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 Seok Ju Kang's research lab specializes in advanced functional materials for next-generation electronic and energy storage devices, with a strong focus on ferroelectric polymers, organic field-effect transistors, and solid-state batteries. The lab develops innovative fabrication strategies—such as nanoconfinement, solvent engineering, and electrolyte design—to achieve high-performance, flexible, and reliable thin-film devices with applications in non-volatile memory, transparent electronics, and sodium-ion batteries. Key research directions include the control of polymer crystallization for enhanced ferroelectricity, interface engineering in organic semiconductors, and stable metal anode deposition for safe and efficient energy storage systems.
Professor Dae-hyun Baek's research lab specializes in molecular and systems biology, focusing on post-transcriptional gene regulation in mammalian cells. Key research directions include the identification and functional characterization of microRNAs and their regulatory networks, alternative splicing and promoter usage in gene expression regulation, and the role of RNA-binding proteins in modulating miRNA targeting efficiency. The lab also investigates viral-host interactions, particularly the translational dynamics of SARS-CoV-2, to uncover host-virus molecular interplay. These studies integrate high-throughput sequencing, bioinformatics, and functional genomics to decode complex regulatory mechanisms in development, disease, and infection.
Professor Dae Won Park's research lab specializes in translational biomedical research and sustainable catalysis, with a dual focus on sepsis pathophysiology and green chemistry. The lab investigates molecular mechanisms underlying immune cell dysfunction in critical illnesses such as sepsis and acute lung injury, particularly the role of signaling pathways like AMPK and GSK3β in regulating neutrophil function. Concurrently, the lab develops eco-friendly, metal-free catalysts—such as ZIF-based materials and amino acid co-catalysts—for efficient CO₂ fixation under mild conditions, contributing to carbon capture and utilization. These interdisciplinary efforts bridge clinical immunology and materials science to address global health and environmental challenges.
Professor Joo Youn Oh's research lab specializes in regenerative medicine and immunomodulation, with a primary focus on mesenchymal stem cells (MSCs) and their secreted factors in treating inflammatory and degenerative diseases of the eye, particularly corneal injuries and autoimmune conditions such as Sjögren’s syndrome and uveoretinitis. The lab investigates the therapeutic mechanisms of MSC-derived extracellular vesicles, mitochondrial transfer, and bioactive molecules like TSG-6 to promote tissue repair and immune tolerance. Additionally, the lab explores novel biomaterials and neuromorphic devices, including perovskite-based phototransistors that mimic biological sensory adaptation, highlighting a multidisciplinary approach integrating stem cell biology, immunology, and nanotechnology.
Professor Hee Chul Kim's research lab specializes in translational oncology, focusing on the molecular mechanisms underlying colorectal cancer progression, metastasis, and therapeutic resistance. The lab investigates epigenetic alterations such as CpG island methylation, genomic heterogeneity, and gene fusions to identify biomarkers and therapeutic targets. Key research directions include the role of specific genes like CTHRC1 and MGMT in tumorigenesis, the impact of tumor genetic heterogeneity on clinical outcomes, and the molecular basis of resistance to anti-EGFR therapies. The lab integrates genomics, epigenetics, and clinical data to improve personalized treatment strategies for colorectal cancer patients.
Professor Soyoung Bang's research lab focuses on the genetic and molecular mechanisms underlying autoimmune and inflammatory diseases, particularly rheumatoid arthritis (RA) and ankylosing spondylitis (AS), with a strong emphasis on gene-environment interactions. The lab investigates the roles of HLA-DRB1 shared epitope, PADI4 polymorphisms, smoking, and environmental stressors such as cryopreservation in disease susceptibility and progression. Additionally, the lab explores cellular stress responses, including autophagy in oocytes, and the clinical implications of antibiotic resistance in *Helicobacter pylori*. Their work integrates molecular genetics, immunology, and translational research to identify biomarkers and develop preventive strategies for chronic inflammatory conditions.
Professor Kyungmin Kim's research lab specializes in resistive switching mechanisms in transition metal oxide thin films, with a focus on memristive devices for next-generation neuromorphic computing and low-power electronics. The lab investigates fundamental switching behaviors—particularly in materials like TiO₂, HfO₂, and NbOₓ—exploring mechanisms such as filament formation, electrochemical metallization, and trap-mediated conduction. Key research directions include developing self-rectifying, forming-free memristors with ultra-low programming currents, and mimicking biological neural functions such as nociception using electronic receptors. The lab also pioneers innovative device architectures and control strategies, such as self-limited switching and asymmetric voltage schemes, to enhance reliability and scalability for real-world applications.
Professor Jeong Gil Seo's research lab specializes in the development of advanced electrocatalysts and sustainable materials for clean energy applications. The lab focuses on designing nanostructured materials—such as transition metal oxides, chalcogenides, and hybrid heterostructures—using low-temperature, environmentally friendly synthesis methods like electrodeposition and deep eutectic solvent (DES)-assisted processes. Key research directions include electrochemical CO2 reduction to value-added fuels, methanol oxidation for fuel cells, and the catalytic conversion of biomass-derived compounds into high-energy fuel precursors. The lab integrates experimental characterization with computational simulations to understand reaction mechanisms and optimize material performance.
Professor Eun Ju Son's research lab specializes in diagnostic radiology and breast imaging, with a focus on improving the accuracy of breast cancer detection and axillary lymph node staging. The lab investigates advanced medical imaging techniques such as ultrasound, diffusion-weighted MRI, and FDG-PET to differentiate benign from malignant lesions and predict metastatic spread. A key emphasis is placed on optimizing non-invasive and minimally invasive diagnostic strategies during pregnancy and in patients with complex breast pathologies. The lab also explores the radiological features of rare breast tumors and thyroid nodules with high-risk US characteristics.
Professor Gi Hong Choi's research lab specializes in advanced surgical oncology, with a primary focus on minimally invasive and robotic liver surgery for hepatocellular carcinoma and biliary tract cancers. The lab investigates innovative surgical techniques, including robotic liver resection and donor hepatectomy, emphasizing patient outcomes, oncological efficacy, and cosmetic results. Key research directions include optimizing surgical strategies for cirrhotic patients with portal hypertension and evaluating the role of preoperative interventions such as transarterial chemoembolization in resectable HCC.
Professor Jiyoung Ahn's research lab specializes in gastrointestinal oncology, with a primary focus on gastric cancer. The lab investigates prognostic biomarkers such as microsatellite instability (MSI) and mTOR expression to guide personalized treatment strategies. Key research directions include evaluating the efficacy of minimally invasive surgical techniques—like laparoscopic and robotic gastrectomy—compared to open surgery, and identifying clinical and pathological factors that predict lymph node metastasis and response to adjuvant chemotherapy. The lab integrates molecular pathology with clinical outcomes to improve risk stratification and treatment selection in gastric cancer patients.
Professor Mee Kum Kim's research lab focuses on the intersection of ocular immunology, stem cell therapy, and the gut–eye axis in autoimmune and inflammatory eye diseases. The lab investigates the therapeutic potential of mesenchymal stem cells and their secretome in corneal injury and dry eye disease, while also exploring how gut microbiota dysbiosis contributes to systemic and ocular autoimmunity, particularly in Sjögren’s syndrome. Using advanced imaging and omics technologies, the lab aims to develop novel, non-transplantation-based therapies for corneal and ocular surface disorders.
Professor Dae Woo Kim's research lab specializes in the design and fabrication of advanced two-dimensional nanomaterials and functional membranes for next-generation separation technologies. The lab focuses on graphene-based materials—such as graphene oxide, reduced graphene oxide, and nanoporous graphene—engineered for high-performance applications in water purification, organic solvent nanofiltration, and molecular separation. Key research directions include scalable membrane fabrication, precise pore engineering, and surface functionalization to enhance permeability, selectivity, and stability under harsh conditions. The lab also explores energy storage applications using tailored carbon nanostructures, particularly for supercapacitors.
Professor Ilkyeong Moon's research lab specializes in operations research and supply chain management, focusing on stochastic inventory systems, sustainable production planning, and optimization under uncertainty. The lab develops advanced mathematical models and solution methodologies—such as distribution-free approaches, geometric programming, and metaheuristics—for complex decision-making in supply chains. Key research directions include multi-item newsvendor models, economic production quantity models with carbon constraints, and integrated supply chain network design involving facility location, allocation, and vehicle routing. The lab emphasizes practical applicability through real-world case studies and computational validation of heuristic and exact algorithms.
Professor Jai Young Cho's research lab specializes in advanced laparoscopic and minimally invasive surgical techniques for liver and biliary tract diseases. The lab focuses on improving outcomes in hepatectomy, particularly in assessing remnant liver perfusion and ischemia, and advancing the safety and feasibility of laparoscopic liver resection for hepatocellular carcinoma and early gallbladder cancer. Research also emphasizes preoperative imaging, intraoperative assessment, and standardized guidelines for complex laparoscopic liver surgery.
Professor Jiyeon Kim's research lab focuses on bioactive compounds from natural sources and their physiological effects, particularly in metabolic and gastrointestinal disorders. The lab investigates the hypoglycemic and insulin-sensitizing properties of plant-derived extracts such as onion peel and mulberry leaf, as well as bioactive molecules like panaxytriol from ginseng, with an emphasis on mechanisms involving cell cycle regulation and metabolic pathways. Additionally, the lab explores the physicochemical properties of modified starches and the rapid detection of foodborne pathogens, reflecting a multidisciplinary approach to functional foods and food safety. The research integrates in vitro, in vivo, and clinical studies to translate natural product findings into health applications.
Professor Jae-il Jang's research lab specializes in the mechanical characterization of nanomaterials, with a focus on understanding the size-dependent mechanical behavior of semiconducting nanowires and group IV semiconductors like silicon and germanium. The lab employs advanced nanoindentation and atomic force microscopy techniques to investigate nanomechanical properties, phase transformations, and deformation mechanisms at the nanoscale. A key research direction involves correlating mechanical responses with underlying crystal structures and intermolecular interactions, particularly in single crystals and nanostructured materials. The lab also emphasizes the development and standardization of experimental protocols for reliable nanomechanical testing.
Professor Eunil Park's research lab specializes in human-centered technology adoption, focusing on user acceptance and behavioral intention across emerging digital technologies. The lab investigates key psychological, perceptual, and systemic factors influencing user engagement in smart environments such as IoT-enabled homes, smart cities, social networking services, and mobile telecommunications. With a strong emphasis on empirical modeling using structural equation modeling (SEM) and large-scale data analysis, the lab aims to bridge technology design with real-world user experiences. Current research directions include smart city infrastructure, service quality in digital platforms, and predictive modeling of user behavior in hospitality and transportation sectors.
Professor Doh Chang Lee's research lab specializes in the synthesis, characterization, and application of advanced nanomaterials with a focus on semiconductor quantum dots, magnetic nanocrystals, and carbon-based nanostructures. The lab explores size- and composition-controlled nanomaterials for optoelectronic, photocatalytic, and energy conversion applications, including electroluminescent devices, CO2 reduction, and silicon nanowire growth under high-pressure conditions. Key research directions include quantum confinement effects, phase transformation in nanomaterials, and the design of core-shell and alloy nanostructures for enhanced functionality and stability.
Professor Tae-In Kam's research lab focuses on the molecular mechanisms underlying neurodegenerative diseases, particularly Parkinson’s disease (PD), with a central emphasis on protein aggregation, cellular stress responses, and neuroinflammation. The lab investigates the roles of key proteins such as α-synuclein, PARP-1, and AIF in neuronal death pathways, including parthanatos, and explores how autophagy and glial cell dysfunction contribute to disease progression. Using genetic, biochemical, and in vivo models, the lab aims to identify novel therapeutic targets for neurodegenerative disorders.