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 Doug Young Suh's research lab specializes in next-generation wireless communication systems, with a strong focus on cognitive radio networks, edge and cloud computing, and AI-driven multimedia transmission. The lab investigates intelligent spectrum management, secure and efficient data delivery in mobile and distributed environments, and the application of machine learning—particularly deep learning—for video analysis, forgery detection, and medical image interpretation. Key research directions include optimizing quality of service in bandwidth-intensive applications, enhancing network reliability through cooperative relaying, and leveraging AI for early clinical prediction in oncology using medical imaging.
Professor Ikyon Kim's research lab specializes in the development of innovative, atom-economical, and catalytic methodologies for the synthesis of complex heterocyclic frameworks prevalent in natural products and bioactive molecules. The lab focuses on transition-metal-catalyzed and metal-free domino reactions, including C–H activation, cyclizations, and multicomponent couplings, to efficiently construct benzofurans, indolizines, and related polycyclic systems. A central theme is the strategic functionalization of heterocycles to access medicinally relevant scaffolds with high regio- and stereoselectivity under mild, eco-friendly conditions. The work consistently emphasizes synthetic efficiency, step economy, and the creation of novel molecular architectures difficult to access by traditional methods.
Professor Nan Hee Kim's research lab focuses on the intersection of circadian biology, metabolic health, and aging, with a particular emphasis on how circadian rhythms influence metabolic disorders such as diabetes, sarcopenia, and metabolic syndrome. The lab investigates the role of key regulators like melatonin, fetuin-A (FETUA), and vascular endothelial growth factor (VEGF) in insulin resistance, hepatic steatosis, and vascular dysfunction. Using both clinical and in vitro models, the lab explores molecular mechanisms involving protein kinase C (PKC) and insulin signaling pathways to understand and potentially treat age-related metabolic diseases. Their work also highlights the clinical relevance of anthropometric markers like the waist-to-waist index (WWI) and phenotypic profiles such as MHO and MONW in predicting long-term outcomes in older adults.
Professor Oh-Hoon Kwon's research lab specializes in ultrafast dynamics and structural characterization of complex molecular systems, with a focus on proton transfer mechanisms in biological and synthetic systems, electron tomography for 3D and 4D imaging of nanoscale materials, and the role of solvent and protein-surface interactions in molecular dynamics. The lab employs advanced spectroscopic techniques such as femtosecond fluorescence and time-resolved spectroscopy to probe proton tunneling, hydrogen bonding networks, and solvation dynamics at the molecular level. A key theme is understanding how nuclear quantum effects and solvent dynamics govern chemical reactivity and structural transitions in condensed phases.
Professor C. Justin Lee's research lab focuses on glial cell biology and neuromodulation, with a central emphasis on the role of astrocytes and Bergmann glia in brain signaling. The lab investigates non-neuronal mechanisms of neurotransmitter release—particularly GABA and glutamate—through ion channels such as Best1 and calcium-dependent pathways. Key research directions include understanding the enzymatic and molecular basis of glial GABA synthesis (e.g., via MAO-B), the role of glial calcium signaling in disease, and the therapeutic implications in neurodegenerative disorders such as Alzheimer’s disease and glioblastoma. The lab employs advanced techniques such as sniffer-patch recording, immunogold electron microscopy, and in vivo imaging to dissect glial-neuronal communication in health and disease.
Professor Sung Hoon Jeong's research lab specializes in the development of advanced functional materials for sustainable energy and wearable technology applications. The lab focuses on nanomaterials engineering, particularly silver and titanium dioxide nanostructures, for antibacterial textiles and dye-sensitized solar cells (DSSCs). Key research directions include the fabrication of flexible, lightweight, and durable textile-based electronic components such as counter electrodes and photoanodes using carbon nanotubes and polymer matrices. The lab also emphasizes cost-effective, scalable synthesis methods to enhance energy conversion efficiency and material compatibility for real-world applications.
Professor Jong Eun Lee's research lab focuses on neurodegenerative diseases, particularly Parkinson’s disease and Alzheimer’s disease, with an emphasis on identifying neuroanatomical and molecular predictors of cognitive decline. The lab investigates neuroprotective mechanisms involving heat shock proteins, blood-brain barrier integrity, and metabolic dysfunction in brain insulin resistance. It also explores biomaterials for tissue regeneration, particularly collagen-based scaffolds, and evaluates pharmacological agents such as agmatine for potential therapeutic applications in neurodegeneration and diabetes-related cognitive impairment. The research integrates preclinical models, molecular biology, and translational approaches to develop novel neuroprotective strategies.
Professor Hansang Cho's research lab specializes in developing advanced microfluidic and nanomaterial-based platforms for biomedical sensing and disease modeling. The lab focuses on creating highly sensitive, label-free biosensors using techniques such as surface-enhanced Raman scattering (SERS) and nanoplasmonic aptasensors for early detection of disease biomarkers like thrombin and VEGF. A key direction involves engineering 3D in vitro models of human biological barriers—particularly the blood-brain barrier (BBB)—to study neurovascular disorders, neuroinflammation, and the impact of environmental toxins like PM2.5 on brain immunity. The lab also investigates the cellular mechanisms underlying neurodegenerative diseases, such as Alzheimer’s, using microfluidic chemotaxis platforms to dissect microglial responses to amyloid-β species.
Professor Shaker El-Sappagh's research lab specializes in intelligent healthcare systems, focusing on the integration of advanced technologies such as machine learning, wearable sensors, and cloud/fog computing to enhance disease diagnosis, monitoring, and decision support. The lab develops explainable and interoperable clinical decision support systems (CDSS) for chronic and neurodegenerative diseases like Alzheimer’s and diabetes, with an emphasis on remote patient monitoring and semantic interoperability in electronic health records. Their work bridges the gap between clinical practice and emerging technologies by creating end-to-end, real-time healthcare solutions that improve accessibility, especially in underserved rural areas. The lab also pioneers ontology-driven frameworks to enrich clinical data semantics and support mobile health applications.
Professor Seok-Geun Lee's research lab focuses on translational and molecular oncology, with a strong emphasis on the pathogenesis of malignant gliomas and liver diseases. The lab investigates key oncogenic drivers such as AEG-1 and signaling pathways like PI3K/AKT/mTORC1, particularly their roles in tumor progression, neurodegeneration, and treatment resistance. A central theme is the interplay between cancer metabolism, glutamate excitotoxicity, and microenvironmental crosstalk in gliomagenesis and liver transplantation outcomes. The lab also explores repurposed drugs, such as ceftriaxone, for neuroprotective and anti-tumor effects through modulation of glutamate transporters like EAAT2.
Professor Sang-Won Lee's research lab specializes in clinical and translational research focusing on medical imaging, inflammatory and autoimmune diseases, and spinal surgery techniques. The lab investigates diagnostic accuracy in liver steatosis using CT and histology, explores biomarkers such as lactate and systemic immune-inflammation index in critical illness and autoimmune conditions like lupus and vasculitis, and develops innovative spinal fixation methods to improve surgical outcomes. The work bridges radiology, rheumatology, critical care, and orthopedic surgery with an emphasis on early detection and personalized treatment strategies.
Professor Tong-Seok Han's research lab specializes in computational materials science and micromechanics, focusing on the 3D microstructure characterization and mechanical property prediction of cement-based materials. The lab integrates advanced imaging techniques such as micro-CT with finite element analysis and artificial intelligence, particularly generative adversarial networks (GANs), to reconstruct and simulate multi-phase cement paste microstructures. Key research directions include phase connectivity analysis, anisotropic microstructural modeling, and the development of data-driven frameworks for accelerating materials design and performance evaluation. The lab aims to bridge the gap between microstructure evolution and macroscopic mechanical behavior in construction materials.
Professor Hyun Woo Kim's research lab specializes in pediatric orthopedics and spinal deformity, with a focus on congenital and dystrophic scoliosis, pseudarthrosis, and skeletal development disorders. The lab investigates the biomechanics, imaging, and surgical management of spinal and lower limb deformities in children, particularly those with underlying systemic conditions such as neurofibromatosis. Key research directions include fracture healing in osteoporotic models, the role of growth modulation in spinal correction, and long-term outcomes following spinal fusion and internal fixation in young patients. The lab emphasizes early diagnosis, individualized treatment planning, and the use of advanced imaging to guide surgical decisions.
Professor Byoungwoo Kang's research lab specializes in advanced energy storage materials, with a primary focus on solid-state batteries and multivalent ion batteries. The lab investigates oxide-based solid electrolytes—particularly garnet-type Li₇La₃Zr₂O₁₂—and explores strategies to overcome interfacial resistance and lithium metal anode challenges. Key research directions include the development of high-capacity, low-cobalt, or cobalt-free cathode materials such as Li-rich layered oxides and polyanionic compounds like NaFeSO₄F, aiming for improved cyclability, voltage stability, and energy density. The lab also examines the microstructural origins of electrochemical behavior in conversion-type anodes (e.g., SiO) and full-cell performance of materials like Li₂S, combining advanced characterization and electrochemical analysis to guide material design.
Professor Hyungyu Jin's research lab specializes in advanced materials and spintronic phenomena, focusing on the development of high-entropy alloys, thermoelectric and spintronic devices, and novel functional oxides for clean energy applications. The lab integrates machine learning with experimental materials science to accelerate the discovery and optimization of new materials, particularly in the context of phase prediction and interface engineering. Key research directions include the spin Seebeck effect, hydrogen production via thermochemical cycles, and defect engineering in polycrystalline magnetic materials. The lab aims to bridge fundamental materials physics with practical energy conversion technologies.
Professor Hesam Kamyab's research lab specializes in sustainable water resource management and environmental remediation, with a strong focus on innovative treatment technologies for industrial and agricultural wastewater. The lab explores the integration of advanced materials—such as activated carbon and microalgae—with artificial intelligence and big data analytics to enhance pollutant removal efficiency and process optimization. Key research directions include the development of hybrid photocatalytic and adsorption systems for wastewater treatment and the utilization of palm oil mill effluent (POME) as a nutrient source for microalgal cultivation, promoting circular economy principles in the palm oil industry. The lab also investigates smart monitoring and decision-support systems using AI to improve real-time water quality management and operational sustainability.
Professor Yoon Sung Nam's research lab specializes in the design and fabrication of advanced biomaterials and nanomaterials for biomedical applications, with a strong focus on tissue engineering, drug delivery, and theranostics. The lab develops biodegradable porous scaffolds using techniques like thermally induced phase separation and gas foaming, leveraging polymers such as PLLA and copolymers for regenerative medicine. A key innovation involves using biological templates—like M13 viruses and polydopamine— to engineer functional nanostructures for light-harvesting, sensing, and targeted delivery. The lab also pioneers gravity-driven microfluidic systems and metal nanoparticle-decorated nanofibers for sustainable, energy-efficient biomedical devices.
Professor Sanghyun Park's research spans computational biology, systems biology, and bioinformatics, with a focus on understanding molecular signaling mechanisms, particularly through scaffold proteins in cellular signaling pathways. His lab develops advanced computational methods for sequence analysis, molecular dynamics simulations, and reaction pathway modeling to uncover the kinetic and structural principles underlying biological processes such as excitation transfer in photosynthesis. The lab also applies systems-level approaches to public health data, integrating personal, social, and environmental factors to study physical activity behaviors. Additionally, they innovate in drug repositioning by leveraging protein localization and network propagation to improve prediction of drug-disease associations.
Professor Huihui Zhu's research lab specializes in the development of solution-processed semiconductor materials, with a primary focus on metal halide perovskites and metal oxide semiconductors for next-generation optoelectronic and electronic devices. The lab pioneers low-temperature, printable thin-film transistor (TFT) technologies, emphasizing lead-free, stable, and high-performance p-type and ambipolar perovskite-based TFTs for flexible and wearable electronics. Key research directions include defect passivation, grain boundary engineering, halide anion doping, and solvent engineering to enhance mobility, reduce hysteresis, and improve device reliability.
Professor Jeong Hoon Yang's research lab specializes in critical care and cardiovascular medicine, with a primary focus on understanding and improving outcomes in patients with severe circulatory failure. The lab investigates the pathophysiology of heart failure with preserved ejection fraction (HFpEF), particularly coronary microvascular dysfunction and its impact on diastolic function and prognosis. A significant portion of the research is dedicated to evaluating the role and timing of mechanical circulatory support, including ECMO and extracorporeal cardiopulmonary resuscitation (ECPR), in patients with refractory shock and cardiac arrest. The lab emphasizes patient selection, prognostic factors, and the integration of hemodynamic and clinical markers to guide life-saving interventions.