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 Daegyoum Kim's research lab specializes in fluid dynamics and flow-induced phenomena, with a focus on vortex dynamics, self-excited flapping, and energy harvesting from fluid-structure interactions. The lab investigates fundamental mechanisms in drag-based propulsion, vortex formation behind moving bodies, and the development of efficient energy conversion systems using flow-induced vibrations. Key research directions include the dynamics of flexible and rigid plates, impinging jets, and triboelectric nanogenerators (TENGs) for sustainable oceanic sensing applications. The lab combines experimental techniques such as defocusing digital particle image velocimetry and planar particle image velocimetry to analyze complex three-dimensional flow fields and their implications for force generation and heat transfer.
Professor Kyo Chul Koo's research lab focuses on translational oncology and urological malignancies, with a strong emphasis on prostate cancer and renal cell carcinoma. The lab investigates molecular mechanisms underlying cancer progression, particularly the role of metabolic regulators like LKB1/AMPK and mTOR pathways, and explores repurposed drugs such as metformin for anti-cancer therapy. Additionally, the lab is actively engaged in improving urological interventional procedures, including optimizing ureteroscopy techniques to reduce surgical complications. The integration of molecular diagnostics, targeted therapy, and natural bioactive compounds—such as ACE inhibitors from medicinal mushrooms—further expands the lab’s multidisciplinary approach to precision medicine in urologic diseases.
Professor Hanseok Ko's research lab specializes in computer vision, deep learning, and signal processing with a focus on real-world applications in complex environments. The lab develops advanced deep learning models for challenging tasks such as speech emotion recognition, underwater image enhancement, multi-person tracking, and synthetic data generation for seismic signal analysis. Key research directions include online and real-time tracking, unsupervised and weakly supervised learning, and generative modeling using GANs for data augmentation. The lab emphasizes robustness and generalization in real-world scenarios where data is noisy, incomplete, or unpaired.
Professor Hyun-Yong Yu's research lab specializes in advanced semiconductor materials and devices for next-generation electronics and optoelectronics. The lab focuses on developing high-performance 2D materials-based transistors, such as MoS₂ and germanium (Ge) field-effect transistors, with an emphasis on Schottky barrier engineering, interface passivation, and heteroepitaxial growth techniques. Key research directions include monolithic integration of Ge-based optoelectronic devices for on-chip optical communication, ferroelectric field-effect transistors for neuromorphic computing, and high-efficiency p-i-n photodiodes for infrared detection. The lab combines materials innovation with device physics to address critical challenges in performance, scalability, and functionality.
Professor Simmyung Yook's research lab specializes in the development of advanced nanotheranostic platforms for cancer therapy, with a focus on targeted drug delivery, photothermal therapy, and radiometal-based nanomedicines. The lab integrates nanomaterials such as gold nanoparticles and polymeric microspheres with stimuli-responsive systems—particularly those responsive to tumor microenvironment factors like hypoxia, ROS, and PD-L1 expression—to enhance therapeutic precision and efficacy. Key research directions include the design of multifunctional nanoparticles for triple-negative breast cancer, colorectal cancer, and pancreatic cancer, leveraging targeted delivery, imaging, and combination therapies.
Professor Sang-Wook Yeh's research lab specializes in climate dynamics, with a focus on tropical Pacific climate variability, El Niño–Southern Oscillation (ENSO) dynamics, and their global teleconnections. The lab investigates decadal-scale climate shifts, such as the Pacific Decadal Oscillation (PDO) and North Pacific Gyre Oscillation (NPGO), and examines how changes in the mean state of the ocean and atmosphere modulate ENSO behavior and intensity. Particular attention is given to the emergence of central Pacific (CP) El Niño events and their links to North Pacific climate variability and climate transitions in the late 20th century. The lab also evaluates climate model performance, especially in simulating long-term SST trends and ENSO amplitude, using multimodel ensembles like CMIP3 and CMIP5.
Professor Jaeheung Cho's research lab specializes in bioinorganic chemistry, focusing on the mechanistic studies of metalloenzymes and biomimetic models that activate molecular oxygen. The lab investigates key intermediates such as metal-superoxo, -peroxo, and high-valent metal-oxo species in dioxygen activation processes, with an emphasis on understanding their electronic and geometric structures using advanced spectroscopic and crystallographic techniques. Current research directions include the synthesis and reactivity of transition metal-dioxygen complexes—particularly those involving chromium, cobalt, and nickel—underlying their roles in C–H activation, oxygen atom transfer, and sulfoxidation reactions.
Professor Joonbum Bae's research lab specializes in wearable human-machine interface systems, focusing on soft, stretchable, and flexible electronics for human motion sensing and rehabilitation. The lab develops advanced sensor and actuator technologies using liquid metal-based conductive inks—particularly eutectic gallium-indium (eGaIn)—fabricated via direct ink writing (DIW) for applications in virtual reality, hand prosthetics, and gait rehabilitation. Key research directions include multimodal sensing gloves with haptic feedback, spring-guided hand exoskeletons, and portable gait monitoring systems for clinical diagnostics and therapy. The lab emphasizes the integration of soft robotics, smart materials, and real-time signal processing to enable personalized and quantitative healthcare solutions.
Professor Sung-Rae Cho's research lab specializes in regenerative neuroscience and neurorepair strategies for neurological disorders, with a focus on enhancing endogenous neurogenesis and angiogenesis in brain injury models. The lab investigates the therapeutic potential of growth factors (e.g., BDNF, Noggin), stem cell transplantation, enriched environments, and non-invasive neuromodulation techniques such as rTMS in promoting functional recovery after hypoxic-ischemic and neurodegenerative brain injuries. Key research directions include optimizing cellular and environmental interventions to stimulate neuronal replacement, vascular repair, and synaptic plasticity in preclinical models.
Professor Tae Il Kim's research lab focuses on innate immunity and host defense mechanisms, particularly the role of pattern recognition receptors such as Toll-like receptors and DExD/H-box helicases in sensing microbial components and initiating immune responses. The lab investigates signaling pathways involving transcription factors like IRF3 and IRF7 in response to genotoxic stress and microbial DNA, with a strong emphasis on plasmacytoid dendritic cells and their role in type I interferon production. Additionally, the lab explores translational aspects of immune modulation, including the impact of drugs like metformin on cancer outcomes in diabetic patients and the development of diagnostic criteria for complex inflammatory diseases such as intestinal Behçet’s disease. The integration of molecular immunology, systems biology, and clinical research defines the lab’s interdisciplinary approach.
Professor Hyun Jung Kim's research lab specializes in developing advanced microfluidic organ-on-a-chip platforms to model human intestinal physiology and host-microbiome interactions with high physiological relevance. The lab focuses on creating biomimetic gut-on-a-chip systems that replicate mechanical forces like peristalsis, fluid flow, and the critical anoxic-oxic interface found in the human colon, enabling long-term coculture of human intestinal epithelial cells with commensal and pathogenic microbes. Their work emphasizes the dynamic interplay between host cells, the gut microbiome, and physical microenvironments to study disease mechanisms, drug responses, and microbial community stability.
Professor Youn Soo Kim's research lab specializes in the design and development of advanced functional materials, particularly focusing on zwitterionic and conductive hydrogels, carbon nanotube-based hybrids, and stimuli-responsive polymers for biomedical and energy applications. The lab pioneers innovative strategies in material synthesis—such as microwave-assisted exfoliation and polymerization—to create soft, biocompatible, and highly conductive materials with applications in implantable bioelectronics, flexible sensors, and next-generation batteries. A central theme is the integration of molecular engineering with macroscopic functionality, enabling materials that combine high electrical conductivity, mechanical robustness, and excellent biocompatibility in physiological environments. The lab also explores electrocatalytic materials for sustainable energy conversion, emphasizing metal-free alternatives to platinum-based catalysts.
Professor Young Dok Kim's research lab specializes in the design and synthesis of advanced nanomaterials for energy and environmental applications. The lab focuses on understanding the fundamental surface chemistry of gold clusters and their catalytic properties, particularly in oxygen activation and chemisorption processes. It also develops functional nanomaterials for practical applications, such as superhydrophobic and transparent films with high durability and environmental stability. The lab bridges molecular-level insights with scalable materials engineering to address challenges in catalysis and surface science.
Professor Hoi Ri Moon's research lab specializes in the design, synthesis, and functionalization of metal-organic frameworks (MOFs) and related porous materials for advanced applications in energy, separation, and catalysis. The lab focuses on developing novel MOF-based nanocomposites, particularly through in-situ metal nanoparticle incorporation and MOF-on-MOF architecture, to enhance material performance. Key research directions include hydrogen and isotope separation using quantum sieving effects, controlled thermal conversion of MOFs into functional metal oxides, and the creation of porous materials with tunable porosity and surface chemistry for gas storage and heterogeneous catalysis.
Professor Seokwoo Jeon's research lab specializes in the design, synthesis, and application of advanced nanomaterials for energy, environmental, and optoelectronic technologies. The lab focuses on developing 2D nanomaterials such as graphene, transition metal oxides (e.g., WO₃), and quantum dots, with an emphasis on controlling their electronic and optical properties through innovative synthesis and functionalization strategies. Key research directions include nanocomposite fabrication for enhanced thermal and mechanical performance, solution-phase exfoliation of layered materials, and the engineering of long-lived luminescence in nanoscale phosphors and photocatalysts. The lab also explores novel photonic and nanostructured architectures using phase masks and templating techniques for advanced functional devices.
Professor Byung Jin Cho's research lab specializes in advanced functional materials and devices for sustainable energy and wearable electronics. Key research directions include thermoelectric energy conversion using flexible and lightweight materials, electromagnetic interference shielding using 2D materials like graphene, and the development of doped semiconductor nanostructures for enhanced photocatalytic and electronic applications. The lab also focuses on innovative fabrication techniques such as screen printing and post-synthetic doping to enable scalable, high-performance devices for real-world applications.
Professor Gyun Min Lee's research lab specializes in bioprocess engineering and molecular biology, focusing on enhancing the productivity and stability of recombinant protein production in Chinese hamster ovary (CHO) cells. The lab investigates cellular responses to culture conditions—such as low temperature, metabolic stress, and chemical inducers—using multi-omics approaches (genomic, transcriptomic, and proteomic) to optimize protein yield. Key research directions include understanding apoptosis and autophagy in CHO cells during culture, improving antibody expression stability through gene amplification and anti-apoptotic strategies, and developing robust cell lines for biopharmaceutical manufacturing. The lab also explores the use of agents like sodium butyrate and Bcl-2 overexpression to balance high-level protein expression with cell viability.
Professor Yoon-Uk Heo's research lab specializes in advanced electron microscopy and materials characterization, focusing on the microstructural analysis of metallic alloys at the atomic scale. The lab employs cutting-edge techniques such as electron energy loss spectroscopy (EELS) and convergent beam electron diffraction (CBED) to investigate thickness-dependent properties and phase transformations in materials like Fe-Mn-C alloys. Their work emphasizes quantitative analysis of thin films and foils, particularly through the integration of EELS log-ratio methods and Kossel-Möllenstedt fringe analysis for precise thickness measurement. The lab's research contributes significantly to understanding deformation mechanisms and phase stability in advanced structural materials.
Professor Byung Woo Jhun's research lab specializes in pulmonary and infectious diseases, with a primary focus on nontuberculous mycobacterial (NTM) lung disease and its complications, including chronic pulmonary aspergillosis (CPA). The lab investigates clinical phenotypes, prognostic factors, treatment responses, and antimicrobial resistance patterns in NTM and other difficult-to-treat respiratory infections. A key research direction involves evaluating novel and salvage therapies—such as inhaled amikacin and early cidofovir—particularly in non-immunocompromised patients with severe viral or mycobacterial pneumonia. The lab also explores host-pathogen interactions and long-term outcomes in patients with refractory or recurrent disease.
Professor Yong-Sang Kim's research lab specializes in the development of miniaturized, integrated microsystems for biomedical and environmental sensing applications. The lab focuses on microfluidic devices, lab-on-a-chip systems, and advanced electronic sensors, particularly for point-of-care diagnostics and real-time detection of biomolecules and volatile organic compounds. Key research directions include microfabrication techniques such as nanoimprinting and inkjet printing, functional nanomaterials for sensing (e.g., graphene oxide, TiO₂, Pd/TiO₂), and the integration of electronic and fluidic components for portable, low-cost analytical platforms. The lab also explores novel driving schemes for micro-LED displays and the optimization of thin-film transistors for next-generation flexible and transparent electronics.