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 Gyung-Won Moon's research lab specializes in power electronics and energy systems, with a strong focus on battery management systems (BMS) and wireless power transfer (WPT) technologies. The lab develops innovative, high-efficiency power conversion circuits—particularly for electric and hybrid vehicles—emphasizing modularized charge equalizers, switched capacitor topologies, and high step-up converters for reliable and scalable energy storage applications. Their work also extends to optimizing wireless power transfer systems using intermediate coils to enhance efficiency and stability in low-coupling environments. The lab’s research bridges theoretical analysis, circuit design, and practical implementation to address real-world challenges in energy storage and conversion.
Professor Sungyool Choi's research lab specializes in the development of advanced two-dimensional materials and nanomaterials for next-generation electronic, optoelectronic, and energy-related applications. The lab focuses on scalable synthesis of high-quality 2D transition metal dichalcogenides, such as MoS₂ and MoSe₂, for flexible and large-area electronics, as well as on designing van der Waals heterostructures for high-performance photodetectors and neuromorphic devices. A key research direction involves engineering nanoscale heterostructures and resistive switching mechanisms in organic and oxide-based materials for low-power, flexible, and analog-compatible memristors suitable for artificial intelligence hardware. The lab also explores advanced gas-sensing platforms using tailored nanostructured metal oxides for high sensitivity and selectivity.
Professor Ji-Yong Eom's research lab focuses on integrated assessment modeling and energy system analysis to address climate change mitigation and sustainable energy transitions, with a strong emphasis on long-term decarbonization pathways, power sector transformation, and the role of critical technologies such as carbon capture and storage (CCS) and negative emission technologies (NETs). The lab also explores the socio-technical dimensions of energy policy, including consumer behavior, demand-side management, and the impacts of climate change on food security and international trade. Additionally, the lab investigates advanced materials for energy applications, particularly silicon-based anodes reinforced with carbon nanotubes for high-performance lithium-ion batteries. The research integrates engineering, economics, and environmental science to support national and global climate policy goals, especially in the context of Korea’s 2050 carbon neutrality ambition.
Professor Suk-Woo Son's research lab focuses on atmospheric dynamics and climate change, with a particular emphasis on the interactions between stratospheric processes and tropospheric circulation. The lab investigates the impacts of stratospheric ozone depletion and recovery, the quasi-biennial oscillation (QBO), and the Madden-Julian Oscillation (MJO) on global and Southern Hemisphere climate variability. Using advanced chemistry-climate models and high-resolution observational data such as GPS radio occultation, the lab examines tropopause structure, jet stream dynamics, and long-term climate trends. Their work provides critical insights into how stratospheric changes influence weather patterns and climate system responses.
Professor Ji Eun Oh's research lab focuses on mucosal immunology and the host response to viral infections, with a particular emphasis on the role of innate and adaptive immunity at barrier surfaces such as the respiratory and genital mucosa. The lab investigates how commensal microbiota, pattern recognition receptors, and autophagy modulate antiviral immunity, and explores the impact of microbial dysbiosis on disease susceptibility. Additionally, the lab integrates medical imaging and molecular genetics to study tumor heterogeneity, particularly in glioblastoma and colorectal cancer, linking genetic alterations like KRAS and IDH mutations to clinical outcomes. Recent work also highlights tissue-resident B cells as key players in rapid, localized immune defense at mucosal sites.
Professor Jae-kyung Jeong's research lab specializes in the development and optimization of high-performance, stable oxide semiconductor thin-film transistors (TFTs) for next-generation display and flexible electronics. The lab focuses on novel channel materials such as amorphous indium gallium zinc oxide (a-IGZO) and ZrInZnO, exploring composition engineering, cosputtering techniques, and passivation strategies to enhance device mobility, subthreshold characteristics, and long-term reliability under bias and light stress. A key research direction involves understanding and mitigating electrical instability mechanisms, particularly those induced by ambient interactions at the IGZO backchannel surface.
Professor Ji Young Kim's research spans environmental health, molecular epigenetics, and nutraceutical science, with a focus on understanding the biological impacts of environmental pollutants, the epigenetic regulation of disease, and the health-promoting effects of dietary phytochemicals. Her lab investigates how airborne particulate matter and heavy metals like cadmium affect cellular signaling and immune function, explores the role of histone-modifying enzymes in cancer development, and examines the bioactive compounds in cocoa for their potential in disease prevention. The integration of environmental exposure, molecular mechanisms, and functional foods defines the interdisciplinary nature of her research program.
Professor Jun Ho Lee's research lab focuses on molecular and developmental biology, with a strong emphasis on genetic regulation, intracellular trafficking, and RNA-mediated gene regulation in model organisms such as *C. elegans* and *Drosophila*. The lab investigates fundamental mechanisms of cell signaling, including Hedgehog pathway dynamics and clathrin-mediated trafficking, while also exploring the role of small non-coding RNAs in behavior and development. Recent work highlights the genetic and epigenetic regulation of complex behaviors like phoresy and the functional conservation of transcription factors across evolution. The lab integrates forward genetics, molecular imaging, and functional genomics to dissect conserved biological pathways with implications for human disease.
Professor Yong-Hyun Kim's research lab specializes in computational and experimental materials science, focusing on the atomic-scale design and stabilization of nanomaterials for energy and optoelectronic applications. Key research directions include the development of air-stable quantum dots for photovoltaics, understanding surface chemistry and ligand effects in nanocrystals, and exploring novel electronic and mechanical properties in 2D materials and nanostructures. The lab combines first-principles calculations with advanced characterization techniques to uncover structure-property relationships at the nanoscale.
Professor Ki-Jung Yong's research lab specializes in the design, synthesis, and application of advanced nanomaterials for energy and environmental technologies. The lab focuses on developing low-temperature, solution-based methods to fabricate nanostructured materials such as ZnO, CdS, perovskite, and quantum dot heterostructures for use in solar cells, gas sensors, and photoelectrochemical devices. Key research directions include enhancing the stability and efficiency of perovskite solar cells through surface passivation, engineering core/shell nanowire arrays for improved light absorption and charge separation, and investigating the gas-sensing mechanisms of metal oxide nanostructures for environmental monitoring. The lab emphasizes scalable, cost-effective fabrication techniques compatible with industrial applications.
Professor Lee, Myoung-Gyu's research lab specializes in advanced forming technologies and materials modeling, with a focus on lightweight sheet metals for aerospace and automotive applications. The lab develops innovative numerical simulation and theoretical modeling techniques to enhance the performance and efficiency of sheet metal forming processes. Key research directions include the characterization of formability, failure mechanisms, and microstructural evolution in advanced metallic materials under complex forming conditions.
Professor Chang Guk Ryu's research lab specializes in sustainable energy conversion and materials chemistry, focusing on waste-to-energy technologies such as waste-to-energy (WtE) incineration, slow pyrolysis for char production, and advanced inorganic complexes for photophysical and electron transfer applications. The lab investigates energy recovery from municipal solid waste and biomass, emphasizing high-efficiency energy conversion, greenhouse gas reduction, and the development of functional metal complexes for optoelectronic and catalytic applications. Key research directions include thermal conversion of non-recyclable waste into usable energy carriers, characterization of pyrolysis-derived biochar, and the synthesis of polypyridyl and copper(I) complexes with tailored photophysical and electron transfer properties. The lab's work bridges environmental sustainability and inorganic materials science, aiming to develop practical solutions for renewable energy and waste management.
Professor Young Sun Kim's research lab specializes in translational biomedical research, focusing on developing innovative nanotherapeutic platforms and gene therapies to treat cancer, neurological disorders, and genetic immunodeficiencies. The lab integrates nanomedicine, immunomodulation, and molecular genetics to reprogram tumor microenvironments, enhance nerve regeneration, and correct genetic defects in immune cells. A central theme is the design of multifunctional delivery systems—particularly nanoemulsions and viral vectors—that simultaneously target disease pathology and modulate the immune system or endogenous repair mechanisms. The lab also investigates fundamental transcriptional regulation, particularly through the Mediator complex, to understand gene expression control in stress responses and disease.
Professor Hojung Kwon's research lab specializes in molecular and cellular pharmacology, with a focus on identifying and characterizing natural products and small molecules that modulate key cellular processes such as autophagy, epigenetic regulation, and angiogenesis. The lab employs innovative chemical biology approaches—such as drug affinity-based target identification (DARTS) and biomolecular fluorescence complementation (BiFC)—to uncover the molecular targets and mechanisms of bioactive compounds. A central theme in the lab’s work is the development of novel therapeutic strategies for metabolic disorders, cancer, and neurodegenerative diseases by targeting transcriptional regulators like TFEB and epigenetic enzymes such as histone deacetylases (HDACs).
Professor Byung-Gon Chun's research lab focuses on mobile and cloud computing systems, with a strong emphasis on intelligent offloading, dynamic resource management, and resilient distributed systems. The lab explores innovative architectures like CloneCloud that enable seamless execution offloading from mobile devices to cloud-based clones, enhancing performance and energy efficiency. It also investigates replication strategies, fault tolerance, and incentive mechanisms in decentralized systems, often using game-theoretic and formal verification approaches to ensure scalability and reliability. The lab's work bridges mobile application execution with cloud infrastructure, aiming to create adaptive, efficient, and trustworthy computing environments.
Professor Lee, Kyung-Hun's research lab focuses on translational oncology, with a strong emphasis on identifying and validating biomarkers for early detection and prognosis of cancer, particularly in breast and gastrointestinal cancers. The lab investigates molecular mechanisms underlying tumor progression and therapy response, including roles of key proteins such as Bcl-2, HSP90, and DNA damage response pathways. It also explores targeted and immunotherapeutic strategies, including HSP90 inhibitors and PD-L1 blockade, in preclinical and clinical settings. The integration of molecular profiling with imaging and circulating biomarkers underscores the lab’s mission to improve personalized cancer care.
Professor Sung Gon Kim's research lab specializes in the design, synthesis, and characterization of advanced functional materials with a focus on electron-rich systems such as electrides, nanomaterials, and low-dimensional quantum materials. The lab explores the unique electronic, magnetic, and thermoelectric properties arising from interstitial anionic electrons (IAEs) in structured lattices, particularly in two-dimensional electrides and transition metal chalcogenides. Key research directions include tuning magnetic and electronic behaviors through chemical pressure, defect engineering, and surface electron encapsulation, with applications in spintronics, catalysis, and energy conversion.
Professor Jungbae Kim's research lab specializes in the design and engineering of advanced enzyme-based nanomaterials for biomedical and environmental applications. The lab focuses on enhancing enzyme stability and activity through innovative nano-architectures such as armored nanoparticles, electrospun nanofibers, and hierarchical mesoporous composites. Key research directions include enzyme stabilization for catalytic applications, development of multifunctional nanocatalysts for cancer therapy, and the creation of durable, recoverable biocatalysts for sustainable processes. The lab integrates principles of nanotechnology, bioconjugation, and materials science to develop smart, efficient, and stable enzyme systems.
Professor Ao Liu's research lab specializes in the development of solution-processed oxide semiconductors and perovskite materials for next-generation optoelectronic devices. The lab focuses on low-temperature fabrication techniques, defect passivation strategies, and dielectric engineering to enhance the performance and stability of thin-film transistors and perovskite solar cells. Key research directions include p-type and n-type oxide semiconductors, high-κ dielectrics, and interface engineering for efficient charge transport and reduced recombination losses. The lab emphasizes scalable, low-cost, and environmentally friendly processing methods for large-area, flexible, and transparent electronics.
Professor Chang-Ha Lee's research lab specializes in adsorption science and separation processes, with a strong focus on the development and optimization of advanced adsorbents—such as zeolites, activated carbon, and carbon molecular sieves—for gas and vapor separation. The lab investigates equilibrium and dynamic adsorption behaviors, particularly for CO₂, CH₄, H₂, and water vapor, using both experimental and theoretical approaches. Key research directions include pressure swing adsorption (PSA) processes for hydrogen purification, landfill gas upgrading, and carbon dioxide capture, with an emphasis on accurate modeling that accounts for heat effects and concentration-dependent mass transfer.