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 Jinhan Cho's research lab specializes in the design and fabrication of advanced functional materials using layer-by-layer assembly techniques, with a strong focus on nanomaterials for energy conversion and bioelectrochemical applications. The lab explores conductive hybrid architectures—such as metallic cellulose and cotton fibers—for flexible supercapacitors and biofuel cells, emphasizing efficient electrical communication between enzymes and electrodes. A key research direction involves tuning the optical and electrochemical properties of multilayered films through controlled interactions between nanoparticles, polyelectrolytes, and block copolymers. The lab also investigates redox-active nanomaterials, particularly ferritin-based systems, for voltage-responsive resistance switching and molecular-scale energy storage devices.
Professor Sang-Min Jeon's research lab focuses on cellular signaling pathways and metabolic regulation in cancer and neurological disorders. The lab investigates key regulators such as AMP-activated protein kinase (AMPK), hexokinase 2 (HK2), and lipocalin 2 (LCN2), exploring their roles in tumor metabolism, metastasis, and neuropathic pain. By integrating molecular and cellular biology with in vivo disease models, the lab uncovers novel mechanisms linking metabolism, inflammation, and disease progression. Current research emphasizes the dual roles of metabolic kinases and signaling molecules in both tumor survival and neuroinflammatory conditions.
Professor Yang-Keun Kim's research lab focuses on viral pathogenesis, structural virology, and innate immune evasion, with a central emphasis on understanding the molecular mechanisms of viral proteins that interact with non-canonical nucleic acid structures such as Z-DNA and pseudoknots. The lab investigates how viral proteins like E3L from poxviruses exploit Z-DNA binding and dsRNA recognition to counteract host antiviral responses, particularly interferon signaling, and how these interactions influence viral pathogenicity. Additionally, the lab explores the structural and functional basis of ribosomal frameshifting in viruses and develops advanced microencapsulation technologies for microbial protection and biotechnological applications. Their work integrates structural biology, single-molecule biophysics, and virology to uncover fundamental principles of host-pathogen interactions and nucleic acid dynamics.
Professor Kyoung Jin Choi's research lab specializes in the design, synthesis, and application of advanced functional oxide thin films and nanostructures for next-generation electronic, optoelectronic, and energy-related devices. Key research directions include strain engineering of ferroelectric and perovskite oxides to enhance their functional properties, development of high-performance gas sensors based on one-dimensional and hollow nanostructures, and plasmonic enhancement of photoactive materials for efficient solar energy conversion. The lab also investigates defect engineering and surface/interface effects in wide-bandgap semiconductors, particularly in GaN and ZnO-based systems, to optimize device performance.
Professor Jeong Hae-gwan's research lab focuses on environmental health and occupational medicine, with a strong emphasis on the impact of environmental factors—particularly air pollution and climate variability—on human health. The lab investigates the epidemiological links between indoor and outdoor air pollutants, climate change, and chronic diseases such as diabetes, atopic dermatitis, and infectious diseases like dengue, leptospirosis, and malaria. Their work combines longitudinal cohort studies, time-series analyses, and experimental modeling to understand how environmental exposures influence disease progression and transmission dynamics. The lab also explores structural health and rehabilitation, particularly in civil infrastructure through innovative strengthening techniques like jacketing in reinforced concrete beams.
Professor Woo-Jae Kim's research lab specializes in the development and application of advanced nanomaterials for energy conversion, environmental sustainability, and biomedical applications. Key research directions include the selective functionalization and separation of carbon nanotubes for electronic and optoelectronic applications, catalytic processes for clean hydrogen production from biomass, and the design of hybrid nanomaterials for high-performance photodetectors and energy devices. The lab also explores the biological roles of lipid signaling molecules, such as ceramide, in disease mechanisms, linking nanomaterial science with molecular biology.
Professor Seokjun Hong's research lab specializes in computational neuroimaging and brain network analysis, focusing on understanding the macroscale organization of the human brain in health and neurodevelopmental disorders. The lab integrates advanced MRI-based methods—such as connectome gradients, cortical morphology analysis, and machine learning—to uncover biologically meaningful subtypes of brain disorders, particularly autism spectrum disorder (ASD) and focal cortical dysplasia (FCD). A central theme is the identification of reproducible, individual-level brain phenotypes through dimensionality reduction and multimodal imaging, with translational goals in personalized diagnostics and intervention planning. The lab emphasizes the convergence of neurocognitive principles with quantitative imaging to reveal underlying biological mechanisms.
Professor Jinwhan Ahn's research lab specializes in arthroscopic knee surgery, with a primary focus on meniscal repair and reconstruction techniques, particularly for complex tears such as posterior root tears and longitudinal tears in the medial and lateral menisci. The lab emphasizes innovative arthroscopic approaches, including the use of posterior trans-septal portals to enhance visualization and access to posterior knee structures, and develops and evaluates all-inside repair techniques for improved joint stability and long-term outcomes. Their work also investigates the clinical and radiographic results of meniscal surgery in pediatric and young adult populations to prevent post-traumatic osteoarthritis.
Professor Lee Min Hyung's research lab specializes in advanced nanomaterials and energy conversion technologies, with a strong focus on electrocatalysis for sustainable carbon dioxide conversion, photoelectrochemical hydrogen production, and triboelectric nanogenerators for renewable energy harvesting. The lab develops innovative surface engineering strategies—such as nanotexturing, atomic-level functionalization, and morphological control—to enhance the performance and selectivity of catalytic and energy-harvesting materials. Key research directions include designing selective copper-based electrocatalysts for C2+ hydrocarbon production, optimizing p-type photocathodes for hydrogen evolution, and enabling flexible, high-performance triboelectric devices through material property modulation.
Professor Chang Hyun Kang's research lab specializes in thoracic and cardiovascular surgery, with a primary focus on minimally invasive surgical techniques for lung and esophageal cancers. The lab investigates the clinical outcomes, oncological safety, and long-term survival associated with video-assisted thoracoscopic surgery (VATS) and robotic-assisted thoracic surgery, particularly in early-stage lung cancer and esophageal cancer. Research also emphasizes patient-centered outcomes, including postoperative psychological distress, pulmonary function preservation in COPD patients, and the accuracy of advanced imaging in detecting small pulmonary metastases.
Professor Young Chul Jun's research lab specializes in nanophotonics, plasmonics, and reconfigurable metamaterials, focusing on the design and integration of tunable optical devices for on-chip applications. The lab explores electrically and optically tunable strong light-matter interactions using doped semiconductors, 2D/3D photonic waveguides, and metamaterials, with applications in nanoscale light sources, integrated photonic circuits, and active plasmonic devices. A key innovation lies in leveraging 3D and 4D printing techniques to fabricate complex, reconfigurable photonic structures with dynamic functionalities. The lab also investigates spontaneous emission control and waveguide coupling for enhanced light-matter interaction in compact, chip-integrated platforms.
Professor Jin Seok Heo's research lab specializes in gastrointestinal oncology, with a focus on pancreatic and biliary tract cancers. The lab investigates molecular markers, prognostic factors, and treatment outcomes in patients with pancreatic ductal adenocarcinoma, intraductal papillary mucinous neoplasm (IPMN), and biliary tract cancer. Utilizing clinical data, machine learning, and nomogram modeling, the lab aims to improve risk prediction, treatment selection, and personalized therapeutic strategies.
Professor Minsuk Song's research lab specializes in healthcare informatics and process intelligence, focusing on leveraging electronic health records, process mining, and blockchain technologies to improve hospital efficiency, patient safety, and health information exchange. The lab develops decision support systems and data-driven models to optimize clinical workflows, such as inpatient stay management, emergency room operations, and hydrogen refueling infrastructure planning. A key focus is on transforming standardized health data (e.g., OMOP CDM) into actionable process insights through advanced analytics and visualization. The lab also explores privacy-preserving solutions for secure health data sharing using blockchain technology.
Professor Yongseok Jun's research lab specializes in the design and synthesis of advanced nanomaterials for sustainable energy applications, with a strong focus on energy storage and conversion technologies. Key research directions include the development of 2D transition metal dichalcogenides (e.g., MoSe₂) and graphene-based nanocomposites for high-performance supercapacitors and flexible wearable electronics. The lab also explores innovative materials for dye-sensitized solar cells (DSSCs) and perovskite solar cells, emphasizing efficiency enhancement, stability, and scalability for real-world applications. Their work combines solution-based, low-cost fabrication techniques with advanced characterization to enable next-generation energy devices.
Professor Sanghyun Park's research spans computational biology, systems biology, and bioinformatics, with a focus on understanding molecular signaling mechanisms, particularly through scaffold proteins in cellular signaling pathways. His lab develops advanced computational methods for sequence analysis, molecular dynamics simulations, and reaction pathway modeling to uncover the kinetic and structural principles underlying biological processes such as excitation transfer in photosynthesis. The lab also applies systems-level approaches to public health data, integrating personal, social, and environmental factors to study physical activity behaviors. Additionally, they innovate in drug repositioning by leveraging protein localization and network propagation to improve prediction of drug-disease associations.
Professor Edward Choi's research lab specializes in developing advanced machine learning and deep learning methods for electronic health records (EHR) data to improve clinical prediction and decision support. The lab focuses on modeling temporal dynamics in longitudinal patient data using recurrent neural networks, attention mechanisms, and generative models to enhance predictive accuracy while maintaining clinical interpretability. Key research directions include representation learning for medical codes, synthetic EHR generation for privacy-preserving data sharing, and interpretable AI for disease prediction and clinical decision-making. The lab's work bridges the gap between high-performance deep learning and practical clinical usability in healthcare settings.
Professor Woo Youn Kim's research lab specializes in computational and materials chemistry, focusing on the development of advanced materials and machine learning models for energy and biomedical applications. The lab explores molecular design principles for functional materials such as covalent organic frameworks (COFs) and polydopamine-based systems, emphasizing electronic structure modulation and surface engineering. A key research direction involves integrating physics-informed deep learning with quantum mechanical insights to predict drug-target interactions and protein-ligand binding affinities with high accuracy and interpretability. The lab also investigates the role of electric and magnetic fields in tuning molecular electronic properties for nanoscale electronic devices.
Professor Jeongwoon Yang's research lab specializes in the development of innovative organocatalytic methodologies for the enantioselective synthesis of complex organic molecules, with a strong focus on stereoselective transformations such as conjugate reductions, Mannich reactions, and transfer hydrogenations. The lab pioneers metal-free, biomimetic strategies using chiral organocatalysts—particularly imidazolidinone-based systems—enabling high levels of chemoselectivity, diastereo-, and enantioselectivity in the construction of carbocyclic and heterocyclic scaffolds. Their work emphasizes atom-economical, sustainable synthesis of enantiopure building blocks relevant to natural products and pharmaceuticals.
Professor Chung-sun Kim's research lab specializes in theoretical particle physics and nuclear analytical chemistry. The lab focuses on relativistic quark models to study heavy meson decays and heavy quark dynamics, particularly using the Bethe-Salpeter and Salpeter equations to compute decay constants and kinetic energies with full relativistic corrections. In parallel, the lab develops advanced analytical techniques for actinide separation and detection using ICP-SF-MS and automated systems, with applications in nuclear science and environmental monitoring. Recent work also explores beyond-Standard Model physics, including unparticle physics and neutrino properties, aiming to address open questions in flavor physics and CP violation.
Professor Lee Kwang-Woong's research lab specializes in advanced liver transplantation techniques, with a primary focus on improving outcomes in living donor liver transplantation (LDLT). The lab investigates innovative surgical approaches—such as high hilar dissection and pure laparoscopic donor hepatectomy—to enhance graft and patient survival while minimizing complications like biliary stricture. It also explores expanding the criteria for liver transplantation in hepatocellular carcinoma, particularly in cases with portal vein tumor thrombus, aiming to identify prognostic factors and optimize patient selection.