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 Sang Yoon Park's research lab specializes in advanced nanomaterials and functional devices for energy storage, wearable electronics, and intelligent sensing. The lab focuses on developing novel carbon-based nanomaterials—such as reduced graphene oxide, carbon nanotubes, and hybrid composites—for high-performance supercapacitors, lithium metal batteries, and flexible sensors. Key research directions include the design of smart materials with dual functionality (e.g., chemical sensitivity with temperature insensitivity), next-generation battery separators, and multifunctional textiles for thermal and electromagnetic invisibility. The lab emphasizes scalable fabrication techniques and real-world applications in sustainable energy and wearable technology.
Professor Hyun-Young Kim's research lab specializes in translational and molecular genetics, focusing on pharmacogenomics, inherited hematological disorders, and ion channel biology. The lab investigates genetic variants affecting drug metabolism (e.g., TPMT in thiopurine therapy), rare genetic diseases such as chronic granulomatous disease and inherited bone marrow failure syndromes, and the molecular mechanisms underlying ion channel regulation. Using advanced genomic and proteomic techniques, including sequencing, flow cytometry, and mass spectrometry, the lab aims to improve diagnosis, risk prediction, and personalized treatment strategies in hematology and immunology.
Professor Ángel E. Lozano's research lab specializes in the design and synthesis of advanced polymeric materials with tailored microstructures for high-performance applications. The lab focuses on developing microporous and ultramicroporous polymers, including porous polymer networks and aromatic polyimides, with exceptional thermal stability and tunable porosity for gas separation and carbon dioxide capture. A key research direction involves the use of rigid, bulky monomers—such as triptycene, adamantane, and aromatic diamines—to create materials that undergo thermal rearrangement into highly stable, functionalized networks like polybenzoxazoles (TR-PBO). The group also explores innovative synthetic methodologies, such as in situ silylation and superacid-catalyzed reactions, to achieve precise control over polymer architecture and surface properties.
Professor Jihye Choi's research lab specializes in veterinary diagnostic imaging, with a focus on advancing ultrasound-based techniques for improved abdominal organ assessment in small animals. The lab investigates novel elastography methods—such as strain and shear wave elastography—to enhance tissue characterization and improve diagnostic accuracy in conditions affecting the liver, kidneys, adrenal glands, and other abdominal organs. Research also extends to optimizing imaging protocols and evaluating interventions that affect renal function and contrast media safety in dogs. The lab emphasizes clinical applicability, reproducibility, and the development of reliable, breed-specific diagnostic criteria.
Professor Weon Kim's research lab focuses on vascular biology and cardiovascular disease prevention, with a particular emphasis on identifying natural compounds and pharmacological agents that modulate endothelial function and vascular inflammation. The lab investigates the protective mechanisms of bioactive molecules such as curcumin, green tea catechins, and drugs like carvedilol and probucol in reducing oxidative stress, inhibiting inflammatory signaling pathways (e.g., NF-κB, JNK, STAT3), and preventing restenosis after stent implantation. Their work bridges molecular pharmacology with translational cardiology, aiming to develop novel therapeutic strategies for chronic smokers and patients at risk of atherosclerotic events.
Professor Namhee Kim's research lab focuses on viral immunology, particularly the host immune response to SARS-CoV-2, including antibody dynamics and seroconversion following vaccination. The lab also investigates molecular mechanisms underlying cancer progression, especially the role of protein interactions such as BIG3 and PHB2 in breast cancer. Additionally, the lab explores viral and host factors in infectious and autoimmune diseases, including thrombosis in hyperthyroidism and human papillomavirus (HPV) genetic variants in cervical carcinogenesis. Their work integrates virology, molecular oncology, and clinical immunology to understand disease pathogenesis and improve diagnostic and preventive strategies.
Professor Si-Wan Kim's research lab specializes in atmospheric chemistry and air quality modeling, focusing on the sources, transport, and transformation of air pollutants such as nitrogen oxides (NOx), carbon monoxide (CO), and ozone. The lab integrates satellite observations, aircraft measurements, and high-resolution chemical transport models—particularly WRF-Chem—to evaluate and improve emission inventories and to understand the impacts of anthropogenic emissions on regional air quality and climate. A central theme is the use of top-down approaches to validate and refine bottom-up emission estimates, especially from power plants, urban areas, and on-road vehicles in complex urban environments like Southern California and the eastern U.S. The lab also investigates long-term trends in air pollution and the effectiveness of emission control policies.
Professor Yannan Li's research lab focuses on the intersection of digital transformation, sustainability, and organizational behavior, with a strong emphasis on how leadership, employee perceptions, and technological innovation drive green innovation and sustainable development. The lab investigates the psychological and behavioral mechanisms underlying employee and consumer responses to ESG initiatives, digital leadership, and eco-friendly marketing strategies. Key research directions include the mediating and moderating roles of digital transformation, perceived value, and organizational pride in shaping green behaviors and performance outcomes. The lab also explores environmental health impacts, particularly in occupational settings, linking chemical exposure to reproductive health outcomes.
Professor In Ah Kim's research lab specializes in translational oncology, focusing on improving cancer treatment outcomes through advanced imaging, molecular targeted therapies, and radiation sensitization strategies. The lab investigates machine learning applications in neuro-oncology to differentiate pseudoprogression from true disease progression in glioblastoma, while also exploring molecular pathways—such as EGFR, HER-2, K-RAS, and HDAC signaling—that influence radiosensitivity in various cancers. Their work integrates clinical imaging, molecular biology, and pharmacologic interventions to develop precision radiotherapy approaches.
Professor Jeong Eun Shin's research lab focuses on neural repair and regenerative medicine, particularly in the context of neonatal hypoxic-ischemic brain injury and spinal cord injury. The lab investigates the therapeutic potential of neural progenitor cell (NPC) transplantation combined with biomaterial scaffolds to enhance neural regeneration and functional recovery. A key focus is optimizing cell survival and integration in the hostile post-injury environment through biological modulation, such as TNF-α pretreatment of NPCs. The lab also explores long-term respiratory outcomes in preterm infants, particularly the impact of bronchopulmonary dysplasia on childhood lung health.
Professor Sung-Min Yoon's research lab specializes in advanced oxide semiconductor materials and thin-film transistor (TFT) technologies, with a strong focus on transparent, flexible, and non-volatile memory devices. The lab explores novel ferroelectric and phase-change materials—such as Sb65Se35, Al:HfO2, and IGZO—engineered via atomic layer deposition for next-generation electronic applications. Key research directions include synaptic transistor devices for neuromorphic computing, high-performance and stable TFTs with low-temperature processes, and the development of transparent and flexible electronics for wearable and portable systems.
Professor Kyung-Youl Baek's research lab specializes in the design and synthesis of advanced functional polymers and porous materials for environmental and energy applications. Key research directions include the development of star-shaped polymers with microgel cores for selective molecular recognition and separation, the postsynthetic modification of metal-organic frameworks—particularly ZIF-8—for enhanced gas adsorption (e.g., CO₂ and radioactive iodine), and the creation of rigid, luminescent polysilsesquioxane architectures for optoelectronic applications. The lab emphasizes precision synthesis, molecular-level control, and structure-property relationships to address challenges in environmental remediation and sustainable materials.
Professor Ki-Suk Lee's research lab specializes in spintronics and nanomagnetic systems, focusing on the manipulation of spin waves and magnetic vortices for next-generation ultrafast and energy-efficient logic and memory devices. The lab investigates traveling spin waves in magnonic crystals and interferometric structures for reconfigurable logic gates, while also exploring ultrafast vortex-core switching dynamics driven by tailored magnetic fields. A key research direction involves designing functional nanostructures—such as conductivity-gradient hosts—for stable lithium-metal anodes in high-energy-density batteries, bridging spintronic and energy storage applications. The lab combines micromagnetic simulations, analytical modeling, and experimental validation to uncover fundamental mechanisms in dynamic magnetic phenomena.
Professor Sunghyouk Park's research lab specializes in metabolomics and bioanalytical chemistry, focusing on the discovery of noninvasive metabolic biomarkers for early cancer detection using advanced NMR and mass spectrometry techniques. The lab develops real-time metabolic monitoring methods in live cells, particularly leveraging isotopic labeling and heteronuclear NMR to study cancer cell metabolism and redox dynamics. Key research directions include urine and tissue-based metabolomic profiling for gastric, bladder, and breast cancers, as well as investigating metabolic reprogramming and drug resistance mechanisms in glioblastoma. The lab also explores the structural and dynamic properties of cytoskeletal proteins using solution NMR, linking molecular structure to biological function.
Professor Yong Il Lee's research lab specializes in sedimentary geology, provenance analysis, and basin evolution, with a focus on understanding the tectonic and climatic history of East Asia through high-resolution sedimentological and geochronological studies. The lab employs advanced techniques such as U–Pb dating of detrital zircons and mineralogical analysis to reconstruct crustal evolution and paleoenvironmental changes across the Korean Peninsula and surrounding regions. Key research directions include the depositional history of Cretaceous and Paleozoic basins, storm-influenced sedimentation in ancient ramps, and paleoclimatic reconstructions using lacustrine and fluvial sediment cores. The lab also investigates diagenetic processes such as albitization to improve provenance interpretations and preserve primary mineralogical signals.
Professor Seog Ju Kim's research lab focuses on the neurobiological and psychological underpinnings of trauma-related disorders, particularly posttraumatic stress disorder (PTSD), ADHD, and sleep-wake disturbances in adolescents and young adults. The lab employs advanced neuroimaging techniques such as diffusion tensor imaging (DTI) to investigate white matter integrity and neurochemical markers like GABA in brain regions associated with emotion regulation and attention. A key research direction involves understanding how circadian phenotypes—such as morningness-eveningness preferences—and sleep patterns, including weekend catch-up sleep, contribute to cognitive and psychiatric outcomes. The lab also evaluates the efficacy of trauma-focused psychotherapies, such as narrative exposure therapy, in refugee populations and clinical populations with sleep and mood disorders.
Professor Byeong-Ho Jeong's research lab specializes in clinical pulmonary medicine, with a primary focus on respiratory infections, particularly Mycobacterium avium complex (MAC) lung disease and Mycobacterium abscessus complex infections. The lab investigates optimal antibiotic regimens—especially macrolide-based therapies—evaluating pharmacokinetic responses and treatment efficacy in both cavitary and noncavitary forms of the disease. Additionally, the lab contributes to perioperative respiratory care by identifying risk factors for postoperative pulmonary complications and developing predictive scoring systems to improve patient outcomes. Their work also extends to bronchoscopy outcomes, aiming to enhance diagnostic and therapeutic success in airway foreign body removal.
Professor Dae‐Shik Seo's research lab specializes in advanced liquid crystal materials and alignment technologies, focusing on the development of novel alignment layers and nanostructured materials for next-generation display and optoelectronic devices. The lab investigates the fundamental mechanisms of pretilt angle generation in nematic liquid crystals using various polymer and nanomaterial-based alignment films, including rubbed polyimides, carbon nanotubes, and quantum dot-doped systems. Key research directions include the microstructure-property relationships of alignment layers, solution-processable nanocomposites, and alignment control without conventional alignment layers through intrinsic molecular and nanostructural engineering. The lab also explores electrically and mechanically tunable liquid crystal systems with applications in high-performance displays and smart optical devices.
Professor Dong-Soo Kim's research lab specializes in biomedical engineering and geotechnical systems, focusing on low-current measurement technologies for biomedical applications and the mechanical behavior of foundation systems under dynamic loads. The lab investigates noise optimization in electronic circuits for sensitive biological signal detection and explores innovative foundation designs—such as piled rafts and rocking foundations—to enhance structural resilience in seismic zones. Research also extends to pharmacological mechanisms, particularly the psychoneuroimmunological effects of modafinil and the regulation of vascular signaling pathways involving PDE1A1 and cGMP in nitrate tolerance. These interdisciplinary efforts bridge electronics, biomedicine, and civil engineering to address clinical and infrastructural challenges.
Professor Wonyoung Choe's research lab specializes in the design, synthesis, and characterization of advanced functional materials, with a focus on metal–organic frameworks (MOFs), metal–organic polyhedra (MOPs), and porphyrin-based frameworks. The lab explores structure–property relationships in these materials to enable applications in drug delivery, catalysis, gas storage, and energy-related technologies. A key research direction involves developing stimuli-responsive and tunable MOF systems, including enzyme-responsive gatekeepers for targeted drug delivery and covalently cross-linked MOPs for enhanced porosity and processability. The lab also investigates the electronic and structural behavior of porphyrin-based materials on metal surfaces, contributing to fundamental understanding of molecular assembly and surface interactions.