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 Ji Min Lee's research lab specializes in chemical biology and medicinal chemistry, focusing on the molecular mechanisms of protein stability regulation through post-translational modifications (PTMs), particularly in the context of targeted protein degradation. The lab develops innovative catalytic methodologies for selective C–H functionalization and stereoselective synthesis, including Pd/Cu-catalyzed amidation and radical-based transformations. Additionally, the lab explores regenerative medicine strategies, especially mitochondrial transplantation, for treating degenerative conditions like tendinopathy. These interdisciplinary efforts integrate synthetic chemistry, chemical biology, and translational medicine to identify novel therapeutic targets and strategies.
Professor Sungjune Jung's research lab specializes in advanced additive manufacturing techniques for flexible and wearable electronics, with a focus on inkjet printing and 3D integration of organic electronic devices. The lab pioneers scalable, high-yield fabrication of printed thin-film transistors, organic photovoltaics, and bio-integrated systems, emphasizing performance, stability, and miniaturization. A key research direction involves the development of direct-write printing methods for complex, multi-layered circuits and functional biological models, including 3D organotypic cell cultures for disease modeling and drug screening.
Professor Sung Kyu Ha's research lab specializes in advanced materials and structural mechanics, with a strong focus on sustainable composites, smart materials, and biomechanical systems. The lab investigates the micromechanics of composite failure, piezoelectric actuation in laminated structures, and the development of biodegradable polymeric materials for environmental sustainability. It also conducts cutting-edge finite element modeling of spinal implants and hydrogen storage systems for clean energy applications, emphasizing lightweight, high-performance solutions for transportation and energy systems.
Professor Taegyun Kim's research lab focuses on biomaterials, regenerative medicine, and molecular mechanisms underlying aging and disease. The lab investigates the development of functional nanomaterials—such as electrospun nanofibers and silica nanoparticles—for biomedical applications, including enzyme immobilization and drug delivery. It also explores natural compounds and growth factors for antiviral and tissue-regenerative therapies, with a particular emphasis on skin aging, periodontal regeneration, and antiviral agents targeting hepatitis B virus. Additionally, the lab delves into epigenetic regulation, examining transcriptional modulators like JUMONJI in cardiovascular development and disease.
Professor Dong-Hyun Ahn's research lab specializes in financial econometrics, fixed income markets, and asset pricing, with a strong focus on developing and estimating dynamic term structure models, including quadratic and non-affine interest rate models. The lab investigates the empirical behavior of interest rates and bond yields, emphasizing model flexibility, nonlinearity, and empirical identification. It also explores risk-return trade-offs, momentum strategies, and international term structure dynamics, often integrating stochastic discount factor frameworks and nonparametric estimation techniques. The lab's work bridges theoretical modeling with empirical finance, particularly in understanding yield curve dynamics and asset pricing anomalies.
Professor Sungphil Ahn's research lab specializes in the development of advanced functional nanomaterials and flexible electronic systems for sustainable energy and wearable technology applications. The lab focuses on innovative fabrication techniques such as electrospinning, cold spraying, and coaxial fiber engineering to create high-performance, stretchable, and self-healing materials. Key research directions include transparent conductive films, piezoelectric nanogenerators, and wearable sensors with enhanced durability and functionality for real-time data acquisition in healthcare and human-machine interfaces. The lab emphasizes scalability, sustainability, and practical integration of nanomaterials into everyday devices.
Professor Myung-ju Kang's research lab specializes in biomedical imaging and signal processing, with a focus on advanced 3D visualization techniques for the lamina cribrosa in glaucomatous eyes. The lab also develops variational models and image restoration methods to address speckle noise in coherent imaging systems, emphasizing edge-preserving denoising and convex optimization. Additionally, the lab engages in critical socio-technical research on digital platform labor, particularly examining the capital dynamics of food delivery riders through a Bourdieuian lens. These interdisciplinary efforts bridge medical imaging, computational mathematics, and social science to address both clinical and societal challenges.
Professor Youngjae Song's research lab specializes in the epitaxial growth and integration of two-dimensional (2D) van der Waals heterostructures, with a focus on hexagonal boron nitride (h-BN) and graphene. The lab develops advanced chemical vapor deposition (CVD) techniques to achieve large-scale, high-quality, and defect-free 2D heterostructures with atomically sharp interfaces, enabling superior electronic and optoelectronic properties. A key emphasis is placed on in situ fabrication and in-situ characterization using ultra-low temperature scanning probe microscopy (SPM) under high magnetic fields, allowing for the study of quantum phenomena in 2D materials. The lab also investigates the environmental stability and intrinsic properties of emerging 2D semimetals like antimonene, aiming to bridge fundamental materials science with scalable device applications.
Professor Wonhwa Lee's research lab specializes in translational biomedical research, focusing on the molecular mechanisms underlying inflammatory diseases and viral infections, particularly in the context of sepsis and COVID-19. The lab investigates regulatory proteins such as SREBP-2 and endocan, as well as natural compounds like maslinic acid and oleanolic acid, to understand their roles in inflammation, cholesterol metabolism, and coagulation. A central theme is the development of endogenous biomarkers and natural therapeutics for disease modulation.
Professor Jin Yong Lee's research lab focuses on population health and epidemiological studies, with a strong emphasis on health disparities, chronic disease management, and dermatological conditions in the Korean population. The lab investigates the impact of socioeconomic factors on pregnancy outcomes, medication adherence in HIV patients, and the prevalence and psychosocial aspects of psoriasis and atopic dermatitis. Using national health insurance claims data, the lab conducts large-scale, population-based studies to inform public health policy and improve clinical outcomes.
Professor Kytae Tae's research lab specializes in head and neck surgery, with a focus on minimally invasive and robotic thyroid surgery, including various remote-access techniques to improve cosmetic outcomes and reduce surgical morbidity. The lab also investigates the molecular mechanisms of head and neck cancers, particularly the role of angiogenesis and VEGF in tumor progression, and explores the pathophysiology of laryngopharyngeal reflux and its impact on laryngeal diseases. Additionally, the lab conducts clinical microbiological studies on tonsillar infections, analyzing bacterial pathogens and antibiotic resistance patterns in patients with recurrent tonsillitis and tonsillar hypertrophy.
Professor Min Ju Kim's research lab specializes in biomedical engineering and translational medicine, focusing on developing innovative biomaterials and therapeutic strategies for chronic diseases. Key research directions include designing injectable hydrogel depots for targeted drug delivery in inflammatory joint diseases, exploring the protective effects of natural antioxidants like lycopene and genistein in metabolic and renal disorders, and advancing medical imaging techniques for non-invasive diagnosis and staging of conditions such as hepatic focal nodular hyperplasia and rectal cancer. The lab integrates materials science, molecular biology, and clinical imaging to improve treatment outcomes in metabolic, renal, and musculoskeletal diseases.
Professor Nam Hoon Kim's research lab focuses on the interplay between body composition, metabolic health, and aging, with a particular emphasis on identifying and validating novel anthropometric indices—such as the weight-adjusted waist index (WWI)—to assess muscle, fat, and bone mass in older adults. The lab investigates the clinical implications of these body composition parameters in relation to chronic diseases, depression, and cardiovascular outcomes, especially in Korean and aging populations. Their work integrates advanced body composition assessment techniques, including dual-energy X-ray absorptiometry and computed tomography, to explore the paradoxes of metabolic health, such as the obesity paradox and the role of fibrates in managing residual cardiovascular risk in metabolic syndrome. The lab also contributes to real-world evidence on lipid-modifying therapies, aiming to refine precision approaches in preventive cardiology and geriatric medicine.
Professor Hoon Kim's research lab specializes in advanced materials and signal processing, with a strong focus on nanomaterials for energy and electronic applications, and innovative scheduling algorithms for next-generation wireless communication systems. The lab investigates the structural characterization of complex biopolymers—particularly lignin and plant cell wall components—using advanced NMR techniques, while also exploring the electromigration behavior of copper in nanoscale interconnects for integrated circuits. Additionally, the lab contributes to optical communication research by analyzing nonlinear phase noise in high-speed transmission systems. These interdisciplinary efforts bridge materials science, biopolymer chemistry, and telecommunications engineering.
Professor Hang-Seok Jang's research lab specializes in thyroid cancer, with a focus on the clinicopathological characteristics, molecular mechanisms, and treatment strategies for various thyroid malignancies, particularly papillary and anaplastic thyroid cancers. The lab investigates molecular markers such as BRAF mutations and their prognostic implications, explores targeted therapies including kinase inhibitors, and examines the impact of early detection through screening on disease outcomes. A key emphasis is placed on improving personalized management and therapeutic responses in aggressive thyroid cancers.
Professor Myeonghyun Son's research lab focuses on the immunological and molecular mechanisms underlying allergic and respiratory diseases, with a particular emphasis on the role of chitinase-like proteins—especially YKL-40 (CHI3L1) and BRP-39—in inflammation, tissue remodeling, and lung injury. The lab investigates the pathogenesis of asthma, atopy, and atopic dermatitis, exploring the interplay between adipokines, allergens (such as cockroach), and immune responses. Key research directions include the regulation and function of YKL-40 in bronchial hyperresponsiveness, hyperoxic lung injury, and pediatric lung function, integrating clinical, genetic, and molecular approaches.
Professor Oh-Hoon Kwon's research lab specializes in ultrafast dynamics and structural characterization of complex molecular systems, with a focus on proton transfer mechanisms in biological and functional materials. The lab employs advanced spectroscopic and microscopic techniques—such as femtosecond fluorescence spectroscopy, 4D electron microscopy, and electron tomography—to investigate proton tunneling, energy transfer, and mechanical responses at the nanoscale. Key research directions include excited-state proton transfer in DNA base pairs and model systems, fluorescence quenching in metal-organic frameworks for explosive sensing, and time-resolved imaging of dynamic processes in nanomaterials and biomolecular complexes. The lab integrates physical chemistry, materials science, and biophysics to uncover fundamental principles governing energy and proton transfer in condensed phases and nanostructures.
Professor Cheol Ju Kim's research lab specializes in the synthesis, characterization, and application of low-dimensional nanomaterials, with a focus on 2D materials, semiconductor nanowires, and metallic nanowires. The lab explores novel growth techniques for high-quality nanomaterials at low temperatures, emphasizing their integration into functional electronic and optoelectronic devices. Key research directions include band engineering in heterostructures, defect control, and the development of high-performance transistors and photodetectors through innovative doping and heteroepitaxial transfer methods.
Professor Inah Lee's research lab specializes in systems neuroscience, focusing on the neural mechanisms underlying spatial memory, learning, and contextual representation in the hippocampus and its connected brain regions. The lab investigates the functional roles of specific hippocampal subregions—such as CA3, CA1, and dentate gyrus—as well as their distinct afferent inputs, particularly from the entorhinal cortex, in encoding and retrieving spatial and contextual information. Using a combination of behavioral tasks, neurotoxic lesions, and electrophysiological recordings in rodents, the lab explores how neural circuits support working memory, memory acquisition, and cognitive mapping. Their work reveals critical subregion-specific contributions and functional dissociations within the hippocampal formation and its inputs.
Professor Jin Joo Park's research lab focuses on cardiovascular disease mechanisms, particularly heart failure phenotypes, risk factor progression, and clinical outcomes in diverse patient populations. The lab investigates longitudinal changes in left ventricular ejection fraction, the impact of comorbidities like diabetes mellitus on cardiac function, and the application of advanced imaging and artificial intelligence in diagnosing acute conditions such as appendicitis. A key emphasis is on improving risk stratification and personalized management in acute heart failure through biomarkers, hemodynamic parameters, and machine learning models.