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 Seung-Yup Ku's research lab focuses on reproductive endocrinology and molecular mechanisms underlying reproductive disorders, with a strong emphasis on the genetic and hormonal regulation of bone mineral density, polycystic ovary syndrome (PCOS), and ovarian function. The lab investigates genetic polymorphisms, sex steroid hormones, and mitochondrial function in relation to fertility, ovarian aging, and metabolic health. A key research direction involves developing innovative fertility preservation strategies, including artificial ovary technology, to address challenges in cancer survivors and patients with premature ovarian insufficiency. The lab also explores the role of mitochondrial dysfunction in developmental disorders such as Down syndrome, linking gene expression to cellular energy metabolism.
Professor Sang-Bae Ko's research lab specializes in cerebrovascular and critical brain injury, with a focus on optimizing neurological outcomes following subarachnoid hemorrhage, ischemic stroke, and cardiac arrest. The lab investigates hemodynamic and metabolic monitoring strategies—such as cerebral perfusion pressure (CPP) and brain tissue oxygenation (PbtO2)—to guide individualized treatment and prevent secondary brain injury. A key research direction involves understanding and mitigating ischemia-reperfusion injury through mechanisms like oxidative stress and cellular senescence, with emerging interest in senolytic therapies as potential neuroprotective interventions. The lab also contributes to evidence-based guidelines for endovascular recanalization therapy in acute ischemic stroke, particularly in extended time windows for selected patients.
Professor Won-Jin Kwak's research lab focuses on advancing next-generation rechargeable battery technologies, particularly lithium-oxygen (Li–O₂) batteries, to enable high-energy-density energy storage for sustainable energy systems. The lab investigates critical challenges such as electrolyte stability, redox mediator decomposition, and interface engineering to enhance energy efficiency, cyclability, and practical viability. Key research directions include the design of nanostructured catalysts, optimization of electrolyte compositions, and protective coatings for lithium metal anodes. The ultimate goal is to overcome the limitations of current battery technologies and support global decarbonization efforts through innovative energy storage solutions.
Professor Hee-Joung Kim's research lab specializes in radiation oncology and medical physics, with a primary focus on improving the precision and efficacy of brachytherapy for cervical cancer. The lab develops advanced treatment planning strategies, including robust optimization techniques using genetic algorithms and statistical robustness metrics, to account for anatomical and applicator uncertainties during fractionated treatments. Their work emphasizes clinical relevance by aligning with international guidelines such as those from GEC-ESTRO, aiming to enhance patient outcomes through adaptive and patient-specific dose optimization. The lab also explores image-guided and adaptive radiotherapy techniques to minimize geographic miss and organ-at-risk toxicity.
Professor Seungbum Koo's research lab specializes in biomechanics and computational modeling with a focus on musculoskeletal systems, particularly the knee joint and its degeneration. The lab develops patient-specific finite-element and musculoskeletal models to predict cartilage degeneration, joint contact forces, and gait-related biomechanics, integrating medical imaging and advanced simulation techniques. Another key direction involves the application of augmented reality and real-time sensor-driven simulation for emergency response and clinical decision support. The lab also investigates in vivo cartilage morphology and foot pressure dynamics to inform clinical interventions for osteoarthritis and lower limb disorders.
Professor Hojoung Lee's research lab focuses on molecular and genetic mechanisms underlying plant development and stress responses, with a particular emphasis on transcriptional regulation, epigenetic modifications, and protein chaperone functions. The lab investigates key regulatory genes such as HOS1, MYB family members, and HDA15 to understand their roles in abiotic stress tolerance, photomorphogenesis, and seed germination. Using a combination of molecular biology, genetics, and omics approaches, the lab explores how environmental cues like cold, salt, and light are transduced into developmental and physiological adaptations in Arabidopsis thaliana.
Professor Chung-Sik Yoo's research lab specializes in geotechnical engineering, with a focus on ground improvement techniques and performance evaluation of geosynthetic-reinforced soil structures. The lab investigates advanced ground improvement systems such as geosynthetic-encased stone columns, geogrid-encased stone columns, and segmental retaining walls, emphasizing their load-carrying capacity, settlement reduction, and long-term stability. Using advanced numerical modeling (finite element analysis) and field instrumentation, the lab evaluates behavior under various loading and environmental conditions, particularly in soft ground and complex ground profiles.
Professor Su-Min Jeong's research lab focuses on the intersection of nutrition, metabolic health, and chronic disease prevention, with a particular emphasis on the role of dietary components—such as sesame-derived bioactives—and lipid metabolism in cardiovascular and neurodegenerative diseases. The lab investigates how lifestyle factors, including cholesterol levels, statin use, and alcohol consumption, influence risks for conditions like cardiovascular disease, Parkinson’s disease, and stroke. Using large-scale population data and biochemical analyses, the lab aims to identify modifiable dietary and metabolic factors that improve body composition and long-term health outcomes across diverse populations. Their work bridges nutritional biochemistry with epidemiological research to inform public health strategies.
Professor Seong Soo Yum's research lab specializes in atmospheric aerosol and cloud microphysics, focusing on the interactions between aerosols, cloud condensation nuclei (CCN), and cloud formation processes. The lab conducts extensive in situ measurements during airborne field campaigns to understand how CCN concentrations and updraft velocities influence cloud droplet formation and microphysical properties in marine stratocumulus and stratus clouds. Key research directions include aerosol-cloud interactions, vertical aerosol and CCN profiling in the boundary layer, and the role of entrainment and mixing in cloud development. The lab emphasizes observational validation of cloud microphysical models, particularly in remote and pristine environments such as the Southern Ocean, Arctic, and the Pacific Ocean.
Professor Changmin Lee's research lab specializes in cutting-edge communication technologies for emerging computing and biomedical systems, with a strong focus on molecular communication, Internet of Bionano Things (IoBNT), and smart home IoT applications. The lab pioneers innovative solutions in molecular MIMO systems, channel modeling for biological environments, and hybrid computing frameworks that seamlessly integrate CPU and GPU resources. By leveraging machine learning, bio-inspired navigation, and distributed sensing, the lab develops high-efficiency, low-latency communication systems tailored for resource-constrained and biologically embedded environments. Their work bridges the gap between nanoscale communication and real-world applications in eHealth, smart homes, and next-generation wireless systems.
Professor Changbum R. Ahn's research lab specializes in advancing construction safety, operational efficiency, and environmental sustainability through wearable sensing technologies and data-driven analytics. The lab focuses on leveraging real-time physiological and motion data—collected via low-cost sensors like accelerometers and wearable biometrics—to assess worker fall risk, detect latent safety hazards, and optimize equipment performance. A key research direction involves integrating gait stability metrics such as maximum Lyapunov exponents and operational efficiency models to quantify and reduce air pollutant emissions from construction activities. The lab also emphasizes practical, economically feasible solutions for heterogeneous equipment fleets and real-world construction sites.
Professor Jung-Gu Kim's research lab specializes in advanced materials for energy and electronic applications, with a focus on corrosion science in industrial systems and the development of high-performance nanomaterials for optoelectronic devices. The lab investigates the electrochemical behavior of pipeline steels in harsh environments, particularly the role of iron oxides in accelerating localized corrosion, and explores innovative nanowire-based transparent electrodes to enhance the efficiency and stability of perovskite light-emitting diodes (PeLEDs). By combining materials synthesis, electrochemical characterization, and device integration, the lab aims to address critical challenges in infrastructure durability and next-generation flexible electronics. Their work bridges fundamental materials science with practical engineering solutions in energy and electronics.
Professor Yuhyung Shin's research lab specializes in organizational behavior and industrial-organizational psychology, focusing on the psychological and motivational mechanisms that influence employee performance, engagement, and well-being in dynamic work environments. The lab investigates key constructs such as job crafting, work engagement, virtual work, regulatory fit, job insecurity, and team-level affect and culture, with an emphasis on how individual and group-level processes shape organizational outcomes. Drawing on theoretical frameworks like self-determination theory and the person-environment fit model, the lab explores how individual differences and contextual factors interact to influence motivation, creativity, and citizenship behaviors in diverse organizational settings, particularly in South Korea and increasingly in global contexts. The research often employs multi-level, longitudinal, and cross-sectional survey designs to test complex mediating and moderating relationships in real-world work environments.
Professor Gyoujin Cho's research lab specializes in the development of high-performance, low-cost, and scalable printed electronics for next-generation flexible and wearable devices. The lab focuses on roll-to-roll (R2R) gravure printing technologies to enable large-area, high-yield fabrication of functional electronic components such as sensors, thin-film transistors, and rectennas. Key research directions include the design of advanced printable inks—particularly based on high-purity semiconducting single-walled carbon nanotubes and conductive polymers—along with robust encapsulation strategies to enhance device stability under real-world environmental conditions. The ultimate goal is to enable ubiquitous, disposable, and energy-efficient smart electronics for applications in health monitoring, IoT, and wearable systems.
Professor Gyehee Lee's research lab specializes in tourism and leisure behavior, with a focus on understanding traveler motivations, destination image, and the socio-psychological factors influencing participation in cultural and recreational events. The lab investigates diverse tourism segments—such as VFR travelers, festival attendees, and park visitors—using mixed-methods approaches, including survey research, social media analysis, and structural modeling. Key research directions include behavioral intention, identity salience, perceived values in natural spaces, and the role of digital media in shaping travel experiences.
Professor Hongseok Yun's research lab specializes in the design, synthesis, and self-assembly of functional nanomaterials, with a focus on nanoparticle-polymer hybrids and their hierarchical organization. The lab explores the interplay between nanoparticle softness, ligand architecture, and polymer architecture to achieve precise control over nanostructure formation, particularly in confined and dynamic environments. Key research directions include the tunable self-assembly of gold and magnetic nanoparticles, the development of stimuli-responsive materials, and the engineering of metamaterials with programmable functionalities.
Professor Wonjoon Choi's research lab specializes in the design and synthesis of advanced functional nanomaterials for sustainable energy and electromagnetic applications. The lab focuses on developing novel nanostructured materials—such as core-shell and porous architectures—using innovative synthesis strategies like structure-guided combustion waves and additive manufacturing. Key research directions include energy storage (supercapacitors, batteries), thermal energy management (phase change materials), and lightweight, multifunctional electromagnetic wave absorbers. The lab emphasizes the integration of material architecture, mechanical robustness, and functional performance for real-world applications.
Professor Sung Jun Jung's research lab specializes in molecular and cellular mechanisms underlying pain signaling, with a focus on ion channels and their roles in neuropathic and inflammatory pain. The lab investigates how transient receptor potential vanilloid 1 (TRPV1) and hyperpolarization-activated cyclic nucleotide-gated (HCN) channels contribute to neuronal excitability and pain sensitization. Key research directions include the identification of endogenous activators of TRPV1, such as diacylglycerol (DAG), and the modulation of these channels by endogenous mediators and natural compounds like eugenol. The lab also explores the crosstalk between immune receptors (e.g., TLR4) and ion channels in amplifying pain signaling.
Professor Soo Yeol Lee's research lab specializes in medical imaging and image reconstruction, with a focus on enhancing image quality in diagnostic imaging through advanced computational methods. The lab develops innovative techniques in electrical properties tomography (EPT), low-dose CT image denoising using deep learning and transfer learning, and metal artifact reduction in dental and clinical CT. Their work bridges physics, engineering, and clinical applications to improve diagnostic accuracy and image reliability in challenging imaging scenarios.
Professor Yongsup Park's research lab specializes in the fundamental investigation of organic and thin-film semiconductor interfaces, with a focus on electronic structure, energy level alignment, and interfacial phenomena in organic electronic devices. The lab employs advanced surface science techniques such as X-ray and ultraviolet photoelectron spectroscopy (XPS/UPS) to probe work functions, interfacial states, and charge transfer mechanisms in materials like ITO, Ca, organic semiconductors (e.g., OPV, Alq3), and oxide layers. Key research directions include interface engineering for organic light-emitting diodes (OLEDs), organic solar cells, and the role of ultrathin interfacial layers in enhancing device performance and stability. The lab also explores growth-induced magnetic anisotropy in ultrathin Fe films and the impact of oxidation on interfacial electronic properties.