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 Soo Ji Kim's research lab specializes in music therapy interventions that integrate rhythmic auditory stimulation and musical instrument playing to enhance motor, cognitive, and social functioning in individuals with neurological conditions. The lab focuses on leveraging the intrinsic structure of music—particularly rhythm and timing—to support gait rehabilitation in cerebral palsy and Parkinson’s disease, improve speech and voice outcomes in post-stroke patients, and enhance social skills in children with autism spectrum disorder. A central theme is the interdisciplinary application of music-based therapies to address sensorimotor and neurocognitive impairments across the lifespan.
Professor Jong‐Min Lee's research lab specializes in neuromorphic engineering and neuroscience, focusing on the development of bio-inspired computing systems and the neuroimaging of neurodegenerative diseases. The lab investigates brain-inspired optoelectronic devices for high-density visual processing, as well as the functional and structural brain network changes associated with Parkinson’s disease, mild cognitive impairment, and Alzheimer’s disease. Using advanced neuroimaging techniques such as fMRI and connectivity analysis, the lab aims to uncover the neural mechanisms underlying cognitive decline and motor symptoms in neurodegenerative conditions.
Professor Donghwi Jung's research lab specializes in water resources systems engineering, focusing on enhancing the resilience and reliability of water distribution systems through advanced modeling, monitoring, and optimization techniques. Key research directions include burst detection using statistical process control and nonlinear Kalman filtering, robust design of water distribution networks under uncertainty, optimal sensor placement for system monitoring, and drought index modeling using remote sensing and statistical analysis. The lab also develops metaheuristic optimization algorithms for hydrological model calibration, emphasizing multi-objective performance and adaptive search strategies. These efforts aim to improve system functionality, reduce water loss, and support climate-resilient infrastructure planning.
Professor Seong Woo Jeon's research lab specializes in environmental sustainability, with a focus on urban climate dynamics, climate change adaptation, and ecosystem service assessment. The lab investigates urban heat island effects, land-use change, and desertification using remote sensing and spatial modeling techniques, while also developing decision-support tools for climate resilience and policy planning. Key research directions include vulnerability assessment to extreme weather events, carbon storage in protected areas, and the impact of urbanization on biodiversity and air quality.
Professor Seockheon Lee's research lab specializes in advanced oxidation processes for environmental remediation, focusing on the degradation of persistent organic pollutants such as endocrine-disrupting chemicals and pathogens. The lab investigates the mechanisms and efficiency of UV-based processes, including UV/sulfate radical and UV/TiO2 photocatalysis, to enhance water treatment technologies. Key research directions include optimizing reaction conditions, identifying primary reactive species, and evaluating the impact of water matrix components on treatment performance. The lab also explores the application of these processes for inactivation of microbial contaminants, including viruses, using sensitive molecular detection methods.
Professor Dae-Hyeok Lee's research lab specializes in the development of advanced brain-computer interface (BCI) systems, with a strong focus on non-invasive electroencephalogram (EEG)-based mental state classification for aviation safety. The lab pioneers deep learning-driven approaches to detect and classify critical pilot mental states such as fatigue, workload, and distraction in realistic flight environments. Their work emphasizes real-time, reliable, and non-invasive monitoring of cognitive conditions to prevent human-error-related accidents.
Professor Dae-Hyuk Kweon's research lab specializes in membrane biology and protein-membrane interactions, with a focus on the structural and dynamic mechanisms underlying membrane fusion in cellular trafficking. The lab investigates SNARE proteins and their role in neurotransmitter release, endocytosis, and exocytosis, using advanced biophysical techniques such as electron paramagnetic resonance (EPR) and fluorescence spectroscopy. A central theme is understanding how protein complexes like the SNARE complex couple with lipid membranes to drive membrane fusion, including key intermediates such as hemifusion and fusion pore formation. The lab also explores protein purification and refolding strategies using engineered polycationic tags, demonstrating innovative applications in structural biology and biotechnology.
Professor Omrane Guedhami's research lab focuses on corporate governance, financial reporting quality, and the role of institutional mechanisms such as auditor choice and disclosure standards in mitigating agency conflicts between controlling shareholders and minority investors. The lab investigates how political connections, ownership concentration, and the separation of ownership and control affect corporate transparency, capital structure, and cost of equity. Using large-scale international datasets, the lab emphasizes empirical analysis of governance structures in emerging and developed markets, particularly in Asia and Western Europe.
Professor Hak-Joon Kim's research lab focuses on interdisciplinary studies at the intersection of educational technology, cognitive science, and health informatics. The lab investigates how digital media and online platforms influence learning outcomes, cognitive function, and information behavior across diverse age groups, particularly adolescents and older adults. It also explores advanced signal processing techniques for non-destructive testing in engineering applications, such as ultrasonic inspection of critical infrastructure. The lab combines qualitative, quantitative, and computational methods to address real-world challenges in education, aging, and industrial safety.
Professor Jae Hak Cheong's research lab specializes in advanced radiation detection and monitoring technologies, with a focus on developing functional scintillators for on-site and in-situ detection of radioactive isotopes such as cesium and strontium. The lab emphasizes the design and optimization of plastic scintillators—particularly those incorporating perovskites, CdTe, or high-Z materials—to enhance detection efficiency and reliability in nuclear decommissioning and environmental monitoring. Utilizing Monte Carlo simulations (MCNP, GEANT4) and innovative material integration, the lab advances portable, high-performance radiation detection systems for practical applications in nuclear safety and radiological sensing.
Professor Mihue Jang's research lab specializes in developing advanced RNA-based nanotechnologies and gene editing platforms for cancer therapy. The lab focuses on designing carrier-free, multifunctional delivery systems—such as RNA nanoparticles and Cas9 ribonucleoproteins—for precise, systemic, and targeted delivery of therapeutic agents like siRNA, miRNA, and gene-editing machinery. Key research directions include overcoming drug resistance in pancreatic and other aggressive cancers by targeting cancer-associated fibroblasts and cancer stem cells, and enabling efficient multiplexed gene editing in suspension immune cells to enhance cancer immunotherapy. The lab integrates synthetic biology, RNA nanotechnology, and CRISPR/Cas9 systems to create innovative solutions for complex, multifactorial diseases.
Professor Sandy Jeong Rhie's research lab specializes in critical care pharmacotherapy, with a focus on optimizing antibiotic use, antimicrobial stewardship, and personalized medication management in critically ill patients. Key research directions include the impact of antibiotics on clinical outcomes—particularly immune checkpoint inhibitors in cancer patients—and the role of pharmacists in improving patient outcomes through multidisciplinary interventions. The lab also investigates therapeutic drug monitoring, such as colistin and linezolid, to balance efficacy and safety in intensive care settings.
Professor Tak Kyu Oh's research lab specializes in clinical and translational research focusing on perioperative medicine, oncology, and public health outcomes. The lab investigates biomarkers such as the CRP/albumin ratio for predicting mortality in critically ill patients, explores the impact of anesthetic techniques on long-term cancer survival, and examines the association between postoperative opioid use and cancer recurrence. Additionally, the lab addresses health disparities, particularly the influence of socioeconomic status on infectious disease risk, including COVID-19, and evaluates respiratory comorbidities in infectious and oncologic contexts. Their work bridges critical care, surgical oncology, and population health to improve patient outcomes through evidence-based strategies.
Professor Sungyeol Choi's research lab specializes in advanced nuclear energy systems and associated safety challenges, with a focus on radioactive aerosol behavior, spent fuel management, and in-situ monitoring in harsh nuclear environments. The lab investigates the aerodynamic and chemical characteristics of radioactive particles during decommissioning, develops innovative sensing technologies like precision LIBS for molten salt reactors, and models complex phenomena such as CRUD (Corrosion-Related Unidentified Deposit) formation in pressurized water reactors. Their work bridges nuclear engineering, materials science, and environmental safety, aiming to enhance the sustainability and safety of nuclear energy systems.
Professor SangJoon Shin's research lab specializes in advanced computational mechanics, fluid-structure interaction, and smart structural systems, with a focus on developing innovative design and analysis methodologies for aerospace and renewable energy applications. The lab pioneers non-intrusive model order reduction techniques, particularly using machine learning and proper orthogonal decomposition, to accelerate high-fidelity simulations of complex flow and structural dynamics. Key research directions include aerodynamic optimization of wind turbine and rotor blades, active control of rotorcraft vibrations using smart materials, and the development of reduced-order models for parametric flow field analysis. The lab also explores geometrically nonlinear finite elements and multi-body dynamics for flapping wing micro-air vehicles and moving structures.
Professor Hyeong Gon Yu's research lab specializes in retinal and uveal diseases, with a focus on understanding the underlying pathophysiology of ocular conditions such as retinitis pigmentosa, diabetic retinopathy, pathologic myopia, and uveitis. The lab employs advanced proteomic and immunophenotypic analyses to identify biomarkers and elucidate immune mechanisms driving disease progression, particularly in microvascular and inflammatory eye disorders. A key emphasis is placed on translating molecular findings into clinical insights for improved diagnosis, treatment, and patient outcomes.
Professor Junho Chung's research lab specializes in translational immunology and targeted cancer therapy, focusing on the molecular mechanisms of immune responses and receptor signaling in disease. The lab investigates stereotypic antibody responses in viral infections, such as SARS-CoV-2, and explores therapeutic targets like gremlin-1, VCAM-1, and HER2 mutants in cancer. Utilizing advanced techniques such as phage display and structural immunology, the lab develops novel biologics—including chimeric antibodies and inhibitors—for precision medicine applications. Current work emphasizes understanding receptor-ligand interactions and designing therapeutics with improved specificity and reduced off-target effects.
Professor Chulbom Lee's research lab specializes in transition metal-catalyzed organic transformations, with a strong focus on the development of novel catalytic mechanisms involving reactive intermediates such as metal vinylidenes, alkenylidenes, and radical species. The lab explores visible-light-driven photocatalysis for selective C–H functionalization and C–X bond activation, enabling mild and efficient synthesis of complex organic molecules. A key theme is the design of sustainable catalytic systems that operate under ambient conditions, often leveraging unique reactivity patterns of iridium and rhodium complexes. The group also investigates photophysical processes in fluorescent dyes, particularly photoconversion artifacts in super-resolution imaging, linking fundamental mechanistic insights to practical applications in biophysics and materials science.
Professor Hogyeom Kim's research lab specializes in the design and development of reconfigurable terahertz and millimeter-wave (mmWave) devices using liquid crystal (LC) and polymer network liquid crystal (PNLC) technologies. The lab focuses on advancing high-efficiency, beam-scanning, and polarization-controllable reflectarrays and metasurfaces for next-generation wireless communication systems, particularly for 6G applications. Key research directions include low-loss unit cell design, dynamic phase and polarization control, and innovative biasing techniques for fast and low-voltage operation. The lab also emphasizes accurate electromagnetic characterization and equivalent circuit modeling of anisotropic LC materials at mmWave frequencies.
Professor Hyunjung Kim's research lab focuses on interdisciplinary studies at the intersection of health, urban planning, and data-driven decision making. Her work explores the physiological impacts of exercise on metabolic health, particularly through myokines like irisin, while also investigating the role of environmental factors—such as walkability—in shaping urban living and public health outcomes. Additionally, the lab examines the integration of big data and business intelligence for sustainable policy and industry development, especially in response to global challenges like the COVID-19 pandemic. The lab emphasizes evidence-based solutions that bridge biological, urban, and technological domains.