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 Hongyun Choi's research lab specializes in advancing medical imaging and neurodegenerative disease research through cutting-edge computational and molecular approaches. The lab focuses on developing deep learning models for automated and accurate interpretation of brain imaging data, such as SPECT and PET, to improve diagnosis of Parkinson’s disease and Alzheimer’s disease. It also explores the biological roles of extracellular vesicles and the molecular mechanisms underlying neuromuscular junction formation, particularly involving ApoE receptors and APP. A key theme across the lab’s work is integrating multi-omics data with imaging to decode cellular and pathological processes in the brain.
Professor Sang-Guk Han's research lab specializes in advanced optoelectronic systems, with a primary focus on visible light communication (VLC), high-precision indoor positioning, and next-generation display technologies. The lab develops innovative solutions for integrated VLC and positioning systems using LED lighting and image sensors, achieving centimeter-level accuracy in 3D space. It also pioneers flexible, full-color micro-LED displays using quantum dots and photolithography, enabling applications on unconventional substrates like skin and fabric. Additionally, the lab investigates photonic waveguides and free-space optical communication, addressing challenges such as thermal effects, atmospheric turbulence, and beam alignment in high-capacity optical links.
Professor Kimin Lee's research lab specializes in advancing the robustness, generalization, and reliability of deep learning and reinforcement learning systems. The lab focuses on improving model uncertainty estimation, out-of-distribution detection, and robustness to label noise in deep neural networks. A key direction involves developing novel inference and training techniques—such as generative modeling on feature spaces, randomized input transformations, and ensemble-based value backups—to enhance generalization in high-dimensional and real-world environments.
Professor Yun Gong's research lab specializes in parasitic helminths, focusing on the molecular mechanisms underlying host-parasite interactions, particularly in cestodes and trematodes. The lab investigates parasite-derived proteins, such as cysteine proteases and lipid-binding proteins, that play key roles in immune evasion, tissue invasion, and nutrient acquisition. A major research direction involves identifying and characterizing immunodiagnostic antigens and virulence factors for improved diagnosis and vaccine development. The lab employs advanced proteomic and molecular biological techniques, including two-dimensional electrophoresis, mass spectrometry, and recombinant protein expression, to dissect the secretome and pathobiology of parasitic infections.
Professor Hyeong-hyang Kim's research lab specializes in biomedical and environmental health sciences, focusing on regenerative medicine, metabolic disease modeling, and toxicological risk assessment. The lab investigates gene therapy strategies for tissue regeneration, particularly in intervertebral disc repair, while also exploring the metabolic and toxicological impacts of dietary factors and consumer products. Using advanced omics technologies—such as metabolomics, transcriptomics, and mass spectrometry—research spans from molecular mechanisms in disease models to real-world health risks of environmental chemicals.
Professor Yeonsik Choi's research lab specializes in the development of bioresorbable and transient electronic systems for biomedical applications, focusing on implantable devices that safely dissolve in the body after fulfilling their therapeutic function. The lab pioneers advanced materials—particularly bioresorbable polymers like polyanhydrides and dynamic covalent networks—that enable temporary, wirelessly controlled medical devices for cardiac pacing, drug delivery, and tissue regeneration. Key research directions include the design of biodegradable electronics with programmable lifetimes, energy harvesting for autonomous operation, and closed-loop systems that monitor and respond to physiological signals in real time. The lab integrates materials science, bioelectronics, and biomedical engineering to create next-generation implantable platforms that eliminate the need for surgical removal and enhance patient outcomes.
Professor Jungseung Lee's research lab specializes in advanced biomaterials and tissue engineering, focusing on developing bioactive scaffolds and functionalized surfaces for regenerative medicine. The lab pioneers innovative strategies such as decellularized extracellular matrix platforms, catechin-based surface modifications, and autoxidation-driven hydrogels to enhance cell behavior and tissue regeneration. Key research directions include injectable hydrogels for soft tissue augmentation, endothelialization of engineered blood vessels, and implantable bioelectronic sensors for real-time wound monitoring. The lab integrates materials science, stem cell biology, and biomedical engineering to create smart, biocompatible systems with clinical translation potential.
Professor Joo Yong Lee's research lab specializes in urological interventions, with a primary focus on endourological treatments for urinary stones and bladder cancer. The lab investigates novel and minimally invasive surgical techniques—such as percutaneous nephrolithotomy (PCNL), retrograde intrarenal surgery (RIRS), extracorporeal shock wave lithotripsy (SWL), and photodynamic therapy—aiming to optimize outcomes, improve stone-free rates, and reduce recurrence in renal and ureteral stones. A key research direction involves identifying imaging-based predictors, such as stone heterogeneity index (SHI) and Hounsfield unit variability on non-contrast CT, to enhance treatment selection and predict SWL success. The lab also explores advanced endoscopic imaging techniques like white-light cystoscopy (WLC), narrow-band imaging (NBI), and photodynamic therapy using Radachlorin to improve early detection and management of non-muscle-invasive bladder cancer.
Professor Suyun Kim's research lab focuses on translational biomedical research with a strong emphasis on clinical diagnostics, medical imaging, and public health applications. The lab investigates biomarkers and predictive models for cancer outcomes, particularly in breast cancer, using advanced imaging techniques and machine learning. It also explores environmental and zoonotic infectious diseases, such as tick-borne encephalitis virus, and examines the role of oxidative stress and trace elements in gynecological cancers. Additionally, the lab contributes to health education research, especially in the context of online learning platforms like K-MOOC, analyzing factors influencing learner engagement and satisfaction.
Professor JinSoo Kang's research lab specializes in the design and development of advanced nanomaterials for sustainable energy and environmental applications. The lab focuses on nanostructured metal oxides, nitrides, and carbides for applications in electrocatalysis, photoelectrochemical water splitting, and electrochemical desalination. Key research directions include enhancing the electrochemical stability and catalytic activity of earth-abundant materials for hydrogen evolution and ion removal, with an emphasis on scalable and cost-effective fabrication methods.
Professor Sung-Il Kim's research lab specializes in the neuroscience of motivation and learning, focusing on the neural mechanisms underlying curiosity, intrinsic motivation, and academic engagement. The lab investigates how cognitive control, reward processing, and value-based decision-making shape students' learning behaviors and educational outcomes. By integrating neuroscience, psychology, and educational theory, the lab aims to develop evidence-based learning environments that enhance student motivation and engagement. Current research explores the interplay between individual differences, learning contexts, and neurocognitive processes in academic settings.
Professor Eunji Sim's research lab specializes in advancing quantum mechanical methods for accurate electronic structure calculations, with a focus on density-functional theory (DFT) and its extensions. The lab develops and applies density-corrected DFT (DC-DFT) to overcome systematic errors in standard DFT, particularly for challenging systems such as transition metal complexes, stretched bonds, and open-shell species. By leveraging high-accuracy densities from wavefunction methods or other reference theories, the lab enables reliable predictions of electronic properties, reaction barriers, and spin-state energetics where conventional DFT fails. The lab also explores efficient quantum dynamics methods, including path integral and filtered propagator schemes, for simulating complex quantum systems in condensed phases.
Professor Sung Hoi Oh's research lab specializes in autonomous multi-target tracking and real-time decision-making systems for wireless sensor networks, with a focus on solving complex data association problems under uncertainty. The lab develops scalable, efficient algorithms—particularly Markov Chain Monte Carlo-based methods—for tracking an unknown number of moving targets in cluttered environments with limited computational and communication resources. Key research directions include Bayesian filtering, sensor network control, and hierarchical real-time systems that handle measurement inconsistencies due to packet loss and delays. The lab also explores pursuit-evasion games and sensor network-based surveillance, emphasizing robustness and autonomy in dynamic, real-world conditions.
Professor Lee Hyeon-jeong's research lab specializes in synthetic biology and metabolic engineering, focusing on the sustainable conversion of carbon dioxide into valuable chemicals and biofuels using cyanobacteria and livestock systems. The lab pioneers the design of synthetic metabolic pathways—such as the AAM bypass and MEP pathway optimization—in photosynthetic microbes like *Synechococcus elongatus* to enhance production of compounds like α-farnesene, fatty acid ethyl esters, and acetone. Additionally, the lab investigates host-microbe interactions, particularly the role of rumen microbiota in marbling formation in Hanwoo cattle, linking microbial ecology to agricultural biotechnology. Their work bridges synthetic biology, metabolic engineering, and agricultural sustainability.
Professor Seong-Yeon Park's research lab specializes in developmental and consumer psychology, focusing on the interplay between emotional regulation, parenting behaviors, and youth adjustment across diverse cultural contexts. The lab investigates how family dynamics—particularly parental influence—shape children’s aggression, emotional regulation, and school adjustment, while also exploring sensory environments in retail settings and their impact on consumer emotions and behaviors. Research spans cross-cultural comparisons, especially between Korea and the U.S., to understand how cultural values such as Confucian collectivism and Western individualism influence social and consumer behaviors. The lab employs mixed-methods approaches, combining qualitative insights with quantitative surveys to examine psychological mechanisms in both educational and consumer settings.
Professor Kyoungphile Nam's research lab specializes in environmental microbiology and biogeochemistry, focusing on the fate, bioavailability, and bioremediation of environmental pollutants such as polycyclic aromatic hydrocarbons (PAHs) and heavy metals. The lab investigates microbial degradation mechanisms, sorption-desorption dynamics of contaminants in soils and engineered materials, and the role of soil properties—particularly organic matter and mineral composition—in controlling pollutant persistence and ecological risk. Additionally, the lab explores biomineralization processes for sustainable applications, including self-healing concrete and metal toxicity prediction using biotic ligand models.
Professor Ki Young Na's research lab focuses on renal pathophysiology, particularly the molecular mechanisms underlying kidney function and injury in conditions such as nephrogenic diabetes insipidus, chronic kidney disease, and hypertonic stress. The lab investigates cellular responses to osmotic stress, including the role of transcription factors like TonEBP/NFAT5 and HSP70 in mediating adaptation in the renal medulla. Additional research explores the effects of diuretics and DPP-IV inhibitors on renal transporters, fibrosis, and oxidative stress, with a strong emphasis on translational insights into metabolic and kidney diseases in aging and diabetic populations. The lab integrates molecular biology, animal models, and clinical epidemiology to understand the interplay between metabolism, body composition, and renal outcomes.
Professor Jeong Ho Park's research lab specializes in biomedical and materials science research, focusing on improving clinical outcomes in critical care and infectious disease management, as well as developing advanced functional nanomaterials. Key research directions include optimizing extracorporeal cardiopulmonary resuscitation (ECPR) protocols for out-of-hospital cardiac arrest, evaluating novel vaccination strategies against avian pathogens like infectious bursal disease virus, and designing monodisperse polymer-inorganic nanoparticle composites with tailored mechanical and interfacial properties. The lab also investigates rare neurological manifestations of systemic diseases, such as neuro-Behçet’s disease, and contributes to healthcare system standardization through nursing intensity classification systems. These diverse yet interconnected efforts reflect a strong commitment to translational research bridging clinical medicine, immunology, and advanced materials.
Professor Baekhee Kim's research lab focuses on gastrointestinal oncology, with a primary emphasis on gastric cancer biology, molecular subtyping, and tumor microenvironment regulation. The lab investigates key signaling pathways—such as sonic hedgehog and PI3K/Akt—that drive tumor progression, metastasis, and therapy resistance. By integrating genomics, proteomics, and preclinical models, the lab aims to identify predictive biomarkers and therapeutic targets for personalized cancer treatment. The work also extends to metabolic liver diseases, particularly the interplay between non-alcoholic fatty liver disease and atherosclerosis in the context of dyslipidemia and systemic inflammation.
Professor Ki Won Oh's research lab focuses on the molecular and hormonal regulation of bone metabolism, with a particular emphasis on the roles of adipocytokines, osteoprotegerin (OPG), and their genetic polymorphisms in bone mineral density and metabolic bone diseases. The lab investigates the interplay between adipose tissue-derived hormones, insulin resistance, and systemic conditions such as osteoporosis, hypertension, and fatty liver disease in Korean populations. Key research directions include the OPG-RANKL pathway in bone remodeling, the impact of serum adipocytokines on bone health, and the genetic associations of adiponectin and OPG with metabolic and skeletal disorders. The lab integrates clinical epidemiology with molecular biology, using human cohort studies and in vitro models of osteoblast and mesenchymal stem cell differentiation.