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 Ki Chang Kwon's research lab specializes in two-dimensional (2D) materials and their applications in next-generation electronic and optoelectronic devices. The lab focuses on the synthesis, doping, and integration of 2D transition metal chalcogenides (TMCs), graphene, and ferroelectric materials for energy-efficient, high-density neuromorphic computing systems. Key research directions include the development of 2D heterostructures for memristive and synaptic devices, work function engineering in graphene, and high-performance photodetectors and photocathodes for renewable energy applications.
Professor Seung-Jun Lee's research lab focuses on vascular biology and gastrointestinal physiology, with a particular emphasis on the roles of key signaling molecules such as angiopoietin-2 and glucagon-like peptide-2 receptor in cardiovascular and intestinal homeostasis. The lab investigates mechanisms underlying vascular remodeling, inflammation, and tissue repair in ischemic heart disease and gut injury, aiming to identify novel therapeutic targets for age-related and inflammatory vascular disorders. Recent work also explores non-invasive drug delivery strategies using ultrasound technology. The lab integrates preclinical models with molecular and cellular analyses to translate findings into clinical applications.
Professor Jeong-Hoon Kim's research lab focuses on molecular mechanisms of disease-related proteins, particularly in DNA repair and ubiquitin-mediated regulation, as well as applying computational and molecular tools to address pressing ecological and agricultural challenges. The lab investigates the functional characterization of E3 ubiquitin ligases like hFBH1 and explores antimicrobial resistance (AMR) surveillance using machine learning to predict pathogen burden in food animal systems. Additionally, the lab contributes to polar ecology by studying penguin diets and microbiomes through molecular techniques such as metabarcoding, qPCR, and stable isotope analysis, providing insights into Antarctic ecosystem dynamics. The integration of molecular biology, bioinformatics, and environmental science defines the lab’s interdisciplinary approach.
Professor Dong Ah Shin's research lab specializes in spinal surgery and interventional pain management, focusing on improving surgical outcomes and minimizing complications in patients with spinal disorders. The lab investigates minimally invasive spinal procedures, such as the MILD (medial branch neurotomy) and endoscopic discectomy (MED), to reduce tissue trauma and postoperative pain. It also explores diagnostic and therapeutic strategies for discogenic pain and spinal metastases, emphasizing patient-centered outcomes like functional recovery and quality of life. The lab's work bridges clinical innovation with evidence-based practice, particularly in challenging cases such as spinal metastasis from IDIM (intradural intramedullary metastasis).
Professor Dong-Sup Lee's research lab specializes in translational immunology and nanomedicine, focusing on the molecular mechanisms of fibrotic and inflammatory diseases, particularly in the lung and kidney. The lab develops smart nanomaterials for precision imaging and therapy, with a strong emphasis on photodynamic immunotherapy and targeted delivery. It also investigates key immune regulators such as STING, VISTA, and uteroglobin in disease progression, aiming to identify novel therapeutic targets for fibrosis, nephropathy, and cancer.
Professor Sung-Hwan Choi's research lab specializes in biomaterials and surface engineering, with a focus on developing advanced materials for biomedical applications. The lab investigates gradient surfaces, zwitterionic polymers, and biocompatible resins for 3D printing, emphasizing antifouling properties, biocompatibility, and surface modification techniques. Key research directions include improving the performance and safety of medical devices through innovative surface treatments and functional materials that resist protein and microbial adhesion.
Professor Joon-Sung Park's research lab focuses on the intersection of artificial intelligence, human-computer interaction, and social systems, with an emphasis on creating believable, reflective, and inclusive computational agents. The lab explores generative agents that simulate human-like behavior in dynamic environments, designs scalable social simulation techniques for prototyping social computing systems, and investigates the ethical and experiential impacts of algorithmic speed and AI accessibility. A central theme is ensuring that emerging AI technologies are not only intelligent but also fair, reflective, and accessible to diverse populations, including people with disabilities.
Professor Hyunwook Park's research lab specializes in advanced computational and machine learning-driven design methodologies for electronic and photonic systems, with a strong focus on power integrity and energy efficiency. The lab develops innovative solutions in power distribution network (PDN) optimization, particularly through deep reinforcement learning and transformer-based algorithms for optimal decoupling capacitor (decap) placement in 2.5D/3D ICs and high-bandwidth memory systems. Additionally, the lab explores fundamental physical phenomena in nanoscale systems, such as high-harmonic generation in rare-gas clusters and superhydrophobic surface effects on turbulent flow drag reduction. The integration of AI-driven design with physical modeling defines the lab’s interdisciplinary approach to next-generation electronic packaging and nanophotonics.
Professor Eung Ho Choi's research lab focuses on the molecular and cellular mechanisms underlying skin barrier function, with a particular emphasis on the role of stratum corneum homeostasis in health and disease. Key research directions include the pathophysiology of skin barrier impairment in conditions such as atopic dermatitis and type 2 diabetes mellitus, the regulatory role of skin surface pH, and the contribution of endogenous factors like glycerol, natural moisturizing factors (NMFs), and lipid metabolism. The lab employs innovative animal models—such as the 'atopic march' model using flaky tail mice and HDM sensitization—to investigate how acidic microenvironments can prevent or reverse barrier dysfunction and allergic sensitization.
Professor Soon-Cheol Hong's research lab focuses on maternal-fetal medicine and reproductive health, with a strong emphasis on the impact of hormonal changes, nutritional factors, and viral infections on pregnancy outcomes. The lab investigates the roles of key biomarkers such as folate, homocysteine, and leptin in pregnancy complications like pre-eclampsia, preterm birth, and insulin resistance. Additionally, the lab explores rare placental pathologies and the molecular mechanisms underlying gynecological cancers, particularly through the study of cell surface markers like CD44v6. Their work bridges clinical obstetrics with molecular diagnostics to improve early detection and management of adverse pregnancy and gynecological conditions.
Professor Han Sung Kim's research lab specializes in the design and analysis of advanced parallel manipulators for precision engineering, with a focus on kinematic synthesis and actuation strategies in parallel kinematics machines. The lab also conducts cutting-edge research in nanomaterials, particularly the synthesis, structural characterization, and electronic properties of semiconductor nanowires such as GaN, ZnGa2O4, Zn2SnO4, and Ga1−xMnAs, using advanced electron microscopy techniques. Additionally, the lab explores the biological effects of melatonin and endoplasmic reticulum stress in cancer cells, particularly melanoma, through molecular pathway analysis. The integration of mechanical design, nanomaterials science, and biomedical applications defines the multidisciplinary nature of the lab’s work.
Professor Ki Hean Kim's research lab specializes in biomedical optics and advanced imaging technologies, with a focus on developing novel optical coherence tomography (OCT) systems for in vivo diagnostic applications. The lab pioneers innovations in spectral-domain and polarization-sensitive OCT, as well as multiphoton and multifocal microscopy, to enable high-resolution, three-dimensional imaging of biological tissues. Key research directions include endoscopic imaging with miniaturized catheter-based scanners, non-invasive assessment of tissue birefringence for clinical applications such as burn depth evaluation, and the development of molecular probes for real-time fluorescence imaging in live models. The lab integrates microelectromechanical systems (MEMS), optical frequency domain imaging, and advanced signal processing to push the boundaries of functional and structural tissue imaging.
Professor Oh-Yun Kwon's research lab focuses on biomechanics and rehabilitation engineering, particularly in improving neuromuscular control and scapular kinematics in individuals with shoulder dysfunction. The lab also investigates clinical challenges in diabetes-related lower-limb complications, emphasizing the prevention of foot ulcers and amputations through early intervention. Additionally, the lab explores advanced polymer processing techniques, such as chaotic mixing in multilayer film fabrication, to develop novel nanostructured materials with precise control over layer morphology and interfacial properties. These diverse research directions reflect a strong integration of clinical applications and materials innovation.
Professor Sang Kyu Park's research lab focuses on molecular parasitology, ion channel biology, and the pathophysiology of neurological and metabolic disorders. The lab investigates the molecular mechanisms of anthelmintic drugs like praziquantel, identifying novel drug targets such as the schistosome TRP channel SmTRPM_PZQ. It also explores lipid signaling in vascular function, particularly epoxyeicosatrienoic acids (EETs) and their G protein-coupled receptor GPR40, and contributes to plant melatonin biosynthesis through enzymatic characterization of N-acetylserotonin methyltransferase. Additionally, the lab engages in clinical translational research, including prognostic scoring in neurocritical care and molecular genetics of oculocutaneous albinism in Asian populations.
Professor Sungchul Park's research lab focuses on health services research with a primary emphasis on Medicare beneficiaries, particularly in the context of health insurance choice, access to care, and health disparities. The lab investigates the impact of Medicare Advantage (MA) versus fee-for-service (Fee-for-service) plans on health outcomes, care utilization, and health equity, with a special focus on vulnerable populations such as those with Alzheimer’s disease and related dementias (ADRD) and racial and ethnic minorities. Research also explores health insurance literacy, low-value care, and the effects of public health crises—like the COVID-19 pandemic—on care access and utilization. The lab’s work informs policy initiatives aimed at improving health system efficiency, equity, and patient-centered decision making.
Professor Hyuk Choi's research lab specializes in the investigation of magnetic and interfacial phenomena at the nanoscale, with a focus on spintronics, magnetic thin films, and their applications in biomedical and energy-related technologies. The lab explores how atomic-scale surface structures—such as steps and strain—control magnetic anisotropy, Curie temperature, and spin reorientation in transition metal films. It also extends into biointerfaces and low-level light therapy, examining how optical and mechanical stimuli modulate inflammatory responses in tissues. Additionally, the lab develops microfluidic platforms for high-throughput isolation of rare cells, such as circulating tumor cells, using viscoelastic flows.
Professor Suk Joong Lee's research lab specializes in the design and synthesis of functional supramolecular and organometallic architectures, with a focus on chiral metallocycles and molecular assemblies for enantioselective catalysis and sensing. The lab develops innovative metal-ligand coordination systems—such as chiral molecular squares and triangles—using transition metal complexes and enantiopure ligands to create materials with tailored optical and catalytic properties. Recent work also explores the application of these systems in asymmetric synthesis, luminescent sensing, and advanced optoelectronic devices, including single-crystal field-effect transistors with photoresponsive behavior. The lab emphasizes the integration of supramolecular chemistry with coordination chemistry to create smart, stimuli-responsive materials with potential in sustainable synthesis and molecular technology.
Professor Chang-Yuil Kang's research lab focuses on immunology and molecular mechanisms underlying immune aging, T-cell exhaustion, and regulatory T-cell homeostasis. The lab investigates key immune checkpoints such as Tim-3 and PD-1 in aged T cells, explores the role of IFN-γ in suppressing induced Treg differentiation, and examines the functional plasticity of myeloid-derived suppressor cells (MDSCs) in tumor immunity. Additionally, the lab contributes to vaccine development through codon optimization strategies and studies the structural basis of antibody self-binding and HIV-1 gp120 neutralizing antibodies.
Professor Jung Ho Lee's research lab specializes in advanced biophysical and analytical chemistry, focusing on the molecular mechanisms of protein folding, chaperone function, and intrinsically disordered proteins using cutting-edge NMR spectroscopy. The lab develops innovative signal enhancement techniques—particularly photo-CIDNP and novel enzyme-assisted polarization methods—to overcome the inherent sensitivity limitations of NMR, enabling high-resolution studies of biomolecular structure and dynamics in solution. A key research direction involves understanding the conformational behavior of proteins such as Hsp70 clients and α-synuclein in relation to their biological functions and disease implications, including Parkinson’s disease. The lab also investigates materials properties, such as wear resistance and surface morphology in high-speed steels, through advanced thermal and mechanical testing.
Professor Chaenyung Cha's research lab specializes in the design and engineering of functional biomaterials, with a focus on carbon-based nanomaterials and hydrogels for advanced biomedical applications. The lab develops innovative strategies to enhance the mechanical, structural, and biochemical properties of hydrogels through nanomodification, covalent integration of graphene derivatives, and smart crosslinking techniques. A central theme is the creation of biomimetic microenvironments that replicate native stem cell niches to guide cell behavior for regenerative medicine and tissue engineering. The lab also pioneers surface engineering approaches to achieve robust hydrogel-polymer adhesion, enabling applications in microfluidics and dynamic cell culture systems.