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 Hail Jung's research lab specializes in sustainable industrial innovation and environmental policy, focusing on the intersection of climate change, corporate strategy, and technological advancement. The lab investigates the impact of environmental regulations—such as Emission Trading Schemes—on firm-level performance, carbon productivity, and financial stability, with an emphasis on South Korea’s industrial context. It also explores the application of machine learning and advanced imaging technologies (e.g., industrial OCR systems) to enhance manufacturing efficiency and environmental monitoring. A central theme is the role of managerial perspectives and governance in driving green transformation and reducing systemic financial risks.
Professor Seong-Jun Yoon's research lab specializes in the design and synthesis of functional organic semiconductors, with a focus on dicyanodistyrylbenzene-based materials that exhibit unique optoelectronic properties such as aggregation-induced enhanced emission (AIEE), mechanochromism, and liquid crystallinity. The lab investigates structure–property relationships through systematic molecular engineering, combining advanced structural characterization, photophysical studies, and computational modeling to understand molecular packing and electronic interactions in solid-state materials. Their work spans applications in organic photovoltaics, light-emitting devices, and stimuli-responsive materials, emphasizing morphology control via novel additives and supramolecular self-assembly.
Professor The Ky Vo's research lab specializes in the design, synthesis, and application of metal-organic frameworks (MOFs) and other advanced porous materials, with a focus on developing scalable and efficient synthesis methods. The lab explores innovative reactor systems—such as continuous tubular reactors under microwave irradiation—to enable rapid, high-yield production of MOFs like UiO-66(Zr) while maintaining high crystallinity and porosity. Key research directions include materials for gas storage, separation, and catalysis, with an emphasis on sustainability and industrial scalability. The lab also investigates the structure-property relationships of MOFs to tailor their performance for environmental and energy-related applications.
Professor Byoung-Ho Choi's research lab specializes in the mechanical behavior and durability of engineering polymers and metallic materials, with a focus on fatigue crack growth, environmental stress cracking, and fracture mechanics. The lab investigates the effects of processing parameters, material cleanliness, and microstructural features on the fatigue life and failure resistance of high-density polyethylene, aluminum alloys, and polymer composites. Using advanced characterization techniques and fracture mechanism maps, the lab aims to develop predictive models for material performance under service conditions.
Professor Minho Kim's research lab specializes in the design and development of advanced electrocatalysts and functional materials for sustainable energy conversion and storage. The lab focuses on understanding and optimizing electrochemical reactions such as the oxygen evolution reaction (OER), glycerol electrochemical oxidation, and CO2 reduction, using a combination of experimental synthesis, in situ characterization, and first-principles theoretical calculations. Key research directions include the rational design of single-atom and layered double hydroxide catalysts, the role of dopants and interfacial engineering in enhancing catalytic activity and stability, and the accurate modeling of van der Waals interactions in complex materials using DFT with dispersion corrections.
Professor Kyungkon Kim's research lab specializes in the development of advanced organic semiconductors and nanostructured materials for next-generation optoelectronic devices. The lab focuses on designing and synthesizing novel polymer and fullerene-based materials for high-efficiency organic photovoltaics (OPVs), with particular emphasis on enhancing power conversion efficiency through molecular engineering, nanoscale morphology control, and strategic doping. Key research directions include the fabrication of semitransparent and colorful OPVs using color filter integration, the synthesis of conjugated polymers with tailored optoelectronic properties, and the creation of nanostructured carbon-based materials via templated CVD and carbonization. The lab also explores charge transport mechanisms and interfacial engineering to optimize device performance.
Professor Sung Keun Lee's research lab specializes in the structural characterization of amorphous and disordered materials, with a focus on silicate and aluminosilicate glasses and melts under extreme conditions. The lab employs advanced solid-state NMR techniques—particularly 3QMAS and MAS NMR—to probe short-range order, cation distributions, and local atomic environments in complex oxide systems. Their work bridges fundamental materials chemistry with geoscience applications, addressing the structure-property relationships in materials relevant to Earth's interior, such as mantle melts and high-pressure glasses. The lab also investigates amorphous oxides, including Al₂O₃ thin films, to understand the nature of disorder and its implications for material stability and transformation.
Professor Dong Ki Lee's research lab specializes in sustainable energy conversion technologies, with a strong focus on photoelectrochemical water splitting, electrocatalysis for biomass conversion, and solar fuel production. The lab develops advanced functional materials—particularly oxide semiconductors, nickel-based catalysts, and core-shell photocatalysts—aimed at improving efficiency and selectivity in hydrogen production and carbon dioxide reduction. Key research directions include designing ternary oxides and phosphide alloys for enhanced charge separation and catalytic activity, as well as engineering heterostructures for efficient solar-to-chemical energy conversion under visible light. The lab integrates materials synthesis, electrochemical characterization, and mechanistic studies to advance clean energy solutions.
Professor M. Santosh's research lab specializes in tectonomagmatic processes, crustal evolution, and the genesis of ore deposits, with a strong focus on orogenic gold systems and the tectonic evolution of continental cratons. The lab integrates geophysical imaging, geochemical analysis, and structural geology to unravel the deep Earth processes behind mineralization and lithospheric dynamics, particularly in East Asia. Key research directions include the role of metamorphic fluids in ore formation, the tectonic evolution of the North China Craton, and the geodynamic setting of large-scale gold provinces such as Jiaodong. The lab also investigates the interplay between subduction, crustal deformation, and magmatism in the context of supercontinent assembly and breakup.
Professor Sung Soo Park's research lab specializes in the design and synthesis of advanced functional materials, with a strong focus on mesoporous and nanostructured materials for energy, environmental, and biomedical applications. The lab develops innovative materials such as mesoporous carbon nitrides, periodic mesoporous organosilicas (PMOs), and hollow mesoporous silica spheres, often functionalized with tailored organic groups to enhance performance. Key research directions include the development of novel dyes for dye-sensitized solar cells, functional nanomaterials for drug delivery and catalysis, and materials for gas adsorption and environmental remediation.
Professor Thorsten Schuetze's research lab focuses on sustainable urban development, with a strong emphasis on decentralized water management, climate-resilient infrastructure, and the integration of environmentally sound technologies in urban environments. The lab explores innovative strategies for rainwater harvesting, urban water security, and the enhancement of indoor environmental quality to support healthier and more resilient cities. Research spans from policy and planning frameworks to technological applications, particularly in urbanized delta regions and rapidly growing metropolitan areas.
Professor Jeong Yee's research lab specializes in pharmacogenomics, environmental health, and drug safety, with a focus on understanding how genetic variations and environmental exposures influence drug response and adverse outcomes. The lab conducts systematic reviews and meta-analyses to explore the impact of genetic polymorphisms—such as *CYP3A5* and *NAT2*—on drug metabolism and adverse drug reactions, particularly in patients receiving medications like statins, sulfasalazine, and vancomycin. Additionally, the lab investigates the health effects of environmental factors, such as air pollution, on respiratory and systemic diseases. Their work supports the development of personalized medicine and public health policies aimed at improving patient safety and outcomes.
Professor Suk Joo Bae's research lab specializes in reliability engineering and statistical modeling, with a focus on degradation analysis in electronic and microelectronic systems. The lab develops advanced nonlinear and random-coefficient models—such as change-point, bi-exponential, and logistic mixture models—to capture complex degradation behaviors in devices like plasma display panels, IC wafers, and MOS transistors. A key emphasis is on improving reliability estimation and yield prediction by integrating spatial, temporal, and contamination-related factors into statistical frameworks. The lab also applies these models to public health data, as seen in meta-analytical studies on malaria prevalence.
Professor E. Zalnezhad's research lab specializes in the design and fabrication of advanced nanostructured materials for energy storage and conversion applications. The lab focuses on developing binder-free, three-dimensional hierarchical electrode architectures based on transition metal oxides, hydroxides, sulfides, and spinels—particularly nickel cobaltite (NiCo₂O₄)—grown directly on conductive substrates like nickel foam. Key research directions include optimizing electrode morphology for enhanced ion transport and electronic conductivity, improving cyclability and specific capacitance, and exploring novel synthesis techniques such as hydrothermal synthesis, electrodeposition, and in situ conversion methods. The lab also investigates fatigue life prediction in metallic materials, reflecting a dual focus on structural integrity and functional materials for sustainable engineering solutions.
Professor Jinmyoung Joo's research lab specializes in the design and application of advanced nanomaterials for biomedical diagnostics and theranostics. The lab focuses on developing biocompatible, biodegradable nanomaterials—particularly porous and mesoporous silicon nanoparticles—engineered for enhanced imaging, drug delivery, and sensitive detection of biological targets. Key research directions include time-gated luminescence imaging using silicon-based probes, targeted RNAi delivery via graphene oxide-encapsulated nanocarriers, and innovative immunoassay platforms combining magnetic separation with microcantilever sensing. The lab integrates materials synthesis, surface engineering, and bioanalytical techniques to address challenges in early disease detection and personalized medicine.
Professor Minjung Park's research lab specializes in the intersection of technology, law, and organizational behavior, focusing on emerging risks in digital and financial ecosystems. The lab investigates privacy and cybersecurity challenges in online environments, the impact of information asymmetry on financial markets—particularly in cryptocurrency—alongside the role of behavioral and institutional factors in information security compliance. Additionally, the lab develops advanced data-driven models to assess ESG risks and fake news dynamics using natural language processing and explainable AI, aiming to enhance transparency and decision-making in regulatory and investment contexts.
Professor Youn-Hee Lim's research lab focuses on the health impacts of environmental exposures, particularly air pollution and chemical contaminants, during critical developmental periods such as early childhood and old age. The lab investigates the associations between ultrafine particles, criteria air pollutants (e.g., PM10, NO2, O3), and perfluoroalkyl substances (PFAS) with mental health outcomes, including depressive symptoms and ADHD. Using longitudinal cohort studies with biomonitoring and environmental monitoring, the lab aims to identify vulnerable populations and inform public health policies. Their work bridges environmental epidemiology, toxicology, and population health.
Professor Chulung Lee's research lab specializes in technology innovation and strategic management, with a strong focus on sustainable energy technologies, digital transformation in logistics, and the strategic use of patent and big data analytics. The lab investigates emerging technologies such as electric vehicles, wireless power transfer, hydrogen fuel cell transportation, and last-mile delivery systems, emphasizing technology trend analysis, innovation strategy, and policy implications. By leveraging text mining, econometric modeling, and patent analysis, the lab identifies promising technological pathways and supports evidence-based R&D decision-making for industry and government.
Professor Jin Kon Kim's research lab specializes in the design and synthesis of advanced nanomaterials for sustainable energy applications, with a strong focus on energy storage and conversion technologies. The lab develops innovative nanostructured materials—such as mesoporous carbon composites, spinel oxides, and block copolymer-based membranes—for use in lithium-ion batteries, piezoelectric/triboelectric nanogenerators, and high-performance solar cells. Key research directions include enhancing electrical conductivity through controlled nanoarchitecture, improving mechanical stability of functional membranes, and advancing green energy harvesting using biocompatible and scalable materials. The lab emphasizes the integration of materials science with environmental sustainability, targeting next-generation wearable, portable, and flexible electronic devices.
Professor Mi Kyung Kim's research lab focuses on the epidemiological and nutritional determinants of chronic diseases, particularly cancer and metabolic syndrome, with a strong emphasis on dietary patterns, micronutrients, and functional foods in Asian populations. The lab conducts large-scale cohort and case-control studies to investigate how diet, including specific food items like seaweed and dietary patterns such as 'healthy,' 'traditional,' and 'Western,' influence the risk of gastric, colorectal, and breast cancers. Additionally, the lab explores the role of micronutrients like vitamin C in long-term health outcomes, including blood pressure regulation, and contributes to translational cancer immunotherapy research through oncolytic virus studies. Their work bridges nutritional epidemiology with molecular mechanisms to inform preventive strategies in populations with unique dietary habits, such as those consuming white rice as a staple.