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 Chanhyuk Park's research lab specializes in membrane science and water treatment technologies, focusing on the removal and fate of microplastics and organic pollutants in water resources. The lab investigates membrane fouling mechanisms, particularly the impact of feed water chemistry and organic characteristics on fouling indices like SDI, to enhance membrane performance and longevity. Research also emphasizes the development and optimization of advanced filtration systems, including polymeric and ceramic membranes, for effective microplastic and contaminant retention in wastewater treatment plants. The lab integrates experimental modeling with practical applications to support sustainable water purification solutions.
Professor Seonguk Seo's research lab specializes in advancing robust and fair machine learning through innovative deep learning techniques. The lab focuses on domain generalization, federated learning, and bias mitigation—particularly in scenarios with limited or no supervision—by developing novel normalization strategies, contrastive learning frameworks, and information-theoretic bias measurement. A key emphasis is placed on improving model generalization, fairness, and uncertainty calibration in real-world, data-heterogeneous environments.
Professor Jongeun Choi's research lab specializes in intelligent sensing systems, spatio-temporal modeling, and machine learning for biomedical and physical systems. The lab develops self-organizing multi-agent systems that adaptively learn and predict complex spatio-temporal processes using noisy sensor data, with applications in healthcare, environmental monitoring, and biomechanics. A key focus is on interpretable artificial intelligence (XAI) for clinical decision support, particularly in osteoporosis risk screening, and on integrating physical priors—such as those from growth and remodeling models—into data-driven frameworks. The lab also explores biological regulation mechanisms in reproductive physiology, particularly autophagy in luteal cells, through computational and systems biology approaches.
Professor Seungjun Kim's research lab specializes in advanced structural and electronic systems, focusing on flexible electronics, smart infrastructure monitoring, and dynamic structural behavior under extreme conditions. The lab develops innovative memory technologies such as flexible resistive random access memory (RRAM) and explores structural health monitoring for civil infrastructures like cable-stayed bridges and submerged floating tunnels. Research spans from nanoscale device fabrication using laser lift-off techniques to large-scale structural analysis using discrete-element and finite-element methods. The lab emphasizes practical applications in resilient infrastructure and next-generation electronic systems.
Professor Jina Kim's research lab focuses on interdisciplinary studies at the intersection of technology, mental health, and social well-being. The lab explores the application of artificial intelligence and signal processing to detect mental health conditions through digital behavior, such as social media posts, while also investigating human-centered technologies that foster emotional connection, such as bio-sensing devices for remote intimacy. Additionally, the lab engages in critical socio-cultural analysis of disability and globalization, and contributes to engineering solutions through precise modeling of functional materials like piezoelectric ceramics. These diverse yet interconnected research directions reflect a commitment to both technological innovation and social impact.
Professor Yong-Ho Choa's research lab specializes in the design, synthesis, and application of advanced nanomaterials for next-generation electronic and sensing devices. The lab focuses on developing low-cost, high-performance nanomaterials such as graphene, metal oxides, and chalcogenide nanostructures through innovative fabrication techniques like inkjet printing, electrospinning, and plasma-assisted synthesis. Key research directions include the development of flexible, wearable, and room-temperature gas sensors for environmental and industrial safety, with a strong emphasis on enhancing electrical conductivity, interfacial adhesion, and sensitivity using tailored nanostructures and surface engineering. The lab also explores scalable and eco-friendly synthesis methods for functional nanoparticles, particularly for energy and sensing applications.
Professor Yongtaek Hong's research lab specializes in the development of stretchable, flexible, and wearable electronic systems with a focus on advanced materials and innovative fabrication techniques. The lab pioneers novel approaches for creating highly sensitive, low-voltage, and mechanically robust pressure sensors, stretchable electrodes, and active electronic components using elastomeric substrates and conductive composites. Key research directions include the integration of nanomaterials such as silver nanowires and PEDOT:PSS into functional devices, with applications in electronic skins, wearable sensors, and stretchable displays. The lab emphasizes scalable, low-cost fabrication methods like inkjet printing and transfer printing to enable practical deployment of next-generation flexible electronics.
Professor Cheol-Woong Yang's research lab specializes in advanced materials science with a focus on nanomaterials, surface passivation, and thin film technologies for next-generation electronic and energy devices. The lab investigates facet-dependent surface passivation in perovskite solar cells, the development of ultrathin diffusion barriers for advanced copper interconnects, and the microstructural characterization of materials using advanced electron microscopy techniques. Their work bridges fundamental surface science with practical applications in renewable energy and microelectronics.
Professor Takhee Lee's research lab specializes in organic and 2D material-based electronic devices, with a focus on next-generation flexible and printable memory technologies. The lab explores fundamental charge transport mechanisms in molecular and organic electronic junctions, particularly through advanced nanofabrication techniques like mechanically controllable break junctions. Key research directions include the development of high-density, non-volatile organic resistive memory devices, hybrid 1D–1R architectures for cross-talk-free memory arrays, and graphene-based electrodes for flexible and transparent electronics. The lab also investigates the integration of these materials into three-dimensional and flexible device platforms for future wearable and implantable electronics.
Professor Meeyoung Cha's research lab focuses on understanding the dynamics of information diffusion, user influence, and social network behavior in online social media and user-generated content platforms. The lab investigates how content spreads across networks, with an emphasis on viral marketing, rumor propagation, and the role of structural and temporal features in shaping online influence. Using large-scale data from platforms like Twitter, YouTube, and IPTV systems, the lab combines empirical analysis with statistical modeling to uncover patterns in user engagement and content dissemination. Their work bridges sociology, computer science, and data science to study real-world social dynamics in digital environments.
Professor Sae Yun Kwon's research lab specializes in mercury biogeochemistry, focusing on the isotopic behavior of mercury in aquatic ecosystems. The lab investigates mercury sources, transformation processes, and trophic transfer dynamics using stable mercury isotope signatures (both mass-dependent and mass-independent fractionation). Key research directions include understanding mercury cycling in estuaries, paddy systems, and marine food webs through controlled feeding experiments and field-based isotope analyses.
Professor Jong-San Chang's research lab specializes in the design and functionalization of metal-organic frameworks (MOFs) and related porous materials for sustainable energy and environmental applications. Key research directions include the development of site-selective functionalization strategies for MOFs like MIL-101(Cr) and Zr-based MOFs, with a focus on enhancing catalytic activity in biomass conversion and carbon capture. The lab also explores advanced MOFs for water sorption and dehumidification, emphasizing hierarchical porosity and thermal stability. Additionally, they investigate transition metal-based nanocomposites for efficient catalytic upgrading of biomass-derived feedstocks under mild conditions.
Professor Chae-Ok Yun's research lab specializes in cancer immunotherapy, focusing on the development of oncolytic adenoviruses as multifunctional platforms to enhance antitumor immune responses. The lab pioneers gene-based strategies that co-deliver immune-stimulating molecules such as IL-12, IL-18, 4-1BBL, and GM-CSF to activate T cells and natural killer cells, while overcoming immunosuppressive tumor microenvironments. A key focus is combining oncolytic virotherapy with immunogenic cell death inducers and dendritic cell vaccination to amplify systemic antitumor immunity. The lab also explores novel synthetic polypeptides that trigger immunogenic cell death through ER stress and mitochondrial disruption.
Professor Sung-Il Cho's research lab focuses on occupational and environmental health, with a strong emphasis on the impact of workplace exposures—such as organic solvents—on reproductive and psychological health. The lab investigates how socioeconomic status, family demands, and housing conditions influence health outcomes, particularly in vulnerable populations like industrial workers and the economically disadvantaged. Their work bridges environmental epidemiology with public health policy, aiming to inform interventions that address social determinants of health.
Professor Seongil Im's research lab specializes in two-dimensional (2D) van der Waals heterostructures and 2D semiconductor devices, focusing on the development of high-performance, low-voltage electronic and optoelectronic devices. Key research directions include the fabrication and characterization of 2D transition metal dichalcogenide (TMD)-based p-n diodes, Schottky junctions, and field-effect transistors with enhanced mobility, rectification, and photoresponse. The lab also investigates dielectric engineering using high-k and bilayer gate dielectrics to improve device performance and stability, particularly in air-stable p-type WSe₂ and MoS₂ transistors. Additionally, the group explores the growth and optimization of wide-bandgap oxide semiconductors such as ZnO for advanced optoelectronic applications.
Professor Hong-Seok Son's research lab specializes in microbial and metabolomic analysis, focusing on the interplay between gut and environmental microbiota and their metabolic profiles in relation to human health and food fermentation. The lab employs advanced omics technologies—such as 1H NMR, GC-MS, and 16S rRNA sequencing—to investigate microbial communities and metabolites in fermented foods (e.g., kimchi, wine), host-microbe interactions (e.g., in obesity), and oral health (e.g., halitosis). A central theme is understanding how microbial metabolites influence physiological outcomes and food quality across different environmental and dietary conditions. The lab also applies machine learning to metabolomic data for predictive modeling of biological states, such as ripening stages or disease-related shifts.
Professor Do Kyun Kim's research lab specializes in marine structural integrity and reliability, with a strong focus on age-related degradation mechanisms in ships and offshore structures. The lab investigates corrosion damage modeling, fatigue assessment, and ultimate strength performance of ship hulls under time-dependent deterioration, particularly in aging vessels. Key research directions include developing probabilistic and data-driven models for nonlinear corrosion wastage, validating structural reliability under harsh marine environments, and improving design rules for bulk carriers and oil tankers. The lab integrates experimental data, statistical analysis, and advanced numerical simulations to enhance safety and longevity of marine structures.
Professor Wang Zhang's research lab specializes in the design and synthesis of advanced functional nanomaterials for energy conversion and storage, with a strong focus on sustainable and green fabrication methods. Key research directions include the development of graphene-based composites, metal-organic frameworks, and covalent organic frameworks for applications in supercapacitors, lithium-sulfur batteries, and hydrogen storage. The lab also investigates supramolecular systems for enhancing the stability and performance of fullerenes and other nanocarbons in aqueous environments, leveraging host-guest chemistry and microenvironment engineering to improve electrochemical and photophysical properties.
Professor Hongje Seong's research lab specializes in computer vision and deep learning, with a primary focus on video understanding, scene recognition, and semi-supervised video object segmentation. The lab develops advanced neural network architectures—such as memory-based networks, Transformers, and fusion frameworks—that emphasize spatio-temporal modeling, contextual reasoning, and efficient feature learning. Key research directions include hierarchical and kernelized memory mechanisms, attention-based feature aggregation, and end-to-end training with specialized loss functions to improve generalization and robustness.
Professor Jitendra Kumar Singh's research lab specializes in sustainable materials development with a focus on energy storage, biomass conversion, and green construction materials. The lab investigates phase change materials (PCMs) like stearic and lauric acid for thermal energy storage, employing microencapsulation techniques to enhance stability and performance. It also explores the valorization of underutilized biomass—particularly water hyacinth—into biofuels and bioproducts using advanced pretreatment methods involving ionic liquids and microbial processes. Additionally, the lab develops eco-friendly construction materials, such as geopolymer concrete incorporating bamboo ash, for high-temperature resilience and sustainability.