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 Byung Min Choi's research lab focuses on cellular and molecular mechanisms underlying apoptosis, oxidative stress, and cytoprotective pathways in disease states, particularly in neonatal and pediatric conditions. The lab investigates the dual roles of signaling molecules such as nitric oxide (NO) and heme oxygenase-1 (HO-1) in regulating cell survival and death, with a strong emphasis on their implications in preterm infants and in vitro models of cellular stress. Key research directions include the pathophysiology of patent ductus arteriosus (PDA) using biomarkers like BNP, the regulation of apoptosis by cAMP signaling, and the impact of socioeconomic factors on adolescent health outcomes. The lab integrates molecular biology, cell culture, and clinical correlation to explore therapeutic targets in neonatal and inflammatory diseases.
Professor Ji-Hyeon Park's research lab specializes in the development and application of wide-bandgap semiconductors, particularly gallium oxide (Ga₂O₃) and III-nitride materials, for next-generation electronic and optoelectronic devices. The lab focuses on advanced epitaxial growth techniques such as metalorganic chemical vapor deposition (MOCVD) to fabricate high-quality thin films and nanostructures, including nanowires, quantum wells, and heterostructures. Key research directions include high-power transistors, ultraviolet photodetectors, and photoelectrochemical devices for sustainable energy applications such as hydrogen generation. The lab also integrates multiomics and advanced characterization to explore the interplay between materials properties and biological systems, as seen in gut microbiome studies.
Professor Shuping Xiong's research lab specializes in biomechanics, wearable sensor technology, and geriatric health, with a focus on pre-impact fall detection using inertial sensors, foot anthropometry for footwear design, and socioeconomic risk factors for falls in older adults. The lab develops advanced deep learning models to predict falls before impact, aiming to enable real-time injury prevention systems, while also investigating foot morphology and comfort to improve footwear fit and functionality. Their work bridges engineering, public health, and clinical applications to address aging-related mobility risks and improve quality of life in elderly populations.
Professor Ji Sun Nam's research lab focuses on the intersection of metabolic diseases and cardiovascular health, with a particular emphasis on identifying early biomarkers and pathophysiological mechanisms linking type 2 diabetes, insulin resistance, and cardiovascular risk. The lab investigates metabolic and immune parameters—such as NK cell activity, atherogenic index (AIP), erythrocyte deformability, and fibrinogen—across the spectrum of diabetes complications, including diabetic nephropathy, neuropathy, and subclinical atherosclerosis. Their work integrates point-of-care testing and longitudinal clinical studies to evaluate predictive and therapeutic markers for early intervention.
Professor Sung Gyun Ahn's research lab specializes in interventional cardiology and vascular biology, focusing on optimizing percutaneous coronary intervention (PCI) outcomes in acute myocardial infarction. The lab investigates mechanisms of vascular inflammation, endothelial dysfunction, and microvascular obstruction—particularly the no-reflow phenomenon—using both clinical trials and advanced imaging techniques such as intravascular ultrasound (IVUS). Key research directions include the synergistic effects of antiplatelet and anticoagulant therapies, thrombus aspiration strategies, and drug-eluting stent optimization in complex coronary lesions.
Professor Jin Young Bae's research lab specializes in advanced materials and biomedical applications, focusing on the development of functional polymers for electronic packaging and photolithography, particularly in LCD technology and carbon black-based resist materials. The lab also conducts detailed neuroanatomical studies using immunohistochemical markers to characterize sensory neurons in the trigeminal system, contributing to a deeper understanding of peripheral nerve biology. Additionally, the lab explores biomarkers in cancer prognosis, particularly in cervical cancer, to improve clinical outcomes through early detection and personalized treatment strategies. These interdisciplinary efforts bridge materials science, neuroscience, and clinical medicine.
Professor Gyungchoon Go's research lab specializes in topological quantum phenomena in magnetic systems, with a focus on magnon-based excitations and their transport properties in low-dimensional spin systems. The lab investigates topologically nontrivial magnon polarons, spin Hall effects, and orbital responses in ferromagnets and antiferromagnets, particularly in van der Waals heterostructures and soliton lattices. By combining theoretical analysis with proposals for experimental detection—such as thermal Hall conductivity and magnetoelectric responses—the lab explores novel routes to energy-efficient spintronic devices. Key themes include symmetry-protected topological states, Berry curvature engineering, and field-free control of magnetization via dynamic excitations.
Professor Taewoo Roh's research lab specializes in sustainable business innovation, with a focus on eco-innovation, environmental, social, and governance (ESG) strategies, and corporate social responsibility (CSR) in industry-specific contexts such as airlines and retail. The lab explores the interplay between institutional pressures, digitalization, and triple bottom line performance, emphasizing demand-driven and stakeholder-informed approaches to green innovation. It also investigates leadership dynamics in academic and organizational settings, particularly authentic leadership and followership in team-based learning environments. The lab integrates quantitative methods such as structural equation modeling and regression analysis to examine mediating and moderating effects in sustainability and organizational performance.
Professor Jae Sung Ko's research lab specializes in pediatric gastroenterology and hepatology, with a focus on gastrointestinal and liver diseases in children. The lab investigates the pathogenesis of rare intestinal disorders such as tufting enteropathy and fibropolycystic liver disease, as well as the role of microbial and genetic factors in pediatric gastrointestinal inflammation and liver injury. Key research directions include the pathophysiology of inflammatory bowel disease, the impact of *H. pylori* virulence factors on pediatric gastritis, and the development of non-invasive diagnostic and prognostic tools for acute and chronic liver failure.
Professor Youngmin Ko's research lab specializes in advancing next-generation energy storage systems, with a primary focus on lithium–oxygen batteries. The lab investigates redox mediators, catalyst design, and electrolyte engineering to overcome key challenges such as high polarization, poor cyclability, and electrolyte degradation. By drawing inspiration from biological electron transfer systems and developing innovative polymer-anchored redox mediators, the lab aims to decouple charge transport from shuttle degradation, enabling high-energy and high-power battery performance. The group also explores novel electrolyte additives and interphase stabilization strategies, particularly for silicon anodes, to enhance long-term battery stability.
Professor Sei Yeul Oh's research lab specializes in the anatomy, physiology, and pathology of the extraocular muscles (EOMs) and their role in ocular motility disorders. The lab investigates the structural and hemodynamic properties of EOMs, including pulley instability, microvascular perfusion, and fiber-type specialization, to understand their contribution to strabismus and neurodegenerative conditions. Using advanced imaging techniques such as OCTA and MRI, the lab explores the link between ocular microvasculature, retinal changes, and clinical outcomes in diseases like CSVD and NAION.
Professor Sei Yeul Oh's research lab specializes in ophthalmic imaging and neuro-ophthalmology, focusing on the structural and functional changes in the retina and optic nerve associated with ocular diseases. The lab investigates the role of retinal layer thickness, microvascular changes detected by OCT-A, and hormonal influences—particularly age at menarche—on the development and progression of myopia. They also explore drug-induced optic neuropathies, especially those related to immunosuppressive agents like tacrolimus, aiming to uncover underlying mechanisms and improve prognostic assessment. Their work integrates advanced imaging techniques with clinical epidemiology to identify early biomarkers and risk factors for visual system disorders.
Professor In-Bok Lee's research lab specializes in sustainable building environments and energy-efficient systems, with a focus on natural ventilation in agricultural buildings and energy management in building-integrated greenhouses. The lab employs advanced computational fluid dynamics (CFD) and dynamic energy simulation models to optimize indoor air quality, thermal comfort, and energy performance under real-world weather conditions. Research also emphasizes experimental validation using wind tunnel tests and particle image velocimetry (PIV) to ensure model accuracy and reliability. The ultimate goal is to develop intelligent, energy-smart environmental control systems for agricultural and building applications.
Professor Hyejin Kang's research lab focuses on understanding the neural mechanisms underlying cognitive and neuropsychiatric symptoms in neurodegenerative diseases, particularly Alzheimer’s disease, using neuroimaging techniques such as SPECT to map regional cerebral blood flow. The lab also investigates the brain's functional network dynamics during complex sensory processing, especially audiovisual integration in speech perception under challenging listening conditions. By combining advanced computational methods like persistent homology and network analysis, the lab explores how brain connectivity changes in health and disease. Their work bridges clinical neuroscience with systems-level brain network analysis to uncover biomarkers and mechanisms of cognitive impairment and sensory processing deficits.
Professor Heejun Park's research lab specializes in pharmaceutical formulation and drug delivery systems, with a strong focus on enhancing the bioavailability and stability of poorly water-soluble drugs. Key research directions include the development of advanced self-emulsifying and supersaturable SEDDS formulations, as well as engineered micro- and nanoparticle systems using techniques like W/O/W emulsification for controlled drug release. The lab also investigates the role of stabilizers and excipients in maintaining drug stability during processing and storage, particularly for sensitive peptides like exenatide. Additionally, the lab explores behavioral and technological aspects of information sharing in digital environments, integrating social psychology with technology adoption models.
Professor Junseong Ahn's research lab specializes in advanced functional materials and nanofabrication technologies, with a focus on developing next-generation soft actuators, wearable energy devices, and scalable nanotransfer printing techniques. The lab pioneers innovative approaches in electrothermal and electrically driven soft actuators, fiber-based supercapacitors, and covalent bonding-based nanoscale fabrication for flexible and wearable electronics. By integrating materials design, interfacial engineering, and precision manufacturing, the lab aims to enable high-performance, customizable, and scalable micro/nanosystems for biomedical, robotic, and energy applications.
Professor June-Sung Shim's research lab specializes in biomaterials and digital dentistry, focusing on the development and evaluation of nanostructured implant surfaces—particularly TiO₂ nanotubes—for enhanced osseointegration. The lab investigates the influence of nanotopography on bone regeneration using in vivo animal models and advanced imaging techniques such as micro-CT and histomorphometry. Additionally, the lab pioneers digital workflows in prosthodontics, including 3D printing of denture bases, virtual occlusion analysis, and accurate scanning of dental abutments using CAD and contact scanners. Their work bridges nanotechnology, implant dentistry, and digital fabrication to improve clinical outcomes in oral implantology and prosthodontic rehabilitation.
Professor Hee Taek Kim's research lab specializes in metabolic engineering and synthetic biology for the sustainable production of high-value chemicals and polymers from renewable resources. The lab focuses on developing microbial cell factories—particularly engineered *Corynebacterium glutamicum* and *Escherichia coli*—to convert biomass-derived substrates into platform chemicals like cadaverine, 5-hydroxyvaleric acid, and aromatic compounds. A central theme is the chemo-biological upcycling of plastic waste, such as poly(ethylene terephthalate) (PET), through enzymatic depolymerization and downstream biotransformation into valuable chemicals. The lab also pioneers integrated bioprocesses combining fermentation, purification, and polymerization for the production of bio-based polyamides, supporting a circular bioeconomy.
Professor Jaewook Lee's research lab specializes in advanced control systems and machine learning for energy storage systems, with a strong focus on the reliability and longevity of lithium-ion batteries (LIBs). The lab develops innovative control algorithms—such as iterative learning control and sliding mode control—for precision tracking and robustness under uncertainty, particularly in automation and robotic systems. It also pioneers data-driven approaches to predict battery degradation by extracting intra- and inter-cycle features from real-world-like cycling data, including rapid fade events and EV-relevant charge-discharge profiles. The lab integrates experimental validation with computational modeling to enhance the safety, performance, and lifespan prediction of batteries in electric vehicle applications.
Professor Eun-Mi Hur's research lab focuses on the cellular and molecular mechanisms underlying neuronal regeneration and neurodegeneration, with a particular emphasis on the intrinsic and extrinsic factors that regulate axon growth and repair in the nervous system. The lab investigates key regulators such as microtubule-severing enzymes (e.g., katanin), glial cell-derived neurotrophic factors (e.g., progranulin in Schwann cells), and signaling pathways (e.g., GSK3 isoforms) that influence neuronal survival and plasticity. A central theme is understanding how aging and glial cells contribute to the pathogenesis of neurodegenerative diseases like Parkinson’s disease, aiming to identify novel therapeutic targets for promoting neural repair and neuroprotection. The lab integrates structural biology, developmental neuroscience, and disease modeling to uncover fundamental mechanisms of neural circuit maintenance and regeneration.