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 Ghiseok Kim's research lab specializes in the development of advanced sensing and machine learning techniques for agricultural and environmental monitoring. The lab focuses on leveraging UAV-based imaging, thermal and spectroscopic sensing, and deep learning for automated detection, counting, and viability assessment of pests, crops, and plant health. Key research directions include intelligent pest monitoring using pheromone trap images, thermal imaging for seed viability and water stress detection in fruit trees, and spectral analysis for non-destructive quality evaluation of agricultural products.
Professor Heonjun Yoon's research lab specializes in the design, modeling, and reliability analysis of smart electromechanical systems with a focus on vibration energy harvesting and structural health monitoring. The lab develops advanced analytical and computational models for piezoelectric energy harvesters, including energy harvesting skins and phononic crystal-based devices, to enhance energy conversion efficiency and system durability. Key research directions include multi-scale feature extraction for fault diagnosis, electromechanical coupling modeling, and reliability assessment under physical uncertainties such as material variability and manufacturing tolerances. The lab also explores innovative concepts like segmented piezoelectric defects and synthetic negative capacitors to overcome limitations in bandgap tuning and energy harvesting performance.
Professor Seon-Jin Choi's research lab specializes in the design and fabrication of advanced nanomaterials for next-generation sensing applications, particularly in the field of noninvasive medical diagnostics. The lab focuses on developing highly sensitive and selective gas sensors using functionalized metal oxide nanostructures—such as WO₃ hemitubes and nanotubes—combined with noble metal nanoparticles and 2D materials like graphene. Key research directions include breath analysis for early detection of diseases like diabetes and halitosis, humidity sensing for wearable electronics, and ultrafast, low-cost fabrication techniques such as pulsed light reduction and electrospinning. The lab emphasizes real-time, portable, and wearable sensing platforms with enhanced performance through nanostructure engineering and surface functionalization.
Professor Shunan Zhang's research lab specializes in cognitive science and human-AI interaction, focusing on how individuals perceive, interact with, and become dependent on artificial intelligence in educational and decision-making contexts. The lab investigates the psychological mechanisms underlying AI usage behaviors—such as overreliance, self-disclosure in AI interactions, and learning through social media features like Danmu comments—using computational modeling and empirical methods. Key research directions include the application of Bayesian and sequential sampling models to understand human decision-making, the role of emotional and social cues in AI instruction, and the design of AI systems that support long-term learning and engagement.
Professor Young-Bin Park's research lab specializes in advanced functional nanomaterials and their applications in thermal management and structural health monitoring. The lab focuses on developing high-performance nanofluids, such as CuO-graphene oxide nanocomposite nanofluids, for enhanced heat transfer in boiling applications, aiming to improve critical heat flux and thermal conductivity. Additionally, the lab pioneers non-destructive, self-sensing structural health monitoring systems using electrical resistance imaging and convolutional neural networks for carbon fiber-reinforced plastics, enabling real-time damage detection and localization. These interdisciplinary efforts bridge materials science, nanotechnology, and smart structural systems.
Professor Yong‐Sun Bahn's research lab focuses on the molecular mechanisms underlying fungal pathogenesis, particularly in the human pathogenic yeast *Cryptococcus neoformans*. The lab investigates conserved signaling pathways—such as the Pbs2-Hog1 MAPK cascade, cAMP signaling, and the unfolded protein response (UPR)—that regulate stress responses, morphological transitions, and virulence. By integrating molecular genetics, cell biology, and comparative genomics, the lab uncovers how these pathways have evolved to support fungal survival and pathogenicity in diverse environments. A central theme is understanding how fungal pathogens adapt to host environments through signaling network rewiring and evolutionary innovation.
Professor Sung Wng Kim's research lab specializes in advanced functional materials, with a primary focus on electron-doped oxides and thermoelectric materials. The lab pioneers the creation of electrides—materials where electrons act as anions—by engineering sub-nanometer-sized cages in complex oxides like 12CaO·7Al₂O₃ (C12A7), enabling unique electronic properties such as metallic conductivity, low work function, and superconductivity. A key research direction involves boundary engineering in thermoelectric materials to decouple and optimize thermal and electrical transport, significantly enhancing the figure of merit (zT). The lab also explores high-temperature melt chemistry and solidification processes to stabilize exotic states, including solvated electrons and electron-doped phases, for next-generation energy applications.
Professor Byung Cheon Lee's research lab focuses on redox biology and the molecular mechanisms underlying oxidative stress, aging, and cellular homeostasis. The lab investigates the roles of selenoproteins and methionine redox modifications in regulating immune responses, antioxidant defense, and longevity, with a particular emphasis on enzymes like methionine sulfoxide reductase B1 (MsrB1) and selenoproteins such as R and O. The research integrates molecular biology, redox signaling, and translational studies to explore how these mechanisms influence health, disease, and stress resilience in mammals and plants. Additionally, the lab examines the impact of dietary interventions, including selenium and protein restriction, on aging and metabolic regulation.
Professor Jungwoo Shin's research lab specializes in sustainable technology adoption and consumer behavior, with a strong focus on environmental innovation, green consumption, and the role of digital technologies such as cloud computing and artificial intelligence in promoting eco-friendly practices. The lab conducts quantitative, data-driven studies using advanced econometric models—such as Bayesian multivariate probit and mixed logit models—to analyze consumer preferences, attitude-behavior gaps, and the economic impacts of eco-labeling and green infrastructure. Key research directions include the diffusion of green products, pro-environmental behavior prediction, and the design of sustainable technology ecosystems, particularly in the context of Korea’s environmental policies and emerging markets.
Professor Kyung-Jin Lee's research lab specializes in spintronics and nanomagnetic devices, focusing on current-induced magnetic phenomena such as spin-transfer torque switching and magnetization dynamics in nano-scale structures. The lab investigates the fundamental mechanisms of voltage- and current-driven resistance switching in solid electrolyte memories, with particular emphasis on the formation and evolution of nanoscale conducting filaments. Using advanced in situ characterization techniques like transmission electron microscopy, the lab combines theoretical modeling with experimental validation to explore next-generation magnetic and resistive memory technologies. Their work bridges the gap between nanoscale physics and practical device applications in non-volatile memory and low-power electronics.
Professor Javad Sharifi-Rad's research lab specializes in the pharmacological and nutraceutical evaluation of bioactive natural compounds, with a primary focus on polyphenols such as apigenin, resveratrol, curcumin, naringenin, and kaempferol. The lab investigates their therapeutic potential in preventing and managing chronic diseases, including cancer, neurodegenerative disorders, cardiovascular diseases, and metabolic syndromes, with strong emphasis on in vivo and clinical translational research. The team also explores the bioavailability, safety, and industrial applications of these phytochemicals in food and biotechnology sectors.
Professor Jong Seung Kim's research lab specializes in the development of advanced fluorescent probes and sensors for biomedical applications, with a strong focus on monitoring dynamic biological microenvironments such as pH, viscosity, and water content. The lab pioneers the design of biocompatible, highly sensitive, and selective molecular tools based on organic scaffolds like coumarins, enabling real-time imaging in living systems. Their work bridges chemistry, materials science, and biomedicine, with particular emphasis on applications in cancer diagnosis and theranostics, including combinatory phototherapies and intracellular sensing. The lab also explores the integration of these probes into next-generation diagnostic platforms for early disease detection.
Professor Hyung Ju Hwang's research lab specializes in mathematical physics and applied analysis, focusing on kinetic equations, partial differential equations, and their applications to biological and physical systems. The lab investigates the rigorous mathematical foundations of models in chemotaxis, plasma physics, and epidemiology, with particular emphasis on asymptotic behavior, inverse problems, and the derivation of macroscopic limits from microscopic dynamics. Current research directions include the Vlasov-Poisson system, Landau damping, and the mathematical modeling of disease spread using SIR-type models.
Professor Eun-Suk Kang's research lab focuses on immunology and cancer biology, with a particular emphasis on tumor microenvironment regulation, T cell biology, and mitochondrial protein transport in cancer progression. The lab investigates the role of immune cell subsets—such as regulatory T cells and myeloid-derived suppressor cells—in gastric and ovarian cancers, aiming to identify prognostic biomarkers and therapeutic targets. Additionally, the lab explores mechanisms of immune tolerance and protein trafficking in mitochondria, especially the TOM40 complex, linking cellular metabolism to cancer pathogenesis. Their work also extends to clinical applications, including stem cell mobilization for transplantation and diagnostic biomarkers in autoimmune neurological disorders.
Professor Ki Hong Choi's research lab specializes in interventional cardiology and vascular medicine, with a strong focus on optimizing clinical outcomes in patients with acute coronary syndromes, peripheral artery disease, and cardiogenic shock. The lab investigates hemodynamic support strategies, such as VA-ECMO and inotropic support, and evaluates risk stratification tools like the Vasoactive Inotropic Score and PRECISE-DAPT score to personalize treatment in interventional cardiology. Their work also emphasizes the role of percutaneous revascularization techniques, including drug-eluting stents and endovascular therapy, particularly in complex coronary and peripheral vascular disease. The lab conducts large-scale, multicenter registries and clinical trials to inform evidence-based, patient-tailored interventions.
Professor Wan Beom Park's research lab specializes in infectious diseases, with a strong focus on viral pathogenesis, antimicrobial resistance, and host immune responses in HIV, SARS-CoV-2, and other emerging pathogens. The lab investigates clinical outcomes, treatment efficacy, and long-term sequelae of severe respiratory and systemic infections, including MERS and HIV. Key research directions include antimicrobial stewardship, particularly in comparing antibiotic regimens for serious staphylococcal infections, and pharmacogenomics, such as HLA-B*5701 screening in Asian populations to prevent drug hypersensitivity reactions.
Professor Hyun Cheol Chung's research lab specializes in translational oncology, focusing on immunotherapy for advanced and treatment-experienced cancers. The lab investigates immune checkpoint inhibitors, particularly pembrolizumab, in diverse malignancies such as cervical, small cell lung, and HER2-positive gastric cancers. Key research directions include evaluating biomarker-driven responses (e.g., PD-L1 status), optimizing combination therapies (e.g., with trastuzumab or chemotherapy), and advancing clinical trial design for precision immunotherapy. The lab plays a pivotal role in bridging preclinical insights with clinical application to improve outcomes in aggressive, hard-to-treat cancers.
Professor Hiroshi Okada's research lab specializes in flavor physics and beyond-Standard Model particle physics, focusing on the theoretical unification of quark and lepton masses and mixings through discrete non-Abelian flavor symmetries such as $A_4$ and $S_3$. The lab investigates modular forms and modular symmetries to construct realistic flavor models, particularly in the context of neutrino mass generation, leptonic CP violation, and radiative seesaw mechanisms. Current research also explores dark matter candidates, lepton flavor violation, and collider phenomenology, especially in connection with the Large Hadron Collider and cosmological data such as WMAP/Planck results.
Professor Ju Young Yoon's research lab focuses on long-term care, geriatric health, and health promotion across diverse populations, with an emphasis on person-centered care, sleep health in older adults, and the well-being of healthcare providers. The lab investigates modifiable factors influencing frailty, social engagement, and mental health in long-term care settings, while also exploring health literacy and behavioral outcomes among educators and visiting nurses. Using mixed-methods and longitudinal designs, the lab aims to inform targeted, age- and context-specific interventions in aging and community health.
Professor Jong-Jin Baik's research lab specializes in atmospheric and environmental fluid dynamics, with a focus on urban air quality, pollutant dispersion, and urban meteorology. The lab employs advanced numerical modeling—ranging from two- and three-dimensional CFD and mesoscale models to nonhydrostatic and compressible atmospheric models—to study complex flow patterns in urban street canyons and the impacts of urban heat islands on convection. Key research directions include vortex dynamics in street canyons, turbulence and dispersion of pollutants, and the role of thermal forcing in triggering convective storms in urban environments. The lab also explores synchronization in high-dimensional chaotic systems, particularly in the context of atmospheric and geophysical flows.