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 Sejin Kwon's research lab specializes in advanced materials and systems for sustainable energy conversion and storage, with a primary focus on hydrogen generation and fuel cell technologies. The lab develops compact, efficient, and safe hydrogen production systems using chemical hydrides like sodium borohydride and methanol, employing tailored heterogeneous catalysts to enable controlled and continuous hydrogen release. Key research directions include catalytic methanolysis and steam reforming of methanol, as well as the integration of hydrogen generation units with proton exchange membrane fuel cells (PEMFCs) for portable and distributed energy applications. The lab also explores innovative thermal management strategies, such as using hydrogen peroxide decomposition for in-situ heat supply in micro-reformers.
Professor Sejin Kwon's research lab specializes in advanced propulsion systems and catalytic energy conversion, with a focus on green and high-performance space propulsion technologies. The lab develops innovative hybrid thrusters using environmentally friendly propellants such as nitrous oxide and hydrogen peroxide, integrating dual-catalyst systems to enhance efficiency and reduce preheating times. Research also extends to polymer-based fuels and catalytic decomposition processes, aiming to improve system durability and energy density for aerospace applications. The lab emphasizes sustainable propulsion solutions through catalytic materials engineering and system-level optimization.
Professor Yeojoon Yoon's research lab specializes in environmental materials and sustainable remediation technologies, focusing on the development of advanced nanomaterials for the detection, removal, and degradation of environmental pollutants. Key research directions include the design of metal-organic frameworks (MOFs) and layered double hydroxides (LDHs) for sensing and catalytic degradation of microplastics, heavy metals, and organic contaminants in water. The lab also investigates the environmental behavior of microplastics as vectors of hazardous chemicals and explores innovative applications of by-products from wastewater treatment in agriculture. Their work emphasizes eco-friendly, cost-effective, and scalable solutions for water purification and environmental protection.
Professor Yeojoon Yoon's research lab specializes in the development and application of advanced nanomaterials for environmental remediation, with a primary focus on sonocatalytic and sonophotocatalytic degradation of emerging pollutants such as antibiotics, pharmaceuticals, and organic dyes. The lab emphasizes the design of novel two-dimensional and nano-laminated materials—such as MAX phases, layered double hydroxides, and MoS₂-based composites—engineered for enhanced catalytic performance under ultrasound and/or visible light. Research also includes comprehensive physicochemical characterization and ecotoxicological assessment to ensure environmental safety and practical applicability.
Professor Seokwon Jeon's research lab specializes in rock mechanics and dynamic fracture mechanics, focusing on the numerical and experimental investigation of rock behavior under blasting and cutting loads. The lab emphasizes the development and validation of advanced numerical models—particularly using hydrocode platforms like AUTODYN—to simulate rock fragmentation, crack propagation, and jointed rock mass behavior. Key research directions include dynamic fracturing mechanisms in brittle materials, directional blasting techniques (e.g., 2D blasting), and rock cutting simulation using mesh-free methods such as Smoothed Particle Hydrodynamics (SPH). The lab integrates experimental validation with computational modeling to improve the efficiency and safety of rock excavation in mining and civil engineering applications.
Professor Min Kyung Shin's research lab specializes in innovative, non-invasive dermatological therapies focusing on skin rejuvenation and regeneration. The lab investigates the synergistic effects of platelet-rich plasma (PRP) combined with fractional laser, ultrasound, and radiofrequency technologies to enhance collagen production, improve skin elasticity, and treat conditions such as striae distensae and infraorbital laxity. A key focus is on optimizing delivery methods—like ultrasound-mediated transepidermal delivery and plasma fractional radiofrequency—for improved therapeutic outcomes. The lab also explores novel molecular scaffolds, such as cyclic peptoids, for potential applications in dermatological drug delivery and protein targeting.
Professor Hyewon Park's research lab focuses on molecular and cellular mechanisms underlying cardiovascular diseases, with a particular emphasis on arrhythmias, ischemia-reperfusion injury, and the role of non-coding RNAs such as microRNAs and extracellular vesicles in cardiac protection and repair. The lab investigates signaling pathways including Wnt/GSK3β and calcium handling regulation, and explores the impact of environmental and metabolic factors—such as sodium benzoate and urban air pollution—on neuronal and cardiac cell function. A key direction involves identifying non-invasive biomarkers, such as urinary microRNAs, for early detection and pathophysiological insight into atrial fibrillation and other cardiac conditions.
Professor Young-Chul Jung's research lab specializes in the neurobiological and psychological mechanisms underlying addictive behaviors and cognitive control disorders. The lab investigates how brain networks—particularly those involving the dorsal anterior cingulate cortex (dACC)—govern decision-making, impulsivity, and self-regulation in conditions such as eating disorders, Internet gaming disorder, and alcohol dependence. Using multimodal neuroimaging (fMRI, voxel-based morphometry), autonomic nervous system assessments (e.g., HRV), and behavioral paradigms, the lab explores the interplay between top-down cognitive control and bottom-up reward processing. A central focus is identifying neural and physiological biomarkers that can inform early detection and targeted interventions for behavioral and substance use disorders.
Professor Changwon Kee's research lab specializes in glaucoma pathophysiology, with a focus on normal-tension glaucoma (NTG) and juvenile-onset open-angle glaucoma (JOAG). The lab investigates the interplay between optic nerve damage, peripapillary microvasculature, and intraocular pressure regulation, using advanced imaging and clinical assessments to understand disease progression and treatment responses. Key research directions include the role of vascular compromise in NTG, surgical techniques in glaucoma drainage devices, and the impact of anatomical factors like optic disc size on diagnostic interpretation.
Professor Hyung-Jun Im's research lab specializes in the development and application of advanced nanomaterials and biomedical technologies for disease diagnosis and therapy. The lab focuses on designing targeted drug delivery systems, particularly nanoparticles for immunomodulation and ischemic disease treatment, as well as innovative imaging probes for early detection. Key research directions include the use of gasotransmitters like hydrogen sulfide for anti-inflammatory therapy, radiolabeled nanocarriers for enhanced photodynamic therapy, and quantum dot-based biosensors for sensitive exosome detection. The lab also explores non-pharmacological pain relief methods in neonates, demonstrating a multidisciplinary approach integrating nanomedicine, molecular imaging, and clinical translational research.
Professor Jeesu Kim's research lab specializes in advancing photoacoustic imaging for biomedical applications, with a strong focus on clinical translation and functional imaging. The lab develops high-speed, real-time photoacoustic systems using innovative light sources and imaging platforms to improve diagnostic accuracy in diseases such as thyroid cancer. Key research directions include multispectral photoacoustic imaging, breath-compensated 3D macroscopic imaging, and integration with ultrasound for enhanced clinical usability. The lab also explores super-resolution and molecular-level functional imaging at microscopic and macroscopic scales.
Professor Sei Won Lee's research lab specializes in pulmonary and critical care medicine, with a strong focus on respiratory diseases such as tuberculosis, chronic obstructive pulmonary disease (COPD), and pulmonary arterial hypertension (PAH). The lab investigates the immunological and physiological mechanisms underlying these conditions, including anemia in TB, long-term lung function outcomes after TB, and the therapeutic potential of stem cell therapy in PAH. They also explore diagnostic and prognostic biomarkers, such as interferon-gamma release assays, and evaluate interventional strategies like bronchoscopic lung volume reduction for advanced emphysema. Their work combines clinical epidemiology, translational research, and advanced imaging techniques to improve patient outcomes in chronic lung diseases.
Professor Chan-Wook Park's research lab specializes in perinatal inflammation and its implications in preterm birth, focusing on the role of inflammatory biomarkers such as matrix metalloproteinase-8 (MMP-8) in amniotic fluid. The lab investigates the pathogenesis of intra-amniotic inflammation, funisitis, and chorioamnionitis, particularly in preterm pregnancies with intact membranes or preterm prelabor rupture of membranes. Using bedside diagnostic tools like the MMP-8 PTD Check, the lab aims to improve early detection and risk stratification of fetal and maternal inflammatory responses. Their work bridges clinical obstetrics with molecular diagnostics to identify surrogate markers for intrauterine inflammation and adverse outcomes.
Professor Yon Ho Choe's research lab focuses on the intersection of gastrointestinal health, iron metabolism, and neurobiological mechanisms underlying chronic diseases. Key research directions include the role of *Helicobacter pylori* infection in iron-deficiency anemia and growth retardation in children, the neurotrophic regulation of dopaminergic pathways in stress and reward processing, and the management of pediatric inflammatory bowel disease with biologic therapies. The lab also investigates molecular mechanisms such as lactoferrin sequestration in gastric mucosa and the translational efficacy of biosimilars in pediatric IBD.
Professor Chul Geun Kim's research lab focuses on molecular and cellular mechanisms underlying gene regulation, particularly in hematopoietic and cancer-related contexts. The lab investigates transcriptional control elements such as locus control regions (LCRs) and tissue-specific transcription factors in globin gene expression, with a strong emphasis on erythroid development and gene regulation. Additionally, the lab explores the role of signaling pathways—especially the MAPK/ERK pathway—in non-small cell lung cancer (NSCLC), including the development of targeted therapies and biomarkers for MEK1/2 inhibitors. The lab also examines the role of alternative splicing and tumor suppressor genes, such as periostin, in bladder cancer progression and metastasis. Overall, the research integrates molecular biology, stem cell biology, and cancer genetics to uncover regulatory mechanisms in development and disease.
Professor Yong Eun Cho's research lab focuses on molecular mechanisms underlying neurodegenerative diseases, particularly in the context of HIV infection, and explores the pathophysiological roles of oxidative stress and cell death signaling. The lab also investigates the potential of circulating microRNAs in exosomes as non-invasive biomarkers for drug-induced organ injuries, including liver, kidney, and muscle toxicity. Additionally, the lab examines calcium-independent signaling pathways in vascular smooth muscle, particularly the role of ZIPK in hypertension-related vascular dysfunction. These interdisciplinary efforts bridge neuroscience, molecular diagnostics, and translational medicine.
Professor Seoung Bum Kim's research lab specializes in advanced data analytics and machine learning applications in health sciences, chemistry, and pharmaceutical innovation. The lab focuses on developing statistical and computational methods for feature selection, multivariate process monitoring, and intelligent molecular design. Key research directions include the integration of nonparametric statistical techniques like the bootstrap with multivariate control charts, the application of association rule mining and network analysis to traditional medical texts, and the use of deep generative models—particularly generative adversarial networks with reinforcement learning—for de novo drug design. The lab also works on grounding heuristic methods like the Mahalanobis-Taguchi System in rigorous statistical theory to enhance their reliability and interpretability.
Professor Wan Soo Yun's research lab specializes in the design, fabrication, and application of advanced nanomaterials for next-generation electronic and biomedical devices. The lab focuses on nanoscale ferroelectrics, conductive and biocompatible hydrogels for neural interfaces, and plasmonic or catalytic nanostructures using precise nanofabrication techniques. Key research directions include the development of ultrathin nanowires, patterned 2D nanomaterials like RGO nanorings, and supramolecular hydrogels that enable high-sensitivity, stable neural recording with minimal tissue response.
Professor Eun Kyoung Seo's research lab specializes in natural product chemistry and neuropharmacology, focusing on the isolation, structural elucidation, and biological evaluation of bioactive compounds from medicinal plants. The lab investigates the neuroprotective and anticancer properties of natural molecules, particularly resveratrol derivatives, xanthones, and phenylbutenoids, with an emphasis on their mechanisms in treating neurodegenerative diseases and cancer. The research also integrates advanced analytical techniques such as NMR, FT-IR, and bioassay-guided fractionation to bridge natural product discovery with therapeutic applications.
Professor Byung-Kwon Min's research lab specializes in advanced manufacturing systems, focusing on the integration of real-time machine tool simulation with virtual manufacturing environments to enhance precision and efficiency in factory planning. The lab develops intelligent electro-mechanical systems, particularly for precision machining, by combining structural design with active control strategies—such as piezoelectric actuation and real-time vibration compensation. A key research direction involves the co-design of mechanical components and controllers to optimize performance in high-accuracy manufacturing processes. The lab also explores adaptive tool control systems that mitigate geometric errors and dynamic disturbances during machining.