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 Jung-Hoon Yoon's research lab specializes in microbial ecology and biotechnology, with a focus on isolating and characterizing novel halophilic and extremophilic microorganisms from marine and coastal environments such as salt marshes and tidal flats. The lab investigates the taxonomic, physiological, and biochemical properties of these microbes, particularly those with potential applications in bioremediation, industrial enzymes, and biotechnology. Additionally, the lab explores the molecular mechanisms of carcinogenesis, especially the role of environmental mutagens and epigenetic changes like CpG methylation in tumor suppressor genes such as RASSF1A and p53 in human cancers.
Professor Jin Kyun Kim's research lab specializes in enzymology and structural biology, with a primary focus on understanding the molecular mechanisms of metalloenzymes, particularly human carbonic anhydrase II (CA II). The lab employs advanced techniques such as ultrahigh-resolution X-ray crystallography, cryocooling, and UV photolysis to visualize catalytic intermediates and active-site water dynamics in real time. Their work reveals how metal ion identity, coordination geometry, and proton-transfer networks govern catalytic efficiency and specificity, providing fundamental insights into enzyme function and design. The lab also explores the role of cytokines like GM-CSF in neural progenitor cell regulation, extending their impact into regenerative biology.
Professor Yujong Hwang's research lab focuses on information systems, technology adoption, and knowledge management in digital and organizational contexts. The lab explores user behavior in mandatory technology environments, e-service quality, and the role of informal controls in enterprise system adoption. It also investigates personal information management, technology-mediated learning, and online consumer behavior, with an emphasis on psychological and cultural factors influencing technology use and knowledge sharing.
Professor Yoonchan Jeong's research lab specializes in high-power, high-efficiency rare-earth-doped fiber lasers, with a focus on ytterbium-doped and erbium:ytterbium-codoped fiber systems. The lab pioneers cladding-pumped fiber laser architectures that achieve multi-kilowatt continuous-wave output with near-diffraction-limited beam quality, exceptional slope efficiency, and suppression of nonlinear and thermal limitations. Key research directions include power scaling through advanced thermal management, mitigation of stimulated Brillouin scattering (SBS), and the strategic use of Yb colasing to stabilize high-power operation. The lab also develops single-frequency, polarization-maintained MOPA systems for industrial and scientific applications.
Professor Seog Bae Oh's research lab specializes in neuroimmunology and pain mechanisms, with a focus on the role of innate immune cells—particularly natural killer (NK) cells and glial cells—in peripheral nerve injury and chronic pain. The lab investigates how immune activation in sensory ganglia and spinal cord contributes to neuronal sensitization, axonal degeneration, and pain hypersensitivity. Using a combination of behavioral, cellular, and molecular approaches, the lab explores the interactions between the nervous and immune systems in conditions such as neuropathic pain, dental pain, and HIV-associated neurocognitive disorders. A central theme is the identification of endogenous signals and immune effector mechanisms that drive or resolve neuronal damage and pain.
Professor Chul-Sung Huh's research lab focuses on the host-microbiome interactions, particularly in the context of metabolic and inflammatory diseases. The lab investigates the roles of gut and skin microbiomes in health and disease, with an emphasis on ethnic, age, and gender differences in microbial composition. A key research direction involves developing and evaluating probiotics—especially host-specific strains like *Lactobacillus salivarius* and *Lactobacillus rhamnosus*—as therapeutic agents for conditions such as diet-induced obesity, inflammatory bowel disease (IBD), and gut barrier dysfunction. The lab also develops advanced delivery systems, such as pH-sensitive tablets using phthalyl inulin, to enhance probiotic survival through the gastrointestinal tract.
Professor Yong Weon Seo's research lab focuses on plant molecular biology and stress adaptation, particularly in cereal crops like wheat. The lab investigates molecular mechanisms underlying responses to environmental stresses such as hypoxia, ionizing radiation, and oxidative stress, with a strong emphasis on gene regulation, post-translational modifications, and antioxidant defense systems. Key research directions include the identification and functional characterization of stress-responsive genes—such as Myb transcription factors and U-box E3 ligases—across the wheat genome, as well as the physiological and molecular impacts of low-dose gamma irradiation. The lab integrates genomics, transcriptomics, and functional genetics to understand stress signaling pathways in Triticeae species.
Professor Jee-Hoon Ryu's research lab focuses on food safety and microbial control, particularly targeting pathogenic bacteria such as Escherichia coli O157:H7. The lab investigates microbial resistance mechanisms—such as biofilm formation via curli and exopolysaccharides—and develops effective, non-thermal decontamination methods for fresh produce and food processing environments. Research also emphasizes preserving seed viability during pathogen inactivation, especially for sprout-producing seeds like radishes, using chemical sanitizers and thermal treatments. The lab’s work bridges microbiology, food processing, and sanitation strategies to enhance food safety without compromising product quality.
Professor Chul Hoon Kim's research lab specializes in ultrafast photophysics and photochemistry, focusing on intramolecular energy and charge transfer dynamics in organic and hybrid materials. The lab investigates excited-state processes such as excited-state intramolecular proton transfer (ESIPT) and intramolecular charge transfer (ICT) using advanced femtosecond time-resolved fluorescence techniques. Key research directions include the design and characterization of functional dyes, metal-organic frameworks (MOFs), and hybrid photocatalysts for solar energy conversion and CO₂ reduction. The lab also develops high-resolution spectroscopic tools to probe ultrafast dynamics with sub-100 fs time resolution.
Professor Jung-Mi Hah's research lab specializes in the design and development of novel, selective small-molecule inhibitors targeting key signaling kinases, particularly c-Jun N-terminal kinase 3 (JNK3), for the treatment of neurodegenerative diseases such as Alzheimer’s and Parkinson’s disease. The lab focuses on structural optimization of kinase inhibitors to enhance potency, selectivity, and pharmacokinetic properties, with an emphasis on novel scaffolds like benzimidazoles, pyrazoles, and dihydropyrroloimidazoles. Their work integrates medicinal chemistry, structural biology, and in vivo pharmacological evaluation to translate promising compounds into potential therapeutics.
Professor Jin-Kyu Rhee's research lab specializes in the development of bioinspired and biocompatible nanosystems for biomedical applications, with a focus on virus-like particles (VLPs) as versatile platforms for targeted drug delivery, imaging, and theranostics. The lab explores functionalization strategies for VLPs to enable simultaneous therapeutic and diagnostic capabilities, including photodynamic therapy and receptor-specific targeting. Additionally, the lab investigates microbial communities in fermented foods to understand their biotechnological potential and enzyme discovery from extreme environments, such as thermostable esterases from metagenomic libraries. These interdisciplinary efforts bridge synthetic biology, nanomedicine, and environmental biotechnology.
Professor Woo-Young Ahn's research lab specializes in computational psychiatry and decision neuroscience, focusing on understanding the neurocognitive mechanisms underlying psychiatric and substance use disorders through computational modeling and neuroimaging. The lab integrates reinforcement learning, Bayesian modeling, and neuroimaging techniques such as fMRI and EEG to dissect individual differences in decision-making processes and their neural substrates. A key focus is developing and applying advanced statistical methods—particularly hierarchical Bayesian models—to improve the reliability of individual-level parameter estimation in cognitive models.
Professor Mi Sun Park's research lab focuses on sustainable development through interdisciplinary research in eco-innovation, agroforestry systems, and community-based natural resource management. The lab investigates ecosystem services, particularly in the Asia-Pacific region, with an emphasis on agroforestry's role in enhancing environmental, economic, and social resilience. It also explores policy instruments for eco-innovation in both developed and developing countries, and examines the biological mechanisms of repurposed pharmaceuticals for anti-tumor applications. A key theme is the integration of social capital and institutional frameworks in achieving sustainable forest management and ecological restoration.
Professor Han Suk Ryu's research lab specializes in molecular oncology and cancer diagnostics, with a focus on identifying novel biomarkers and immune microenvironment regulators in thyroid and liver cancers. The lab investigates key signaling molecules such as CXCL12, IDO, and SIRT1, aiming to improve diagnostic accuracy and understand immune evasion mechanisms in papillary thyroid cancer (PTC) and hepatocellular carcinoma. Their work integrates immunohistochemistry, molecular pathology, and translational research to develop supplementary diagnostic tools and explore therapeutic targets.
Professor Soo-Ho Jo's research lab specializes in phononic crystals, piezoelectric energy harvesting, and structural health monitoring, with a strong focus on advancing ultrasonic transducers and intelligent fault detection systems. The lab explores innovative designs of defect-integrated phononic crystals to enhance broadband elastic wave localization and energy harvesting efficiency, particularly through multi-defect configurations and tailored bandgap engineering. It also pioneers data-driven and model-based approaches for prognostics and health management in aerospace and mechanical systems, integrating machine learning with physical modeling. The lab’s work bridges fundamental acoustics and materials science with practical applications in sustainable energy and predictive maintenance.
Professor Jaelim Cho's research lab focuses on the intersection of metabolic diseases, pancreatic disorders, and their long-term systemic impacts, including cancer, mortality, and neurocognitive decline. The lab investigates the pathophysiological links between diabetes, pancreatitis, and pancreatic cancer, particularly in the context of post-pancreatitis diabetes mellitus (PPDM), aiming to improve early detection and clinical management. Additionally, the lab explores environmental and behavioral factors—such as air pollution and psychosocial health—contributing to neurological and mental health outcomes in individuals with chronic physical illnesses.
Professor Yong Sang Lee's research lab specializes in thyroid cancer surgery, with a focus on optimizing surgical strategies based on tumor characteristics and extent of disease. The lab investigates the impact of surgical extent—such as central and lateral neck dissection—on complications, recurrence, and oncological outcomes in patients with papillary thyroid carcinoma. Research also explores the clinicopathological features of rare or occult thyroid cancers, including microcarcinomas and latent tumors found at autopsy, to guide personalized treatment approaches. The lab emphasizes evidence-based surgical decision-making, particularly for small or aggressive subtypes of thyroid cancer.
Professor Chulhwan Park's research lab specializes in bioresource engineering and industrial biotechnology, focusing on enhancing the production of high-value bioactive compounds such as cordycepin from medicinal fungi like *Cordyceps militaris*. The lab employs microbial strain improvement techniques, including UV mutagenesis, to optimize biosynthetic pathways and improve yield. It also investigates the impact of culture conditions on microbial fermentation processes to support sustainable bioproduction. Additionally, the lab explores mathematical frameworks for uncertainty modeling, applying soft set theory to algebraic structures such as WS-algebras and deductive systems.
Professor Duy Phong Pham's research lab specializes in advanced materials for sustainable energy and industrial protection, with a strong focus on optoelectronic materials for photovoltaics and corrosion-resistant coatings for high-voltage applications. The lab investigates transparent conducting oxides like Ga/In-codoped ZnO and carrier-selective contacts to enhance solar cell efficiency, while also developing eco-friendly, self-healing cerium-based coatings to combat industrial corrosion. Additionally, the lab explores innovative thermal management strategies for photovoltaic modules using phase change materials and water jacket designs to improve performance and reliability under real-world conditions. Their work bridges materials science, energy conversion, and industrial durability with an emphasis on practical, scalable solutions.
Professor Han Seo Ko's research lab specializes in experimental and theoretical fluid dynamics, focusing on transient multiphase flows and interfacial phenomena. The lab investigates complex fluid behaviors such as transient density distributions using advanced optical diagnostics like digital speckle tomography and particle image velocimetry (PIV). Key research directions include Marangoni convection driven by volatile liquid evaporation and absorption, with an emphasis on the role of vapor pressure and solubility in shaping internal flow patterns. The lab combines high-speed imaging, interferometry, and scaling models to understand and predict dynamic fluid behaviors at microscale interfaces.