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 Han Gi Chae's research lab specializes in the development of advanced functional materials, with a focus on high-performance fibers, carbon nanotube composites, and smart textile sensors. The lab explores innovative processing techniques—such as liquid crystalline wet-spinning and 3D printing—to create materials with exceptional mechanical, electrical, and thermoelectric properties for structural and energy applications. Key research directions include the design of high-strength carbon nanotube-polymer composite fibers, multifunctional nanocomposite fibers for wearable electronics, and thermoelectric devices for waste heat recovery.
Professor Eungyeop Kim's research lab specializes in clinical and diagnostic radiology, with a focus on advanced neuroimaging techniques for early detection and biomarker discovery in neurological disorders. The lab investigates mitochondrial dysfunction in pediatric epilepsy, explores imaging biomarkers such as nigrosome 1 for Parkinson’s disease, and develops quantitative MRI and CT protocols to predict stroke outcomes and hemorrhagic transformation. Their work bridges molecular pathology with non-invasive medical imaging to improve diagnosis and prognosis in neurodegenerative and cerebrovascular diseases.
Professor Heecheol Park's research lab specializes in radiation oncology and cancer therapeutics, with a focus on enhancing the efficacy of radiotherapy in liver and pancreatic cancers. The lab investigates novel radiation sensitizers, such as fucoidan-coated manganese dioxide nanoparticles and histone deacetylase inhibitors, to overcome tumor hypoxia and radioresistance. They also explore combination therapies involving immunotherapy (e.g., nivolumab), proton beam therapy, and conventional radiotherapy to improve outcomes in hepatocellular carcinoma and cholangiocarcinoma. Their work integrates preclinical models with clinical data to guide translational research and treatment optimization.
Professor Eunyoung Lee's research lab focuses on promoting healthy 24-hour movement behaviors in children and families, with a strong emphasis on outdoor play, physical activity, sedentary behavior, and sleep. The lab investigates the socioecological determinants of these behaviors across diverse cultural and developmental contexts, particularly in early childhood, using mixed-methods and systematic review approaches. A key focus is advancing equity in physical activity through intersectionality-informed research and developing standardized terminology and frameworks for outdoor play and learning (PLaTO).
Professor Chong Bum Chang's research lab specializes in orthopedic surgery and sports medicine, with a primary focus on anterior cruciate ligament (ACL) reconstruction techniques, femoral tunnel positioning, and postoperative pain management. The lab investigates surgical outcomes, implant fixation stability—particularly with the Rigidfix system—and the efficacy of multimodal drug cocktails for pain control after knee surgery. Additionally, the lab explores complications such as ankle pain and alignment changes following total knee arthroplasty, as well as the impact of bone mineral density on clinical outcomes in elderly patients with knee osteoarthritis.
Professor Hyun Myung's research lab specializes in intelligent sensing and autonomous systems for civil infrastructure inspection and environmental remediation. The lab focuses on developing low-cost, robust sensing technologies—such as structured light systems and RGB-D SLAM—for structural health monitoring and autonomous navigation in challenging environments like bridges and high-rise buildings. A key research direction involves integrating computer vision, robotics, and machine learning to enable real-time, pose-based human interaction and gesture recognition using lightweight, CPU-efficient algorithms. The lab also explores sustainable environmental solutions, including phytoremediation using bio-energy crops for heavy metal removal from soil and water.
Professor Jae Sung Son's research lab specializes in the rational design and scalable synthesis of low-dimensional nanomaterials, with a focus on ultrathin two-dimensional (2D) semiconductors and nanostructured thermoelectrics. The lab develops innovative colloidal synthesis methods to create uniform, ultrathin nanocrystals—such as CdSe, CdS, and Bi₂Te₃ nanoplates—enabling precise control over their size, shape, and electronic properties. These materials are further engineered into functional bulk composites and advanced architectures, including 3D-printed cellular thermoelectric devices, for high-performance energy conversion and sensing applications. The lab also explores applications in quantum devices and tactile sensing, integrating nanomaterials with functional devices.
Professor Hyoung Jin Kang's research lab specializes in hematopoietic stem cell transplantation (HSCT) and gene therapy for inherited immunodeficiencies and hematologic malignancies. The lab focuses on optimizing conditioning regimens—particularly using busulfan, fludarabine, and thymoglobulin—to improve engraftment, reduce toxicity, and enhance outcomes in both matched and haploidentical transplants. A key emphasis is on pharmacokinetic monitoring and targeted dosing of chemotherapeutic agents to achieve effective myeloablation while minimizing complications. The lab also investigates pharmacogenetic variations influencing drug response and toxicity in pediatric and adult patients with acute lymphoblastic leukemia (ALL).
Professor Hong-Hoi Koo's research lab specializes in regenerative medicine and cancer biology, with a focus on mesenchymal stem cells (MSCs) and their immunomodulatory properties for treating immune-related disorders such as graft-versus-host disease. The lab investigates molecular mechanisms underlying MSC function, particularly the role of key enzymes like indoleamine 2,3-dioxygenase (IDO) and signaling pathways such as AKT/ERK in cancer cells. Additionally, the lab explores genetic and molecular factors influencing treatment outcomes in pediatric acute lymphoblastic leukemia, including thiopurine metabolism polymorphisms and apoptosis regulators like Livin. Their work integrates molecular biology, stem cell biology, and translational research to improve clinical applications in oncology and regenerative medicine.
Professor Lee Jinseok's research lab specializes in biomedical signal processing and artificial intelligence applications for early disease detection and remote patient monitoring. The lab focuses on developing low-cost, accessible, and real-time diagnostic tools using everyday devices such as smartphones and wearable sensors, with key research directions in arrhythmia detection (especially atrial fibrillation), pulmonary disease diagnosis (e.g., COVID-19 pneumonia via CT imaging), and sleep quality assessment using multimodal sensing. The lab emphasizes the integration of signal processing techniques—such as empirical mode decomposition, time-varying coherence functions, and photoplethysmography—with machine learning to enhance diagnostic accuracy and clinical usability.
Professor Myungmo Sung's research lab specializes in the design, synthesis, and application of advanced organic and hybrid nanomaterials for next-generation electronic and sensing devices. The lab focuses on developing single-crystal organic nanowires, conductive polymers, and self-assembled monolayers through innovative fabrication techniques such as vapor-phase polymerization and liquid-bridge-mediated nanotransfer printing. Key research directions include high-mobility organic field-effect transistors, multi-value logic devices based on quantum-confined transport, and highly sensitive chemical sensors for environmental and biomedical applications.
Professor Kyung-hwan Oh's research lab specializes in photonic materials and devices, focusing on novel optical fiber structures, rare-earth-doped fiber lasers, and advanced functional thin films for optoelectronic applications. Key research directions include the development of hollow optical fibers for tunable wavelength devices, erbium-doped fiber lasers mode-locked by 2D perovskite saturable absorbers, and fiber-integrated photonic sensors based on thermo-optic materials like DNA-CTMA. The lab also explores all-fiber optical trapping using Bessel beams and nonlinear optical phenomena in rare-earth-doped fibers for mid-infrared emission and optical amplification.
Professor June Huh's research lab focuses on the design and simulation of complex soft materials, particularly block copolymers and supramolecular systems, with an emphasis on their self-assembly behavior and functional applications. The lab investigates how nanoparticle incorporation, molecular architecture, and external stimuli (such as temperature or ion exchange) influence microphase separation and nanostructure formation. Key research directions include the development of thermoresponsive and tunable nanostructured materials, as well as novel energy-harvesting devices like triboelectric nanogenerators based on supramolecular principles. The work combines advanced Monte Carlo and Brownian dynamics simulations with theoretical modeling to predict and understand emergent nanostructures and their dynamic properties.
Professor CheolYong Hwang's research lab focuses on antimicrobial resistance and infectious diseases in companion animals, with a strong emphasis on zoonotic pathogens such as *Staphylococcus pseudintermedius*, *Pseudomonas aeruginosa*, and *Staphylococcus aureus*. The lab investigates the in vitro and in vivo efficacy of novel antimicrobial agents, including manuka essential oil and combination therapies, against multidrug-resistant bacteria in dogs and livestock. Research also includes the molecular characterization of resistance genes and mobile genetic elements, such as pRE25-like plasmids, to support surveillance and control of antimicrobial resistance in veterinary and One Health contexts.
Professor Eun-Jung Park's research lab focuses on the toxicological and biological effects of environmental and nanomaterial exposures, with a particular emphasis on nanomaterials, chemotherapeutic agents, and fatty acids. The lab investigates mechanisms of cytotoxicity, including doxorubicin-induced nephrotoxicity and the role of stress response proteins like ATF3, as well as the immunomodulatory and systemic effects of aluminum oxide nanoparticles. Additionally, the lab explores the protective effects of bioactive fatty acids, such as capric acid, on bone metabolism and inflammation. The research integrates in vitro and in vivo models to assess toxicity, biomarker discovery, and potential therapeutic interventions.
Professor Ui-Won Jeong's research lab specializes in oral and maxillofacial implantology, focusing on improving clinical outcomes through advanced biomaterials, minimally invasive drug delivery systems, and innovative surgical techniques. Key research directions include the development of dissolving microneedles for efficient local anesthetic delivery, the evaluation of implant surface decontamination protocols to maintain long-term osseointegration, and the assessment of alveolar ridge preservation techniques to minimize post-extraction bone loss. The lab also investigates the performance and longevity of narrow-diameter implants and utilizes advanced imaging technologies to optimize surgical planning and tissue response prediction.
Professor Min Jung Park's research lab specializes in advanced materials science and biomedical imaging, with a focus on the functionalization of carbon nanomaterials for biomedical and catalytic applications. The lab also investigates neurodegenerative disease biomarkers, particularly α-synuclein oligomers in Parkinson’s disease, and explores innovative magnetic resonance imaging techniques for early detection of liver and colorectal cancers. Additionally, the lab examines neuroprotective mechanisms of sodium butyrate in stroke models, emphasizing its dual role in reducing brain injury and enhancing growth factor expression. These interdisciplinary efforts bridge nanotechnology, neuroscience, and medical imaging to develop novel diagnostic and therapeutic strategies.
Professor Seo Yeon Yoon's research lab specializes in spinal cord and neuromuscular biomechanics, with a focus on cervical spine disorders, neuropathic pain mechanisms, and the neuropharmacology of pain modulation. The lab investigates the relationship between spinal alignment and muscle function using advanced imaging techniques, while also exploring molecular targets such as NMDA receptors and RGS4 in pain pathways. Their work spans from clinical imaging and biomechanical analysis to preclinical studies on analgesic mechanisms, aiming to develop novel non-opioid strategies for chronic pain management.
Professor Dae Sung Chung's research lab specializes in the development of advanced solution-processed semiconductor materials for next-generation optoelectronic and electronic devices. The lab focuses on designing and synthesizing novel nanomaterials—such as perovskite and chalcogenide nanocrystals, conjugated polymers, and acene-based semiconductors—with an emphasis on high charge-carrier mobility, defect tolerance, and environmental stability. Key research directions include the rational engineering of dielectric and interface layers to minimize hysteresis and trap states, enabling high-performance thin-film transistors and photodetectors. The lab also pioneers environmentally friendly processing techniques using non-halogenated solvents and low-temperature fabrication methods to advance sustainable and scalable device technologies.
Professor Jae-Gil Lee's research lab specializes in trajectory data management and analytics, focusing on advanced techniques for clustering, outlier detection, classification, and pattern mining in trajectory data. The lab develops innovative frameworks—such as partition-and-group, partition-and-detect, and unifying pattern mining—that emphasize sub-trajectory analysis to uncover hidden spatial-temporal patterns. Their work addresses real-world challenges in transportation planning, GPS tracking, and biomedical text mining by integrating machine learning, sequence modeling, and spatial database techniques. The lab's research bridges the gap between low-level trajectory data and high-level semantic understanding, particularly through context-aware feature learning and structured prediction.