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 Yeon Hee Park's research lab specializes in translational breast cancer genomics, focusing on understanding the molecular and immune dynamics of treatment response and resistance in HER2-positive and triple-negative breast cancers. The lab integrates multi-omics approaches—such as whole exome sequencing, transcriptome profiling, and immunohistochemistry—across longitudinal patient cohorts to identify predictive biomarkers and therapeutic vulnerabilities. Key research directions include the impact of neoadjuvant chemotherapy on the tumor immune microenvironment, the clinical relevance of tumor mutational burden in metastatic disease, and the development of targeted therapies for treatment-experienced patients. The lab also actively contributes to clinical trial design and biomarker discovery in precision oncology.
Professor Jeong-Hoon Lee's research lab specializes in hepatocellular carcinoma (HCC) biology, transplantation oncology, and immunotherapy, with a strong focus on improving prognostic models and developing novel immunotherapeutic strategies for HCC. The lab integrates clinical oncology with advanced technologies such as artificial intelligence and deep learning to refine liver transplantation criteria and predict tumor recurrence. Key research directions include the development of immune cell therapies—such as dendritic cell and cytokine-induced killer (CIK) cell vaccines—and the identification of molecular targets, including the NLRP3 inflammasome, for inflammatory diseases like acne. The lab also investigates cerebrovascular diseases, particularly posterior circulation ischemic stroke, in the Korean population, emphasizing epidemiological and clinical characterization.
Professor Young Seok Ju's research lab specializes in cancer genomics and mitochondrial biology, focusing on the identification and functional characterization of somatic mutations in both nuclear and mitochondrial DNA across various cancers. The lab employs advanced genomics technologies—such as whole-genome and whole-transcriptome sequencing—to uncover the molecular mechanisms underlying tumorigenesis, particularly in lung cancer and rare cancer subtypes. A key focus is understanding the origins and consequences of mitochondrial DNA mutations, including mitochondrial-nuclear genome fusions, and their roles in cancer progression and pathogenesis. The lab also develops computational tools, like Mutalisk, to decode mutational signatures in the context of genomic, transcriptional, and epigenomic landscapes.
Professor Mayeen Uddin Khandaker's research lab focuses on advanced materials for sustainable energy and environmental safety, with a strong emphasis on perovskite solar cells, green synthesis of nanomaterials, and radiation shielding in construction materials. The lab investigates structural and fabrication innovations to enhance the stability and efficiency of perovskite solar cells, while also exploring eco-friendly nanoparticle synthesis using biological agents for biomedical and environmental applications. Additionally, the lab conducts critical studies on radionuclide concentrations and radiation shielding properties of building materials, particularly in the context of Bangladesh’s rapid urbanization and industrial growth. These interdisciplinary efforts aim to address energy sustainability, environmental protection, and public health safety through materials science and radiation physics.
Professor Joonseok Lee's research lab specializes in the design and application of advanced nanomaterials for biomedical and environmental technologies. Key research directions include the development of graphene-based nanocomposites for enhanced photocatalysis and chemiluminescence sensing, peptide-based self-assembled nanostructures with tunable optical and surface properties, and multifunctional nanotheranostic platforms for image-guided cancer therapy. The lab also focuses on innovative nanomaterials for real-time detection of airborne pathogens, emphasizing point-of-care diagnostics and environmental monitoring.
Professor Yongsok Seo's research lab specializes in the design and development of advanced functional materials, with a focus on nanocomposites, piezoelectric and electroactive materials, and smart soft matter. The lab investigates the integration of nanomaterials—such as multiwalled carbon nanotubes, PZT nanofibers, and block copolymers—into polymer matrices to enhance electrical, mechanical, and rheological properties. Key research directions include energy harvesting via piezoelectric nanogenerators, tunable electrorheological and magnetorheological fluids, and interfacial self-assembly of block copolymers at liquid interfaces. The lab combines advanced fabrication techniques like electrospinning and in-situ polymerization with comprehensive characterization to enable next-generation smart materials for biomedical, energy, and industrial applications.
Professor Young-Seuk Park's research lab focuses on ecological and environmental sustainability, with a strong emphasis on biodiversity conservation, species distribution modeling under climate change, and the impacts of human development on aquatic and forest ecosystems. The lab employs advanced ecological modeling techniques—such as MaxEnt—to predict the distribution of invasive and endemic species, particularly in East Asian river systems and monsoon-affected regions. Research also extends to physiological ecology, examining ion transport mechanisms in amphibians and their responses to environmental stressors. The lab’s work bridges fundamental biological research with practical conservation strategies in the face of global environmental change.
Professor Kwan Woo Nam's research lab specializes in the design and development of advanced functional materials for sustainable energy storage, with a primary focus on aqueous rechargeable metal-ion batteries, including zinc and magnesium batteries. The lab explores innovative strategies to enhance electrochemical performance by leveraging crystal water and tailored host structures to improve ion diffusion, structural stability, and interfacial kinetics. Key research directions include the rational design of metal-organic frameworks, layered oxide cathodes, and redox-active organic materials for high-capacity, long-life, and safe energy storage systems.
Professor Tae-Hyoung Tommy Gim's research lab specializes in urban mobility, transportation behavior, and land use planning, with a focus on how urban form, sociodemographics, and attitudes shape travel patterns. The lab investigates the complex interplay between spatial environments, travel mode choices, and policy implications—particularly in the context of urbanization, public health crises like the COVID-19 pandemic, and sustainable city development. Using advanced quantitative methods such as structural equation modeling and meta-regression, the lab explores non-recursive relationships and multicollinearity issues in transportation research.
Professor Mun Yong Yi's research lab focuses on human-computer interaction, particularly on improving individual performance and acceptance of information technologies through psychological and behavioral mechanisms. The lab investigates key factors such as computer self-efficacy, personal goals, observational learning, and emotional design in software training and technology adoption. It also explores the role of emotional expressivity and empathy in conversational agents to reduce user aggression and enhance user experience. The lab integrates theoretical modeling with empirical validation using advanced statistical methods like PLS and graph-based recommender systems to address real-world challenges in technology use and personalization.
Professor Jang Hyun Park's research lab focuses on immunology and cancer biology, with a particular emphasis on γδ T cells, tumor microenvironment, and the role of hypoxia in glioblastoma. The lab investigates the dual functions of γδ T cells—ranging from anti-tumor immunity to immunosuppressive activities—especially in the context of tissue-specific microenvironments such as the brain and mucosal surfaces. Additionally, the lab explores host immune responses in viral infections like SARS-CoV-2, aiming to enhance mucosal immunity and develop next-generation vaccine strategies. Their work bridges innate and adaptive immunity, with translational applications in cancer immunotherapy and infectious disease intervention.
Professor Lu Leng's research lab specializes in biometric recognition, with a strong focus on privacy-preserving and cancelable biometric systems, multi-modal biometric fusion, and advanced feature extraction techniques. The lab develops innovative methods based on discrete cosine transform (DCT), sparse random projection, and phase-based representations such as PalmPhasor to enhance discrimination power and system security. Key research directions include robust feature selection, transposition-based optimization, and secure remote authentication protocols for palmprint and palmvein biometrics.
Professor Je Kyung Seong's research lab focuses on molecular and systems biology approaches to understand the pathophysiology of chronic inflammatory diseases and metabolic disorders. The lab investigates mucin dysregulation in airway diseases such as nasal polyps, oxidative stress adaptation mechanisms in immune cells, and the role of lipid metabolism—particularly plasmalogens and lysophospholipids—in obesity-related metabolic dysfunction. Key research directions include proteomic and lipidomic profiling to identify novel therapeutic targets in atherosclerosis, metabolic syndrome, and chronic inflammation. The lab integrates multi-omics technologies with in vivo and in vitro models to dissect disease mechanisms and signaling pathways.
Professor Jae-Hung Han's research lab specializes in smart structures and active vibration control, focusing on the integration of piezoelectric sensors and actuators in lightweight composite materials for structural health monitoring and dynamic suppression. The lab also pioneers bio-inspired design of flapping-wing micro air vehicles (FWAVs), combining structural mechanics, aerodynamics, and biomimetic actuation—particularly using macro-fiber composites (MFCs)—to achieve efficient, agile flight. Additionally, the lab develops advanced plasma-based flow control devices for aerospace applications, emphasizing efficient, low-cost modeling of electrohydrodynamic actuators. Their work bridges theoretical modeling, experimental validation, and real-world applications in aeronautics and structural dynamics.
Professor Yumie Rhee's research lab focuses on the cellular and molecular mechanisms regulating bone remodeling and formation, with a particular emphasis on the role of parathyroid hormone (PTH) signaling in osteocytes and its impact on cortical bone geometry and mechanical properties. The lab investigates how PTH influences both modeling-based and remodeling-based bone formation, using transgenic mouse models and pharmacological interventions to dissect these pathways. Advanced imaging and deep learning techniques are also employed to improve the assessment of body composition and metabolic activity in bone and muscle tissues.
Professor Youn-Bae Kang's research lab specializes in computational thermodynamics and materials modeling, with a focus on oxide inclusions, slag-metal reactions, and phase equilibria in steelmaking and refractory systems. The lab employs advanced CALPHAD-based thermodynamic modeling and high-temperature experimental techniques to understand and control inclusions, precipitates, and reaction mechanisms in ferroalloys and slags. Key research directions include the development of thermodynamic databases for complex oxide systems (e.g., CaO–MnO–SiO₂, CaO–MnO–Al₂O₃–SiO₂), the prediction of inclusion evolution in high-performance steels, and the mitigation of operational issues such as nozzle clogging in continuous casting.
Professor Chun Sang Yoo's research lab specializes in computational fluid dynamics and combustion science, with a focus on high-fidelity simulations of turbulent and reacting flows. The lab develops advanced numerical methods—particularly improved characteristic boundary conditions—for accurate direct numerical simulations (DNS) of complex combustion phenomena, including lifted flames and auto-ignition processes. Research also extends to multiphase and interfacial dynamics, such as pattern formation in drying drops, using mesoscale modeling and Monte Carlo simulations. The lab's work bridges fundamental fluid dynamics with practical applications in clean energy and propulsion systems.
Professor Jeonghwan Lee's research lab focuses on advancing kidney health through translational and mechanistic studies in chronic kidney disease (CKD) and kidney transplantation. The lab investigates genetic, metabolic, and microbial factors influencing kidney function and disease progression, with a strong emphasis on identifying novel biomarkers and therapeutic targets. Utilizing innovative models such as kidney-on-a-chip and preclinical AKI-to-CKD transition models, the lab explores drug responses, nephrotoxicity, and the role of gut microbiota in systemic inflammation and renal outcomes. The research also integrates population-based genomics and clinical data to uncover genetic determinants of kidney function in diverse populations, particularly in Koreans.
Professor Hwasoo Yeo's research lab specializes in intelligent transportation systems, with a focus on traffic flow modeling, travel-time prediction, and the integration of emerging technologies such as autonomous vehicles and big data analytics. The lab conducts advanced research on dynamic traffic simulation, accessibility analysis for urban services like healthcare, and condition-based maintenance of transportation infrastructure. A key emphasis is placed on leveraging real-world trajectory data and machine learning techniques—particularly recurrent neural networks with attention mechanisms—for improving the accuracy of urban mobility forecasting and decision support systems.
Professor Du Yeol Ryu's research lab specializes in the design and fabrication of advanced nanostructured materials through block copolymer self-assembly, with a focus on controlling microphase separation for applications in nanofabrication, templating, and functional materials. The lab investigates the thermodynamics and kinetics of block copolymer phase behavior under external stimuli such as pressure and temperature, utilizing advanced scattering techniques and surface characterization. Key research directions include directed self-assembly for large-area, high-order nanostructures, hybrid and inorganic-containing block copolymers for ultra-small feature fabrication, and interfacial engineering to control microdomain orientation. The lab also explores functional block copolymers, including porphyrin-based systems, for applications in sensing, energy conversion, and biomedicine.