ソウル大学、KAIST、延世大学など韓国QSトップ10大学の研究室情報です。
Professor Jinwoo Lee's research lab specializes in the design and synthesis of advanced carbon-based nanomaterials for energy storage and conversion applications. The lab focuses on developing porous carbons, mesoporous materials, and functionalized carbon structures with tailored porosity and electronic properties to enhance performance in supercapacitors, lithium-sulfur batteries, and fuel cells. A key research direction involves engineering single-atom catalysts—particularly Fe/N/C and S-doped carbon systems—for efficient oxygen reduction reactions, aiming to replace precious metal catalysts. The lab also explores hybrid energy storage devices by integrating high-power anode materials like phase-controlled Nb₂O₅@carbon core-shell nanocrystals to balance power and energy density.
Professor Jae-Young Choi's research lab specializes in the development and engineering of two-dimensional nanomaterials, with a focus on graphene, graphene oxide, and hexagonal boron nitride for advanced electronic, membrane, and energy conversion applications. The lab investigates scalable synthesis methods such as chemical vapor deposition and layer-by-layer doping techniques to enhance electrical conductivity, mechanical stability, and environmental resilience. Key research directions include tunable gas separation membranes, transparent flexible piezoelectric nanodevices, and high-performance 2D heterostructures for next-generation nanoelectronics.
Professor Daehee Kang's research lab focuses on the molecular and genetic epidemiology of chronic diseases, particularly cancer and metabolic disorders. The lab investigates gene-environment interactions, genetic susceptibility variants (e.g., SOD, GSTM1, GSTT1, COMT), and biomarkers of exposure (e.g., PAH-DNA adducts, 1-OHP-gluc) to understand how genetic polymorphisms and environmental factors contribute to disease risk. Their work spans population-based studies, including large-scale GWAS and case-control designs, with a strong emphasis on Asian populations, especially Koreans, to address genetic and environmental disparities in disease etiology. The lab integrates molecular epidemiology with clinical and biochemical markers to identify early indicators and risk modifiers for cancer and metabolic syndrome.
Professor Johnmarshall Reeve's research lab specializes in the psychology of motivation and self-regulation in educational settings, with a primary focus on autonomy-supportive teaching practices. The lab investigates how teachers' interpersonal styles—particularly autonomy support versus control—affect students' intrinsic motivation, engagement, and academic achievement. Using self-determination theory as a foundation, the lab develops and evaluates evidence-based interventions to help teachers foster student motivation and agency in K-12 classrooms. Key research directions include the measurement of agentic engagement, the behavioral indicators of autonomy-supportive instruction, and the impact of classroom climate on student motivation.
Professor Jong-tae Lee's research lab focuses on environmental health and epidemiology, with a primary emphasis on the impacts of air pollution and urban greenery on human health. The lab investigates the associations between ambient air pollutants—particularly PM10—and various health outcomes, including respiratory and cardiovascular diseases, as well as mental health. A key research direction involves assessing the health benefits of urban greenness, using metrics like NDVI, in relation to mortality and depressive symptoms. The lab employs advanced statistical methods, such as time-series and multilevel regression models, to analyze large-scale population data from Korean metropolitan cities.
Professor Sohun Lee's research lab specializes in translational oncology, focusing on molecular mechanisms of resistance and response in non-small cell lung cancer (NSCLC) and rare thoracic malignancies. The lab integrates multi-omics approaches—genomics, transcriptomics, and single-cell sequencing—with clinical data to identify biomarkers and therapeutic vulnerabilities. Key research directions include understanding ALK and EGFR fusion-driven tumorigenesis, immune microenvironment dynamics in response to immunotherapy, and the role of comorbidities like COPD in treatment outcomes. The lab also investigates rare tumors such as thymic adenocarcinoma through comprehensive genomic profiling.
Professor Feng Ding's research lab specializes in the theoretical and computational investigation of 2D materials and carbon-based nanomaterials, with a focus on understanding the fundamental mechanisms governing their nucleation, growth, and stability. The lab employs advanced first-principles calculations, molecular dynamics simulations, and density functional theory to explore the role of catalysts, surface interactions, and edge chemistry in determining the structure and properties of materials such as graphene, bilayer graphene, and carbon nanotubes. Key research directions include the kinetic control of nanotube growth via dislocation dynamics, the role of hydrogen in CVD growth processes, and the epitaxial growth of 2D materials on substrates with symmetry-matching principles. The lab’s work bridges atomic-scale mechanisms with macroscopic material synthesis, aiming to guide the rational design of high-performance nanomaterials for nanoelectronics and advanced technologies.
Professor Hyun-Wook Lee's research lab specializes in advanced energy storage materials, with a primary focus on next-generation batteries for high-energy-density and safe operation. The lab investigates nanostructured anodes, solid-state electrolytes, and alkali metal anodes—particularly lithium and sodium—through innovative materials design, interfacial engineering, and in situ characterization techniques. Key research directions include suppressing dendrite growth, enhancing electrode stability under extreme volume changes, and developing scalable, cost-effective coating strategies for high-capacity anodes.
Professor Seung Hwan Ko's research lab specializes in the development of advanced nanomaterials and flexible electronics for next-generation wearable and stretchable devices. The lab focuses on designing highly conductive, transparent, and mechanically robust electrodes using long metallic nanowires and nanostructured oxide materials, with applications in flexible sensors, energy devices, and printed electronics. Key research directions include solution-processed nanowire networks, low-temperature nanowelding techniques, and scalable fabrication of high-performance transparent conductors and transistors without vacuum or high-temperature processes. The lab's work bridges materials science, nanofabrication, and device engineering to enable lightweight, biocompatible, and cost-effective electronic systems for healthcare and wearable technology.
Professor Chong Seung Yoon's research lab specializes in the development and optimization of high-nickel layered oxide cathodes for lithium-ion batteries, with a focus on enhancing electrochemical performance, structural stability, and safety. The lab investigates fundamental degradation mechanisms—such as microcracking, phase transitions, and surface reactivity—through advanced in situ characterization and computational modeling. Key research directions include surface coating, dopant engineering (e.g., AlF₃, B, W), and microstructure control to improve cycle life and thermal stability in Ni-rich NCM and NCA cathodes.
Professor Mu-Lim Choi's research lab focuses on the genetic and molecular mechanisms underlying human diseases, with a strong emphasis on monogenic disorders, mitochondrial diseases, and developmental syndromes. The lab integrates whole-exome sequencing, functional genomics, and cellular physiology to identify disease-causing mutations and elucidate their pathophysiological roles, particularly in endocrine disorders, neurodevelopmental conditions, and craniofacial development. Key research directions include ion channelopathies in aldosteronism, calcium homeostasis in enamel formation, and the genetic architecture of Leigh syndrome and Rett syndrome variants.
Professor Byung-Hoon Jeon's research lab specializes in the design, synthesis, and application of carbon dots—a promising class of carbon-based nanomaterials—focusing on their controlled fabrication, structural characterization, and integration into advanced technological solutions. The lab explores their multifunctional roles in environmental remediation, biomedical imaging, and energy conversion, leveraging their unique optical, electronic, and surface properties. A key research direction involves tailoring carbon dots for high-performance applications in sustainable technologies and next-generation nanodevices. The lab also emphasizes interdisciplinary innovation, merging materials science, chemistry, and engineering to develop smart, low-cost, and eco-friendly nanomaterials.
Professor Jin-woo Cheon's research lab specializes in the design and synthesis of advanced functional nanomaterials, with a strong focus on magnetic and 2D nanomaterials for biomedical and energy applications. The lab pioneers the development of multimodal imaging probes, particularly magnetic nanoparticles engineered for MRI, optical, and radioisotope imaging, enabling precise diagnostics and theranostics. They also explore nanomaterials for energy storage, such as SnS2 nanoplates for high-performance lithium-ion batteries, and innovative wearable biosensors, including smart contact lenses for real-time cortisol monitoring. Their work bridges nanotechnology, materials science, and biomedicine to create next-generation tools for healthcare and energy. "keywords": ["nanomaterials", "multimodal imaging", "magnetic nanoparticles", "energy storage", "biosensors"] }
Professor Lee Dong Ho's research lab specializes in gastrointestinal and liver diseases, with a strong focus on hepatocellular carcinoma (HCC), non-alcoholic fatty liver disease (NAFLD), and *Helicobacter pylori*-related gastrointestinal disorders. The lab investigates advanced medical imaging techniques—such as gadoxetic acid-enhanced MRI and endoscopic ultrasonography—for improved diagnosis and staging of liver and gastric cancers. Additionally, the lab explores genetic and inflammatory markers, including cytokine polymorphisms and antibiotic resistance mutations, to understand disease progression and optimize treatment strategies.
Professor Kyung Soo Lee's research lab specializes in advanced medical imaging and radiomics, focusing on the application of PET/CT and deep learning in pulmonary diseases and oncology. The lab investigates radiologic biomarkers for early detection, staging, and molecular profiling of lung cancer, particularly in tuberculosis-endemic regions. It also explores the natural history of mycobacterial lung diseases and the radiological features of rare interstitial lung disorders.
Professor Marc Diederich's research lab focuses on the molecular mechanisms of natural compounds—particularly dietary polyphenols and carotenoids—in cancer prevention and therapy. The lab investigates how compounds like lycopene and curcumin modulate key signaling pathways involved in carcinogenesis, including inflammation, cell proliferation, and apoptosis, with a strong emphasis on their epigenetic and antioxidant effects. A central theme is overcoming the clinical translation barriers of these natural agents through advanced delivery systems and combination therapies. The lab also explores the repurposing of existing drugs, such as cardiac glycosides, for cancer immunotherapy.
Professor Hu Young Jeong's research lab specializes in the development of advanced nanomaterials and thin films for next-generation energy and electronic applications. The lab focuses on resistive memory devices, particularly flexible and low-temperature fabricated resistive random access memory using amorphous metal oxides like TiO₂, aiming to enable scalable, low-power, and flexible electronics. Another key direction involves designing high-performance electrocatalysts—especially cobalt-based and nitrogen-doped carbon materials—for sustainable energy conversion, including oxygen reduction and evolution reactions in fuel cells and water splitting. The lab also investigates flexible gas sensors based on carbon nanostructures, emphasizing high sensitivity and mechanical robustness for real-time environmental monitoring.
Professor Sang Hyuk Im's research lab specializes in perovskite-based optoelectronic materials and devices, focusing on the development of high-performance, stable, and scalable technologies for light emission, photovoltaics, and X-ray detection. The lab pioneers innovative approaches in film morphology control, defect passivation, and interface engineering to enhance device efficiency and durability. Key research directions include perovskite light-emitting diodes (PeLEDs), planar perovskite solar cells with minimal hysteresis, and perovskite nanocrystal-based X-ray detectors with superior resolution and response speed.
Professor Junoh Park's research lab specializes in translational oncology, focusing on the biological characterization of solid tumors—particularly pancreatic ductal adenocarcinoma (PDAC), non-small-cell lung cancer (NSCLC), and biliary tract cancer (BTC)—through advanced single-cell and molecular profiling. The lab investigates tumor microenvironment interactions, biomarker discovery (e.g., EGFR and KRAS mutations), and the clinical efficacy of chemotherapy regimens such as gemcitabine-cisplatin and erlotinib-based therapies. A central theme is optimizing treatment duration and response evaluation using modern criteria like RECIST, aiming to improve patient outcomes through precision oncology approaches.
Professor Se Heon Park's research lab specializes in translational oncology, focusing on improving outcomes in gastrointestinal and urothelial cancers through personalized treatment strategies. The lab integrates genomics, single-cell transcriptomics, and clinical trial data to uncover mechanisms of treatment resistance and identify predictive biomarkers. Key research directions include optimizing adjuvant therapies for gastric and hepatocellular carcinomas, understanding neurotoxicity in colorectal cancer patients, and exploring the biological and psychological dimensions of treatment decision-making.