世界の主要大学の研究室を探索 — 研究分野と主要論文を一目で確認できます。
Professor Jinsuk Kim's research lab specializes in advanced energy storage systems, with a strong focus on metal-air and rechargeable battery technologies, particularly sodium-oxygen and solid-state lithium batteries. The lab investigates fundamental electrochemical mechanisms, interface engineering, and novel electrode architectures to enhance energy density, efficiency, and stability. A key emphasis is placed on sustainable battery manufacturing, including dry-electrode processing and environmentally friendly production methods. The lab also explores interfacial phenomena in thin-film devices, such as dye-sensitized solar cells, using precision laser welding techniques to improve performance.
Professor Kyung Won Kim's research lab specializes in diagnostic radiology and medical imaging, with a focus on improving the accuracy of disease diagnosis through advanced imaging techniques. The lab investigates the radiological features of various conditions—particularly in the liver, thyroid, and lungs—using dynamic and hepatobiliary MRI, CT, and other cross-sectional imaging modalities. Key research directions include differentiating malignant from benign lesions (e.g., HCC vs. AEP, thyroid nodules), identifying imaging biomarkers for early diagnosis, and understanding rare but severe drug-induced or environmental lung diseases such as chILD from humidifier disinfectant exposure. The lab also emphasizes evidence-based radiology through systematic reviews and meta-analyses in diagnostic test accuracy.
Professor Jeong Hoon Lee's research lab specializes in micro- and nanofluidic systems for biomedical diagnostics and single-cell analysis, with a strong focus on developing low-cost, high-sensitivity, and disposable devices for point-of-care applications. The lab pioneers innovative preconcentration techniques—such as ion concentration polarization, electrokinetic trapping, and nanogap formation—enabling enhanced detection limits in proteomics, enzyme assays, and biomarker sensing. Their work integrates advanced materials like PDMS, Nafion membranes, and piezoelectric thin films to create compact, rapid, and highly efficient analytical platforms. The lab’s research bridges microfabrication, analytical chemistry, and biomedical engineering to address challenges in early disease diagnosis and systems biology at the single-cell level.
Professor Sujin Lee's research lab focuses on molecular diagnostics and translational biomedical research, with a strong emphasis on identifying and validating biomarkers for early disease detection and therapeutic intervention. The lab specializes in developing advanced biosensing technologies—such as aptamer-based surface plasmon resonance platforms—for sensitive and label-free detection of disease-related proteins. Key research directions include understanding the role of matrix metalloproteinases in viral pathogenesis (e.g., HSV-induced corneal angiogenesis), investigating the molecular mechanisms of progeria and laminopathies, and exploring tumor microenvironment and metastatic patterns in cancers like colorectal and breast cancer. The lab integrates molecular biology, biochemistry, and nanobiosensors to uncover novel therapeutic targets and improve clinical outcomes.
Professor Je-Yoel Cho's research lab specializes in translational glycobiology and regenerative medicine, focusing on the role of glycoproteins and glycosylation in cancer biomarker discovery and therapeutic development. The lab investigates disease-associated glycosylation changes—particularly fucosylation—in cancer (e.g., lung cancer) and explores their potential as diagnostic and prognostic tools. Additionally, the lab develops advanced cell- and nanotechnology-based therapeutic strategies, including CAR-T cell engineering and injectable microgel systems for vascular regeneration. A central theme is the integration of glycobiology, systems biology, and biomedical engineering to design targeted therapies for cancer and cardiovascular diseases.
Professor Min Woo Lee's research lab specializes in advancing image-guided interventions and artificial intelligence applications in hepatocellular carcinoma (HCC) management. The lab focuses on improving the accuracy and efficacy of percutaneous ablation techniques—particularly radiofrequency ablation (RFA)—through fusion imaging technologies that integrate real-time ultrasound with CT/MRI. A key research direction involves developing and validating deep learning models for automated detection of small HCCs in hepatobiliary phase MRI, enhancing early diagnosis and treatment planning. The lab also investigates prognostic factors and long-term outcomes in HCC patients, especially in the context of liver transplantation and bridging therapies.
Professor Yoonsung Nam's research lab specializes in the design and fabrication of advanced functional materials for biomedical and energy applications, with a strong focus on biodegradable scaffolds, nanomaterials templated by biological systems, and smart drug delivery systems. The lab pioneers innovative techniques such as thermally induced phase separation and viral templating to create highly porous, biocompatible structures for tissue engineering and theranostics. A key direction involves the development of stimuli-responsive nanocarriers—such as lipid nanoparticles and polydopamine-based microfluidic systems—that enable precise delivery of therapeutic agents like siRNA and chemotherapeutics. The lab also explores energy-efficient, gravity-driven microfluidic platforms and quantum dot-incorporated systems for synergistic cancer therapy and diagnostics.
Professor Won Bo Lee's research lab specializes in advanced materials development for sustainable energy technologies, with a strong focus on energy storage and conversion systems. Key research directions include designing high-performance solid-state electrolytes for safer lithium-ion batteries, engineering multi-metallic alloy and nanostructured catalysts for efficient oxygen evolution reactions, and developing machine learning-guided molecular design for next-generation organic solar cells and electrocatalysts. The lab uniquely integrates experimental synthesis with data-driven approaches such as active learning and deep generative models to accelerate materials discovery.
Professor Hyun-ae Woo's research lab focuses on redox biology, particularly the reversible oxidation of cysteine residues in proteins to cysteine sulfinic acid (Cys-SO₂H) as a regulatory posttranslational modification. The lab investigates the enzymatic mechanisms underlying the repair of oxidatively damaged proteins, with a central emphasis on sulfiredoxin (Srx) and sestrin 2 (Sesn2) in catalyzing the reduction of sulfinylated peroxiredoxins and other redox-sensitive proteins. Their work also explores the functional implications of such redox modifications in cellular signaling pathways, including PTEN regulation and mTORC1/CRMP-2 signaling in neuronal development and disease. The lab combines biochemical, cell biological, and proteomic approaches to uncover novel regulatory mechanisms in redox signaling and protein homeostasis.
Professor Ahn Cheol-Hee's research lab specializes in the design and application of multifunctional nanomaterials for biomedical imaging and theranostics. The lab focuses on developing biocompatible, stimuli-responsive nanoprobes—particularly gold nanoparticles and polymer-based nanocarriers—engineered for dual-modal imaging (e.g., CT and fluorescence) and targeted cancer therapy. Key research directions include matrix metalloproteinase (MMP)-activatable probes for early cancer detection, liver-specific imaging agents, and biodegradable polymers for safe gene delivery.
Professor Hye-kyung Jeong's research lab focuses on gastrointestinal diseases, with a primary emphasis on the epidemiology, pathophysiology, and clinical management of gastroesophageal reflux disease (GERD) and *Helicobacter pylori* infection. The lab investigates regional and ethnic variations in disease prevalence, the impact of sleep disturbances on GERD, and the growing challenge of antibiotic resistance in *H. pylori* eradication. Using large-scale, population-based studies and molecular diagnostics, the lab aims to improve diagnostic criteria and treatment strategies tailored to regional patterns in Korea and Asia.
Professor Jaeyong Song's research lab specializes in advanced nanomaterials and thin films for next-generation energy conversion and storage applications. The lab focuses on developing flexible and thin-film thermoelectric materials, including bismuth telluride nanostructures, black phosphorus composites, and solution-processed graphene, to enhance thermoelectric performance through defect engineering and nanostructuring. A key research direction involves designing novel cell architectures—such as coplanar lithium-ion battery configurations and 3D thermoelectric heterostructures—to enable ultra-thin, flexible, and high-performance devices for wearable electronics and biomedical applications. The lab also investigates ferroelectric thin films and their size-dependent properties to push the limits of nanoscale electronic functionality.
Professor Sung Ah Jang's research lab specializes in cardiovascular regeneration and pericardial disease, focusing on stem cell therapy for acute myocardial infarction, cardiac remodeling in hypertension, and the pathophysiology of pericardial disorders such as constrictive pericarditis. The lab employs advanced imaging techniques like 18F-FDG-PET/CT and speckle tracking echocardiography to investigate inflammation, fibrosis, and functional changes in the heart. Key research directions include the role of the pericardium in ventricular mechanics, the protective effects of statins and ARBs in cardiac remodeling, and the differential diagnosis of complex pericardial diseases using molecular imaging. The lab integrates preclinical models with clinical translation to develop novel therapeutic strategies for heart failure with preserved ejection fraction and cardiomyopathy.
Professor Changick Kim's research lab specializes in video understanding and computer vision, with a strong focus on video object segmentation, video copy detection, and object-based video abstraction. The lab develops robust algorithms for extracting meaningful video objects (VOPs) from complex scenes, enabling applications in video surveillance, content-based retrieval, and multimedia indexing. Key research directions include handling real-world distortions such as format conversion and encoding artifacts, as well as advancing semantic video analysis through efficient, online processing of video objects.
Professor Jung Hee Lee's research lab specializes in the development of advanced nanomaterials and smart contrast agents for magnetic resonance imaging (MRI), with a focus on targeted, pH-responsive, and biocompatible systems for precise diagnostic imaging. The lab pioneers innovative surface engineering strategies for rare-earth and iron-based nanoparticles to enhance their stability, compatibility, and functionality in biological environments. Key research directions include the design of stimuli-responsive nanocarriers for tumor imaging and therapy, as well as the application of MRI techniques such as DCE-MRI to evaluate treatment efficacy in clinical settings like uterine fibroid ablation. The lab integrates materials science, biochemistry, and medical imaging to create next-generation diagnostic tools with high specificity and sensitivity.
Professor Jaeyong Han's research lab specializes in avian reproductive biotechnology, with a primary focus on primordial germ cells (PGCs) and germline chimera technology in chickens. The lab develops advanced techniques for nonviral transgenesis, germ cell transplantation, and in vitro PGC culture to enable efficient genetic modification in poultry. Key research directions include identifying novel PGC markers, optimizing germ cell transfer systems, and enhancing germline transmission rates for applications in agriculture, medicine, and biomedical modeling.
Professor Hana Kim's research lab focuses on molecular and translational biomedical research, with a strong emphasis on the molecular mechanisms of epigenetic regulation, metabolic disorders, and chronic inflammatory diseases. The lab investigates zinc finger proteins like AEBP2 in chromatin regulation and explores the role of trace elements such as zinc in metabolic syndrome. Additionally, the lab contributes to public health research through environmental and energy sustainability studies, including photovoltaic waste management and HIV epidemiology mapping in underserved populations. These diverse yet interconnected research directions reflect a commitment to understanding disease mechanisms and supporting evidence-based health policy.
Professor Kyung Hwan Kim's research lab focuses on translational biomedical research with a strong emphasis on clinical pharmacology, cardiovascular disease management, and natural product therapeutics. The lab investigates pharmacogenomic variability in drug metabolism—particularly for immunosuppressants like tacrolimus—while also exploring interventional strategies for valvular and structural heart diseases. Additionally, the lab evaluates the bioactive properties of traditional medicinal plants, such as Cucurbita moschata, for antioxidant and dermatological applications. Recent work also includes critical care innovations, such as extracorporeal membrane oxygenation support during complex pulmonary procedures in oncology patients.
Professor Byeongju Ham's research lab specializes in the neurobiological and molecular mechanisms underlying mood disorders, particularly major depressive disorder (MDD) and post-traumatic stress disorder (PTSD). The lab integrates neuroimaging, epigenetics, and molecular biomarkers—such as DNA methylation, genetic polymorphisms (e.g., FKBP5, MAOA, serotonin-related genes), and plasma exosomes—to uncover biological signatures of psychiatric illness. A key focus is translating these findings into objective diagnostic tools using advanced technologies like deep learning and surface-enhanced Raman spectroscopy (SERS). The lab also investigates structural and metabolic brain alterations, including hippocampal subfield volumes and N-acetyl-aspartate (NAA) levels, in relation to trauma and depression.
Professor Daewon Kim's research lab specializes in the design and engineering of advanced nanomaterials for sustainable energy applications, with a primary focus on next-generation energy storage and harvesting technologies. The lab pioneers innovative electrode materials—particularly metal chalcogenides, layered double hydroxides, and hybrid nanostructures—aimed at enhancing the performance of supercapacitors and hybrid supercapacitors. A key research direction involves developing flexible, durable, and environmentally resilient devices such as triboelectric nanogenerators and superhydrophobic electrodes that function effectively under real-world conditions. The lab also emphasizes scalable fabrication techniques, including template-assisted synthesis and 3D printing-inspired methods, to bridge the gap between laboratory innovation and practical deployment.