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 Klaus Heese's research lab focuses on neuroinflammation and neurotrophin biology in the context of neurodegenerative diseases, particularly Alzheimer’s disease. The lab investigates microglial activation, neurotrophin signaling (especially NGF), and the molecular mechanisms underlying neuronal survival and degeneration. In parallel, the lab explores sustainable biotechnological applications, including the discovery of novel enzymes from marine microorganisms and the green synthesis of silver nanoparticles using seaweed-derived biomolecules. These interdisciplinary efforts bridge neuroscience, molecular immunology, and environmental biotechnology.
Professor Sangchul Lee's research lab specializes in urological oncology and minimally invasive surgical techniques, with a focus on renal cell carcinoma and bladder cancer. The lab investigates predictive scoring systems for percutaneous nephrolithotomy (e.g., S-ReSC), evaluates surgical outcomes for renal tumors using techniques like RAPN and RPN, and explores molecular mechanisms of chemotherapy resistance, such as c-FLIP in bladder cancer. Additionally, the lab develops point-of-care diagnostic platforms, such as LFIA for PSA detection, demonstrating a translational approach from bench to bedside.
Professor Chang-Soo Han's research lab specializes in the development of advanced nanomaterials and flexible electronic systems inspired by biological sensory mechanisms. The lab focuses on creating high-performance transparent conductive films, quantum dot nanocomposites, and wearable multimodal sensors for biomedical and human-machine interface applications. Key research directions include the scalable synthesis of II-VI and III-V semiconductors, self-powered sensing devices, and graphene-based transparent and flexible electronics. The lab emphasizes materials innovation for real-world applications in health monitoring, smart textiles, and next-generation optoelectronics.
Professor Jung-Hyun Lee's research lab specializes in interdisciplinary studies at the intersection of human-centered design, machine learning, and biomedical engineering. The lab focuses on developing intelligent systems that enhance human well-being through ergonomic product design, fair and robust machine learning algorithms, and emotion-aware artistic technologies. Key research directions include human factor analysis in product interaction, fairness in dimensionality reduction for data science, and the therapeutic potential of art and emotional expression in non-professionals. The lab also investigates real-world applications in medical imaging, particularly in metal artifact reduction using deep learning, and driver identification that adapts to diverse road environments.
Professor Young-Rok Kim's research lab specializes in the development of advanced biomaterials and nanomaterials for biomedical and diagnostic applications. The lab focuses on designing smart drug delivery systems using biodegradable polymers such as polyhydroxyalkanoates and starch-based magnetic microparticles, with an emphasis on targeted and controlled release. A key research direction involves the creation of highly sensitive, paper-based biosensors and immunoassays using gold nanoparticles and surface-enhanced Raman scattering (SERS) for rapid, on-site detection of foodborne pathogens like *Escherichia coli* O157:H7. The lab also pioneers functionalized biomimetic membranes and nanoparticle-based platforms for diagnostics and therapeutic delivery.
Professor Jae Geun Kim's research lab specializes in the design and synthesis of advanced nanomaterials for energy and environmental applications, with a strong focus on nanostructured metal oxides and hybrid composites. The lab investigates the relationship between material morphology, electronic structure, and functional performance, particularly in lithium-ion batteries, photocatalysis, and soil environmental systems. Key research directions include the development of one-dimensional nanofibers, doping strategies for enhanced conductivity, and sustainable educational programs integrating environmental science and ecological literacy. The lab combines materials synthesis, electrochemical characterization, and real-world applications to address challenges in energy storage and environmental sustainability.
Professor Ji-Yeon Yang's research lab specializes in environmental health and toxicology, focusing on the impact of airborne pollutants and hazardous chemicals on human health. The lab investigates respiratory and inflammatory responses induced by particulate matter (PM2.5/PM10), tobacco smoke exposure (including second- and third-hand smoke), and chemicals released from artificial turf in school environments. A key research direction involves developing biomarkers and exposure assessment tools, such as urinary cotinine levels and fumigant compounds with dual acaricidal and colorimetric properties, to improve risk assessment and public health interventions.
Professor Sung Oh Cho's research lab specializes in the design, synthesis, and application of advanced nanomaterials for energy and environmental technologies. Key research directions include plasmonic photocatalysts for solar energy conversion, quantum dot-sensitized photoelectrodes for solar fuel generation, and nanostructured materials for hydrogen storage and superhydrophobic surfaces. The lab employs innovative fabrication techniques such as sonochemistry, electron beam irradiation, and solution-based deposition to create functional nanoarchitectures with tunable optical, electronic, and surface properties.
Professor Jung-Han Kim's research lab specializes in thyroid cancer biology and clinical oncology, with a focus on understanding the molecular mechanisms underlying cancer progression, particularly metastasis and lymph node involvement. The lab investigates key regulators such as matrix metalloproteinase-9 (MMP-9) and the effects of natural compounds like berberine on cancer cell invasion. They also develop predictive tools such as nomograms to personalize risk assessment for central lymph node metastasis in papillary thyroid cancer (PTC), aiming to improve clinical decision-making. Additionally, the lab explores the impact of patient-related factors like BMI and body surface area on tumor characteristics and surgical outcomes.
Professor Hwa-Jin Lee's research lab focuses on translational biomedical research spanning regenerative medicine, epigenetics, and neurophysiological regulation. The lab investigates epigenetic mechanisms underlying developmental health outcomes, particularly through DNA methylation analysis in prenatal and perinatal contexts. It also explores non-invasive therapeutic interventions—such as mind-body practices like Tai Chi Qigong and Turo dance—for improving autonomic nervous system balance and quality of life in aging and stress-related conditions. Additionally, the lab develops computational tools for cancer origin prediction using multi-omics data, integrating chromatin architecture with somatic mutation patterns.
Professor Wonbin Hong's research lab specializes in advanced antenna technologies for next-generation wireless communications, with a strong focus on millimeter-wave (mmWave) and sub-THz antennas for 5G and beyond. The lab pioneers innovative, compact, and integrated antenna solutions—such as phased arrays, transparent antennas on OLED displays, and electrically small antennas—designed for seamless integration into compact mobile and IoT devices. Key research directions include beamforming, reconfigurable polarization, miniaturization, and high-efficiency radiation in constrained form factors. The lab emphasizes practical, prototype-driven development, combining simulation, fabrication, and real-world measurements to address real-world propagation challenges.
Professor Moosung Lee's research lab specializes in advancing quantitative, label-free, and volumetric imaging technologies for biological and biomedical applications. The lab focuses on developing innovative optical microscopy techniques—such as holographic microscopy, optical sectioning, and inverse scattering methods—to enable high-resolution, three-dimensional visualization of living cells and tissues without the need for fluorescent labels or genetic tags. Key research directions include quantitative phase imaging, structural characterization of brain tissues in disease models (e.g., Alzheimer’s), and the integration of machine learning with correlative imaging to enhance 3D organelle analysis. The lab emphasizes physical principles-driven imaging solutions that combine optics, wave physics, and computational methods for dynamic and accurate biological imaging.
Professor Moosung Lee's research lab focuses on educational leadership, particularly instructional leadership and its impact on student learning within diverse international and cross-national contexts. The lab investigates how macro-level factors—such as national economic development, cultural values, and policy environments—influence school leaders' time allocation and leadership practices. A central theme is the examination of leadership in international and high-stakes accountability systems, especially in East Asia and the Asia-Pacific region, with a strong emphasis on International Baccalaureate (IB) schools and district-level policy networks. The lab employs mixed-methods and comparative approaches, integrating quantitative data analysis with qualitative case studies to explore the interplay between leadership, professional collaboration, and educational outcomes.
Professor Junyoung Mun's research lab specializes in advanced energy storage materials, with a primary focus on developing high-performance cathode and anode materials for rechargeable batteries, particularly lithium-ion and sodium-ion batteries. The lab explores innovative materials such as over-lithiated layered oxides, bismuth oxide anodes, and organic redox flow batteries using transition metal complexes, emphasizing structural stability, high energy density, and enhanced rate capability. A key research direction involves understanding and engineering electrode-electrolyte interphases to improve cycle life and low-temperature performance, especially through novel electrolyte formulations and surface passivation strategies.
Professor Sun-Kyung Kim's research lab specializes in nanophotonics and nanomaterials, focusing on the design and fabrication of semiconductor nanowires and nanostructured surfaces for advanced optoelectronic and photovoltaic applications. The lab explores light-matter interactions in low-dimensional semiconductors, particularly how morphology, heterostructuring, and surface engineering enhance light absorption and emission. Key research directions include optical antenna effects in nanowires, plasmonic light trapping, and hierarchical nanostructures for antireflective and self-cleaning surfaces.
Professor Kyu Hong Kim's research lab specializes in advanced computational modeling and optimization techniques for engineering systems, with a focus on fluid dynamics, structural mechanics, and biomedical imaging. The lab develops high-performance simulation methods for applications ranging from high-speed train aerodynamics and arc-heated wind tunnel flows to ultrasound beamforming and medical image reconstruction. Key research directions include computational fluid dynamics (CFD), dimensionality reduction for real-time signal processing, and multi-objective optimization in renewable energy systems such as wind turbines. The lab also contributes to clinical decision support through prognostic modeling in neurosurgical outcomes.
Professor Dong Hoon Kim's research lab focuses on epigenetic regulation, particularly the role of histone deacetylases (HDACs) in cancer development and metabolic diseases. The lab investigates the molecular mechanisms of HDAC inhibitors, such as psammaplin derivatives, to understand their anti-tumor and anti-angiogenic effects. A key research direction involves exploring the epigenetic and cellular consequences of histone acetylation dynamics in carcinogenesis and adipose tissue biology. The lab also examines the broader functions of HAT/HDAC enzymes beyond gene expression, including their roles in cell cycle regulation and cytoskeletal organization.
Professor Sangbaek Park's research lab specializes in the development of advanced functional materials and devices for next-generation flexible, stretchable, and transparent energy systems. The lab focuses on designing self-healing and conductive nanomaterials, such as metal-polymer composites and doped carbon nanostructures, for high-performance energy storage and conversion applications. Key research directions include stretchable microsupercapacitors, lithium–sulfur batteries with hierarchical porous hosts, and photocatalysts with engineered internal electric fields to enhance hydrogen production. The lab integrates materials innovation with device engineering to enable wearable, biocompatible, and energy-autonomous electronic systems.
Professor Jaejoon Lee's research lab focuses on the intersection of rheumatology, metabolic disorders, and systemic inflammation, with a particular emphasis on the pathogenic roles of uric acid, metabolic syndrome, and environmental factors like nicotine in autoimmune and chronic inflammatory diseases. The lab investigates mechanisms linking hyperuricemia, metabolic syndrome, and comorbid conditions such as gout, cardiovascular disease, and lung dysfunction, using large-scale population-based cohort studies and preclinical models. Key research directions include the immunomodulatory effects of nicotine in arthritis, the role of NETosis in disease progression, and the therapeutic potential of agents like Tubastatin A in inflammatory joint diseases. The lab integrates clinical epidemiology with translational immunology to identify modifiable risk factors and novel therapeutic targets in rheumatic and metabolic diseases.
Professor Jung Mi Oh's research lab specializes in clinical pharmacology and patient-centered medication management, with a focus on optimizing drug therapy in vulnerable populations such as transplant recipients and patients with chronic diseases. The lab investigates pharmacogenomics, particularly CYP3A5 and CYP3A4 polymorphisms, to personalize immunosuppressive therapy and improve outcomes in kidney transplant patients. It also explores drug-related problems, anemia in inflammatory conditions, and supportive care interventions like rhEGF for chemotherapy-induced oral mucositis. The lab emphasizes multidisciplinary, patient-centered care models using service design and implementation science to enhance medication safety and quality of life.