structure separation. Their work emphasizes intuitive, high-quality image transformations with strong geometric and photometric fidelity.
Professor Yeonsuk Seo's research lab focuses on liver diseases, particularly hepatic fibrosis, nonalcoholic fatty liver disease (NAFLD), and variceal bleeding in patients with liver cirrhosis. The lab investigates molecular mechanisms underlying liver injury and repair, with a strong emphasis on nuclear receptors such as PPAR-alpha and PPAR-gamma in lipid metabolism and fibrosis. It also explores gut-liver axis pathophysiology, including bacterial translocation and systemic inflammation, and evaluates non-invasive diagnostic tools like transient elastography for liver fibrosis assessment. The lab integrates preclinical models, molecular biology, and clinical studies to develop targeted therapies and improve patient outcomes in chronic liver disease.
Professor Dongil Lee's research lab specializes in the design, synthesis, and characterization of atomically precise metal nanoclusters and nanomaterials, with a focus on their unique optical, electronic, and electrocatalytic properties. The lab explores the fundamental structure-property relationships in ultrasmall gold and copper clusters, particularly those protected by thiolate ligands, to enable applications in optoelectronics, biomedical imaging, and sustainable energy conversion. A key research direction involves engineering nanoclusters with precise atomic control to achieve high photoluminescence efficiency and low-overpotential electrocatalysis for CO2 reduction and hydrogen evolution reactions. The lab combines advanced spectroscopic techniques, electrochemistry, and theoretical calculations to probe quantum confinement effects and charge transfer dynamics at the nanoscale.
Professor Yongdae Shin's research lab focuses on the biophysics and molecular mechanisms underlying biomolecular phase separation and condensate formation in living cells. The lab investigates how specific molecular interactions govern the assembly, material properties, and functional roles of membraneless organelles such as nucleoli, stress granules, and nuclear speckles. By combining single-molecule imaging, DNA nanotechnology, and quantitative biophysics, the lab aims to decode the principles of cellular organization through phase separation and to engineer synthetic condensates with tailored functions. Their work bridges fundamental biophysics with applications in synthetic biology and disease mechanisms.
Professor Jung Pyo Lee's research lab specializes in nephrology and kidney disease, with a strong focus on improving outcomes in kidney transplant recipients and patients with diabetic kidney disease. The lab investigates the impact of pharmacological agents such as metformin and SGLT2 inhibitors in renal populations, explores the role of environmental toxins and gut microbiota in chronic kidney disease progression, and applies advanced statistical and machine learning methods to predict graft survival and disease outcomes. Their work bridges clinical nephrology with translational research, integrating biomarkers, omics data, and real-world cohort studies to identify novel risk factors and therapeutic strategies.
Professor Chan-Geum Park's research lab focuses on improving patient outcomes through interdisciplinary health interventions, particularly in oncology and dermatology. The lab investigates the role of lifestyle factors such as exercise in cancer survivorship, emphasizing patient adherence and quality of life. It also explores the biological mechanisms of skin immunity, including antimicrobial peptides in eccrine glands, and contributes to clinical decision-making in pediatric anesthesia using physiological monitoring. The lab integrates clinical research with translational science to bridge patient care and biological discovery.
Professor Kwang-Hee Kang's research lab specializes in software engineering with a focus on software reuse, domain engineering, and product line engineering. The lab explores systematic approaches to requirements engineering, particularly in developing reusable and adaptable software systems for complex domains such as window management and home automation. Key research directions include modeling techniques for product line requirements, formal specification methods for real-time systems, and enhancing software adaptability in dynamic environments like PBX (Private Branch Exchange) systems. The lab emphasizes practical, scalable solutions that bridge theoretical foundations with industrial applications.
Professor Sinhae Kang's research lab focuses on vascular and metabolic inflammation, particularly examining the role of endothelial and lymphatic endothelial cells in immune regulation and tissue repair. The lab investigates mechanisms underlying subclinical atherosclerosis, insulin resistance, and the impact of conditions like normal-weight obesity and *Helicobacter pylori* infection on vascular health. A key research direction involves enhancing tissue regeneration through endothelial progenitor cell therapy, especially in islet transplantation for diabetes. The lab integrates clinical imaging, molecular signaling (e.g., TLR4/NF-κB), and longitudinal cohort studies to uncover early markers and pathways of cardiovascular and metabolic disease.