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 Sang Youl Kim's research lab specializes in the design and synthesis of advanced functional polymers with tailored optical, thermal, and mechanical properties for next-generation electronic and separation applications. Key research directions include developing high-performance polyimides and poly(amide-imide) materials for transparent and flexible displays, engineering supramolecular architectures using primary amides and liquid crystalline ligands for nanostructured materials, and creating hyperbranched polymers and porous films with precise nano- and micro-patterning for gas separation and sensing. The lab integrates molecular design with materials processing to achieve materials with exceptional thermal stability, transparency, and tunable surface properties.
Professor Myung-Joo Kim's research lab specializes in biomaterials and dental implant technology, focusing on the development and evaluation of advanced polymers and metal alloys for orthopedic and dental applications. The lab investigates the mechanical behavior, surface properties, and biological responses of materials such as PEEK, titanium, and Co-Cr alloys, with an emphasis on fatigue resistance, osseointegration, and implant fit accuracy. Research also extends to the biological effects of natural extracts on liver injury, reflecting a multidisciplinary approach combining materials science, biomedical engineering, and pharmacology. The lab leverages cutting-edge fabrication techniques like laser sintering and CAD/CAM to advance digital dentistry and implant design.
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 Seungmoon Choi's research lab specializes in haptic media and tactile interaction, focusing on the design, perception, and application of vibrotactile and force-feedback systems. The lab investigates human perceptual capabilities for touch, develops advanced haptic rendering algorithms, and explores the psychological and physiological factors influencing tactile perception in virtual environments. Key research directions include the development of realistic virtual textures, force-constancy in haptic exploration, and the optimization of vibrotactile displays for information transfer in applications such as virtual prototyping, medical simulation, and data visualization.
Professor Chan Yeong Heo's research lab specializes in biomaterials and tissue engineering, focusing on the development of biocompatible and bioactive materials for regenerative medicine and clinical applications. Key research directions include the design of bioabsorbable implants for orthopedic and maxillofacial reconstruction, innovative polymeric fillers for soft tissue augmentation (e.g., breast reconstruction), and advanced skin rejuvenation technologies using tailored polymers and growth factors. The lab also investigates surface engineering strategies—such as photopolymerization of functional polymers on implant surfaces—to modulate immune responses and improve implant integration.
Professor Kyoungsuk Jin's research lab specializes in the design and development of advanced nanomaterials for sustainable energy conversion and environmental applications. The lab focuses on understanding and engineering the electronic and structural properties of manganese-based oxides to enhance their catalytic activity in critical reactions such as water oxidation, oxygen evolution, and electrochemical nitrogen fixation. By integrating in situ spectroscopy, electrokinetic analysis, and computational modeling, the group aims to uncover reaction mechanisms and guide the rational design of efficient, earth-abundant electrocatalysts. Their work emphasizes green chemistry principles, particularly in replacing hazardous reagents with sustainable alternatives like water as an oxygen source.
Professor Nam-Jung Kim's research lab specializes in the development of innovative transition-metal-catalyzed methodologies for the efficient synthesis of bioactive heterocyclic compounds, with a strong focus on flavonoids and nitrogen-containing heterocycles such as benzodiazines and prostaglandins. The lab pioneers atom-economical, one-pot transformations using Pd(II) and Rh catalysts to enable concise, enantioselective access to complex natural products and pharmaceutical candidates. Additionally, the group explores surface-enhanced Raman spectroscopy using functionalized gold nanoparticle substrates to probe molecular dynamics and metal–molecule charge transfer at the nanoscale. Their work bridges synthetic organic chemistry, catalysis, and nanomaterials for applications in drug discovery and molecular sensing.
Professor Jung-Yul Cha's research lab specializes in digital orthodontics, implant biomechanics, and advanced dental materials. The lab focuses on optimizing clinical outcomes through computer-aided design and manufacturing (CAD/CAM) technologies, including customized brackets, clear aligners, and miniscrew implants. Key research directions include evaluating the mechanical behavior of dental implants under varying insertion torques, assessing the accuracy and translucency of 3D-printed and thermoformed aligners, and improving the stability and biocompatibility of orthodontic appliances.
Professor Seung Ah Lee's research lab specializes in the development of compact, low-cost, and portable imaging systems for biomedical and environmental applications. The lab focuses on chip-scale microscopy, optofluidic fabrication of 3D microstructures, and human-biology interaction platforms that integrate microscopy, touch interfaces, and light projection. Key research directions include sub-pixel resolution reconstruction, high-throughput microfabrication, and long-term live-cell imaging using motion-assisted super-resolution techniques.
Professor Kihoon Han's research lab focuses on the molecular and synaptic mechanisms underlying neurodevelopmental and neuropsychiatric disorders, with a central emphasis on the role of synaptic scaffolding proteins—particularly SHANK3—and their regulatory networks in brain development and function. The lab investigates gene-environment interactions, epigenetic regulation (e.g., via miRNAs such as miR-483-5p), and downstream signaling pathways (e.g., mTORC1) that contribute to neuronal circuit dysfunction in conditions like autism spectrum disorder, fragile X syndrome, and bipolar disorder. Using integrative approaches including transcriptomics, in vivo models, and human tissue analyses, the lab aims to uncover disease-specific molecular signatures and identify potential therapeutic targets.
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 Jin Young Lee's research lab specializes in clinical and translational studies focused on improving diagnostic accuracy and patient outcomes in surgical and anesthetic conditions. The lab investigates postoperative complications such as postoperative sore throat, rectal pain after laparoscopic surgery, and drug reaction with eosinophilia and systemic symptoms (DRESS), with an emphasis on identifying risk factors and underlying mechanisms. Additionally, the lab explores neuromodulatory effects of drugs like nefopam in chemotherapy-induced neuropathy, highlighting its potential in pain management. The research integrates clinical imaging, pharmacological mechanisms, and patient-centered outcomes to guide evidence-based practice in anesthesiology and surgical oncology.
Professor Su Hwan Kim's research lab specializes in gastrointestinal and metabolic diseases, with a focus on endoscopic diagnosis, small intestinal disorders, and the clinical implications of body composition. The lab investigates conditions such as drug-induced esophagitis, Crohn’s disease, and intestinal tuberculosis, emphasizing diagnostic accuracy through capsule endoscopy and imaging. It also explores the interplay between sarcopenia, obesity, and visceral adiposity in metabolic syndrome, highlighting preventive and therapeutic strategies.
Professor Young Sun Ro's research lab specializes in emergency medicine and neurotrauma, focusing on improving outcomes for traumatic brain injury (TBI) through clinical decision rules, neuroprotective strategies, and preventive interventions. The lab investigates the effectiveness of cranial CT decision rules in real-world settings, explores pharmacological agents like MMP inhibitors for neuroprotection, and evaluates preventive measures such as safety helmets in occupational settings. Research also examines systemic factors influencing survival after out-of-hospital cardiac arrest, emphasizing regional differences in prehospital and emergency care systems.
Professor Sang-Kyou Lee's research lab specializes in biomedical engineering and clinical diagnostics, with a focus on developing innovative medical devices and biomarkers for improved disease assessment. The lab pioneers technologies such as multi-touch sensing tablets for human-computer interaction and electronic apex locators for endodontic precision, while also investigating serum biomarkers like leptin, TWEAK, and BMPs in inflammatory and musculoskeletal diseases such as ankylosing spondylitis and rheumatoid arthritis. Their work bridges engineering innovation with clinical application, emphasizing accuracy, real-time monitoring, and the pathophysiological role of signaling molecules in chronic inflammation. The lab integrates engineering design with translational medicine to advance diagnostic tools and deepen understanding of disease mechanisms.
Professor Ikjin Lee's research lab specializes in reliability-based design optimization (RBDO), with a strong focus on advanced reliability analysis methods such as the first-order and second-order reliability methods (FORM/SORM), stochastic sensitivity analysis, and surrogate modeling. The lab develops innovative numerical and analytical techniques to improve the accuracy and efficiency of structural and mechanical system reliability assessment, particularly in the presence of correlated random variables and nonlinear performance functions. Key applications include vehicle dynamics-based design optimization for transportation infrastructure, such as roadway exit ramps and interchanges, with emphasis on safety-critical failure modes like rollover and sideslip.
Professor Hyoungshick Kim's research lab specializes in network science and cybersecurity, focusing on dynamic and resilient network systems. The lab investigates models for information diffusion, anomaly detection in industrial and IoT environments, and secure authentication frameworks for emerging technologies like drones and the Internet of Drones. A central theme is developing lightweight, efficient, and scalable solutions for real-world deployment under security and performance constraints. The lab also explores strategic network attacks and defenses with cost-aware models to enhance system resilience.
Professor Kyung Hwan Shin's research lab specializes in tumor microenvironment and hypoxia biology, focusing on the dynamic regulation of hypoxia markers in cancer progression. The lab investigates the interplay between oxygenation status and tumor response using both endogenous (e.g., CAIX) and exogenous (e.g., pimonidazole) hypoxia markers in preclinical models. Their work explores how pharmacological interventions like carbogen and hydralazine modulate tumor oxygenation and influence hypoxia-related signaling. The lab's research contributes to improving the precision of hypoxia detection and the development of more effective cancer therapies.
Professor Ho-Seong Kim's research lab focuses on the insulin-like growth factor binding protein (IGFBP) family, particularly their roles in regulating cell proliferation, apoptosis, and metabolic functions. The lab investigates both IGF-dependent and IGF-independent actions of IGFBPs, with a strong emphasis on IGFBP-3 and IGFBP-7 in cancer biology and metabolic regulation. Key research directions include the molecular mechanisms underlying IGFBP-mediated cell cycle arrest and caspase activation, as well as the physiological and pathological implications of IGFBP signaling in breast cancer and adipose tissue. The lab also explores the emerging concept of a low-affinity IGFBP superfamily, including novel ligands such as connective tissue growth factor (CTGF).
Professor Jooyoung Park's research lab specializes in sustainable systems engineering, focusing on material flow analysis, life cycle assessment, and circular economy policy evaluation. The lab conducts national-scale, data-driven studies to quantify plastic and water system dynamics, greenhouse gas emissions, and public investment in circular economy initiatives. By developing standardized classification frameworks and dynamic modeling tools, the lab supports evidence-based policymaking for net-zero and resource-efficient societies. Current research emphasizes the integration of industrial ecology with environmental policy to advance circular and low-carbon transitions.