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 Junho Chung's research lab specializes in translational immunology and targeted cancer therapy, focusing on the molecular mechanisms of immune responses and receptor signaling in disease. The lab investigates stereotypic antibody responses in viral infections, such as SARS-CoV-2, and explores therapeutic targets like gremlin-1, VCAM-1, and HER2 mutants in cancer. Utilizing advanced techniques such as phage display and structural immunology, the lab develops novel biologics—including chimeric antibodies and inhibitors—for precision medicine applications. Current work emphasizes understanding receptor-ligand interactions and designing therapeutics with improved specificity and reduced off-target effects.
Professor Junho Chung's research lab specializes in advanced materials and biomedical technologies, focusing on nanomaterials for energy and environmental applications, as well as therapeutic and diagnostic solutions for infectious diseases and cancer. The lab investigates the fundamental behaviors of polymers and doped metal oxides under nanoscale confinement, exploring their unique optical, catalytic, and transport properties. It also develops novel biologics and vaccines by targeting viral immune evasion mechanisms and optimizing antibody-based therapeutics.
Professor Hyangkyu Lee's research lab focuses on cellular signaling mechanisms involving caveolin proteins, particularly caveolin-1 and caveolin-2, with a central emphasis on tyrosine phosphorylation and its role in cancer progression, cell migration, and metabolic regulation. The lab investigates the interplay between tyrosine kinases (e.g., c-Src), phosphatases (e.g., PTP1B), and post-translational modifications such as palmitoylation and phosphorylation in regulating caveolin function and subcellular localization. Additionally, the lab explores the metabolic effects of pharmacological agents like statins and polyphenols (e.g., Oligonol), linking cellular signaling to hepatic glucose metabolism and adipogenesis.
Professor Kyeounghak Kim's research lab specializes in the design and mechanistic understanding of advanced functional materials for sustainable energy and environmental applications. The lab focuses on heterogeneous catalysis, particularly the development of ceria-based and perovskite-type oxides for CO oxidation, dry reforming of methane, and nitrous oxide reduction. By integrating advanced theoretical calculations—especially density functional theory (DFT)—with precise synthesis and characterization techniques, the lab uncovers structure-activity relationships at the atomic level. A key research direction involves engineering surface and electronic structures through doping, shell thickness control, and oxygen vacancy engineering to enhance catalytic activity and stability.
Professor Younghwan Yang's research lab specializes in nanophotonics and metamaterials, focusing on the design, fabrication, and application of tunable metasurfaces for advanced wavefront control. The lab explores innovative metasurface architectures for high-efficiency metalenses, dynamic holography, and compact photonic devices, with an emphasis on materials engineering—particularly hydrogenated amorphous silicon—to optimize optical performance. Key research directions include nanofabrication techniques for subwavelength structures, integration of metasurfaces with functional optical components, and enhancing device efficiency through tailored material properties.
Professor Seung Soo Oh's research lab specializes in the development of advanced nucleic acid-based biosensors and targeted delivery systems, with a focus on aptamer technology and microfluidic platforms. The lab pioneers innovative strategies for generating high-affinity aptamers and self-reporting systems that enable label-free, fluorescence-based detection of biomolecules with high sensitivity and specificity. By integrating principles from synthetic biology, nanotechnology, and microfluidics, the lab designs smart molecular tools for diagnostics and therapeutics, including aptamer-polymer hybrids for controlled drug delivery. Their work emphasizes rapid, efficient, and reproducible selection methods, such as VDC-MSELEX and microfluidic phage display, to accelerate the discovery of functional biomolecules.
Professor Young Jun Oh's research lab specializes in perioperative medicine and critical care, with a focus on improving postoperative recovery and managing surgical stress responses. The lab investigates the effects of anesthetic agents—particularly dexmedetomidine—on hemodynamic stability, organ function, and quality of recovery following minimally invasive surgeries such as video-assisted thoracoscopic surgery (VATS). Key research directions include the modulation of sympathetic overactivity, endothelial dysfunction, and neurohormonal responses in surgical patients, as well as exploring novel analgesic and cardioprotective strategies. The lab also examines neurotoxic mechanisms in dopaminergic neurons, contributing to the understanding of Parkinsonian disorders.
Professor Byung Woo Jhun's research lab specializes in pulmonary and infectious diseases, with a primary focus on nontuberculous mycobacterial (NTM) lung disease and its complications, including chronic pulmonary aspergillosis (CPA). The lab investigates clinical phenotypes, prognostic factors, treatment responses, and antimicrobial resistance patterns in NTM and other difficult-to-treat respiratory infections. A key research direction involves evaluating novel and salvage therapies—such as inhaled amikacin and early cidofovir—particularly in non-immunocompromised patients with severe viral or mycobacterial pneumonia. The lab also explores host-pathogen interactions and long-term outcomes in patients with refractory or recurrent disease.
Professor Woojin Kwon's research lab specializes in observational astrophysics, focusing on the role of magnetic fields and dust properties in star-forming regions. The lab conducts high-resolution submillimeter and millimeter-wave observations using advanced instruments such as SCUBA-2/POL-2 and CARMA to study the magnetic field structure, disk evolution, and outflow dynamics in protostars and protoplanetary disks. Their work emphasizes understanding the interplay between magnetic fields, turbulence, and gravitational collapse in molecular clouds, particularly in regions like ρ Oph, Taurus, and Serpens. The lab also employs Bayesian modeling to infer physical properties of disks and envelopes from continuum and line data.
Professor Jason Jungsik Song's research lab focuses on translational biomedical research with a strong emphasis on regenerative medicine, inflammatory diseases, and novel therapeutic interventions. Key research directions include the molecular mechanisms of mesenchymal cell condensation in cartilage formation, the role of immune and coagulation systems in autoimmune arthritis, and the clinical evaluation of natural agents like honey in managing radiation-induced mucositis and wound healing. The lab integrates in vitro models, preclinical disease models, and clinical data synthesis to bridge basic science discoveries with patient-centered therapies.
Professor Hee Jun Kim's research lab specializes in advanced oxide semiconductor materials and devices, with a focus on resistive random access memory (RRAM) using biocompatible materials like glucose, high-performance thin-film transistors (TFTs) based on oxide semiconductors such as IGZO and copper oxide, and innovative hybrid semiconductor structures combining polymers with metal oxides for enhanced mechanical and electrical properties. The lab explores novel fabrication techniques—including solution processing, sputtering, and plasma polymerization—to improve device performance, stability, and compatibility with industrial manufacturing. Recent work also investigates chemical oxidation processes, such as hypochlorous acid treatment, to modulate the electronic properties of p-type oxide semiconductors for next-generation optoelectronic and memory applications.
Professor Jin-Ha Yoon's research lab focuses on occupational and environmental health, with a strong emphasis on the psychological and physiological impacts of workplace stressors and hazardous exposures. Key research directions include the associations between occupational noise, gender discrimination, and crystalline silica exposure with mental health outcomes such as depression and suicidal ideation, as well as the links between poor lung function and kidney or cardiovascular damage. The lab employs large-scale epidemiological studies and systematic reviews to investigate the long-term health effects of occupational hazards, particularly in Asian populations.
Professor Kimoon Lee's research lab specializes in the development and characterization of oxide-based thin-film transistors (TFTs), with a focus on ZnO and other wide-bandgap semiconductors for flexible and transparent electronics. The lab pioneers advanced electrical and optical techniques—such as photo-excited charge-collection spectroscopy and work function engineering using polymer/high-k dielectrics—to directly probe and quantify interfacial trap states and electronic properties at the nanoscale. Key research directions include dielectric engineering for low-voltage operation, atomic doping in two-dimensional materials, and the integration of ZnO-TFTs into functional logic circuits like inverters. The lab emphasizes both fundamental understanding of charge transport and interface physics and practical device applications in next-generation optoelectronics and energy-efficient electronics.
Professor Dongchan Jang's research lab specializes in the design, synthesis, and mechanical characterization of advanced nanostructured and hybrid materials, with a focus on understanding structure-property relationships at the nanoscale. Key research directions include the development of flexible and durable hard coatings for next-generation foldable electronics, the role of grain and twin boundaries in nanocrystalline metals, and the mechanical behavior of nanocrystalline and porous materials. The lab combines advanced fabrication techniques—such as e-beam lithography, electroplating, and proximity-field nanopatterning—with high-resolution microscopy and nanoindentation to explore mechanical performance, plasticity, and strengthening mechanisms in materials with tailored microstructures.
Professor Changhwan Shin's research lab specializes in advanced semiconductor devices and nanoscale materials for next-generation electronics and energy applications. The lab focuses on exploring novel transistor architectures—such as trigate, FD-SOI, and negative capacitance FETs—to overcome scaling limitations and improve performance, variability, and energy efficiency. It also investigates two-dimensional materials and ferroelectric oxides for applications in high-performance logic, memory, and photodetectors. A key theme across the research is the integration of atomic-scale simulation, advanced fabrication, and experimental characterization to enable breakthroughs in device physics and materials engineering.
Professor Jae Myeong Lee's research lab focuses on translational biomedical research and advanced materials development, with a strong emphasis on clinical applications in critical care medicine and wearable energy technologies. The lab investigates trace element metabolism in critically ill patients to improve treatment outcomes, while also pioneering flexible, high-performance, and safe fiber-based batteries using novel fabrication techniques like biscrolling for wearable electronics. Additionally, the lab contributes to interventional radiology and surgical oncology, particularly in evaluating stent placement for vascular complications in transplant patients and the impact of bile spillage in gallbladder cancer surgery. These diverse yet interconnected research directions reflect a commitment to advancing patient care through innovative materials and clinical insights.
Professor Ji-Sook Hahn's research lab focuses on systems biology and metabolic engineering in *Saccharomyces cerevisiae*, with a central emphasis on stress response mechanisms and the metabolic engineering of yeast for the sustainable production of high-value chemicals. The lab investigates transcriptional regulation by stress-responsive factors such as Hsf1 and Msn2, as well as signaling pathways like the Slt2 MAPK cascade, to understand cellular adaptation. A key research direction involves engineering yeast strains for efficient biosynthesis of compounds such as 2-phenylethanol and d-lactate through pathway optimization and adaptive evolution.
Professor Young-Ik Son's research lab specializes in diagnostic and prognostic imaging in head and neck oncology, with a focus on improving the accuracy of tumor characterization using advanced medical imaging techniques such as CT and MRI. The lab integrates radiological findings with histopathological features to better understand tumor behavior and enhance diagnostic precision. A key research direction involves leveraging artificial intelligence, particularly deep neural networks, to develop individualized survival prediction models for patients with laryngeal squamous cell carcinoma by analyzing diverse clinical and imaging variables. The lab also investigates the correlation between imaging phenotypes and histologic subtypes in salivary gland tumors, such as basal cell adenomas of the parotid gland.
Professor Yong-Sang Kim's research lab specializes in the development of miniaturized, integrated microsystems for biomedical and environmental sensing applications. The lab focuses on microfluidic devices, lab-on-a-chip systems, and advanced electronic sensors, particularly for point-of-care diagnostics and real-time detection of biomolecules and volatile organic compounds. Key research directions include microfabrication techniques such as nanoimprinting and inkjet printing, functional nanomaterials for sensing (e.g., graphene oxide, TiO₂, Pd/TiO₂), and the integration of electronic and fluidic components for portable, low-cost analytical platforms. The lab also explores novel driving schemes for micro-LED displays and the optimization of thin-film transistors for next-generation flexible and transparent electronics.
Professor Sung Noh Hong's research lab focuses on gastrointestinal and liver diseases, with a strong emphasis on the molecular mechanisms underlying colorectal cancer, inflammatory bowel disease (IBD), and hepatocellular carcinoma (HCC). The lab integrates genomics, transcriptomics, and clinical data to identify genetic and epigenetic biomarkers, explore gut microbiota involvement, and develop non-invasive diagnostic tools. Key research directions include understanding the interplay between genetic mutations and epigenetic modifications in carcinogenesis, improving colonoscopy outcomes through bowel preparation optimization, and identifying novel biomarkers such as CXCL1 for disease activity. The lab also investigates the genetic architecture of complex diseases like Crohn’s disease in specific populations, including Koreans, using deep resequencing approaches.