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 Jaegeun Noh's research lab specializes in the fundamental understanding of self-assembled monolayers (SAMs) at solid-liquid and solid-vacuum interfaces, with a focus on molecular-scale structure, dynamics, and stability. The lab employs advanced surface characterization techniques such as scanning tunneling microscopy (STM), X-ray photoelectron spectroscopy (XPS), and high-resolution electron energy loss spectroscopy (HREELS) to investigate molecular packing, phase transitions, and interfacial interactions in thiophene, alkanethiol, and disulfide-based SAMs on gold and graphite substrates. Key research directions include the role of molecular interactions—such as cofacial π–π stacking and hydrogen bonding—in determining monolayer organization, as well as the kinetics and thermodynamics of surface reconstruction and desorption processes under various environmental conditions. The lab’s work provides critical insights into the design of functional nanostructures for applications in molecular electronics, sensors, and surface engineering.
Professor Youngnim Choi's research lab focuses on the immunological and molecular mechanisms underlying chronic inflammatory diseases of the oral cavity, particularly periodontitis, Sjögren’s syndrome, and oral lichen planus. The lab investigates the role of immune cell subsets—especially T and B lymphocytes—in driving tissue destruction and autoimmunity, with an emphasis on osteoclastogenesis and epithelial cell transformation. It also explores the impact of microbial dysbiosis in the oral and gut microbiomes on disease pathogenesis, aiming to identify novel diagnostic biomarkers and therapeutic targets for early intervention.
Professor Sangseom Jeong's research lab specializes in geotechnical and pavement engineering, focusing on the behavior of soils and infrastructure under dynamic and environmental loads. Key research directions include landslide mechanisms in partially saturated soils, lateral load response of offshore piles, and the dynamic performance of asphalt pavements under varying traffic conditions. The lab integrates experimental testing, field monitoring, and advanced numerical modeling to develop practical design frameworks for geotechnical systems and flexible pavements.
Professor Seunghoon Lee's research lab specializes in the development and application of advanced quantum chemical methods, particularly focusing on time-dependent density functional theory (TDDFT) and its extensions for challenging electronic structure problems. The lab pioneers innovative approaches such as mixed-reference spin-flip TDDFT (MRSF-TDDFT) to overcome limitations in describing diradicals, conical intersections, doubly excited states, and core-level excitations—key challenges in quantum chemistry. By integrating analytic energy gradients, efficient algorithms for overlap integrals, and nonadiabatic coupling calculations, the lab enables accurate and practical simulations of excited-state dynamics and geometry optimizations. Their work bridges theoretical rigor with computational efficiency, advancing predictive capabilities in quantum chemistry and materials science.
Professor Byoungjin Park's research lab specializes in health and biomedical research, with a primary focus on identifying and validating novel biomarkers for cardiometabolic risk prediction in non-diabetic populations. The lab investigates metabolic, inflammatory, and lipid-related indicators—such as the TyG index, METS-IR, UHR, AIP, and platelet parameters—to understand their longitudinal associations with ischemic heart disease (IHD) and insulin resistance. Using large-scale longitudinal cohort data from Korean national health databases, the lab emphasizes population-level risk assessment and early detection of cardiometabolic diseases. The research integrates clinical epidemiology with metabolic health, aiming to improve preclinical risk stratification and preventive strategies.
Professor Juyeon Jung's research lab specializes in developing advanced biosensing technologies and molecular diagnostics for infectious diseases and regenerative medicine. The lab focuses on innovative applications of CRISPR-based systems, nanomaterials, and immunoassays for rapid, point-of-care detection of pathogens such as SARS-CoV-2 and influenza viruses. Additionally, the lab pioneers molecular authentication methods for medicinal plants and explores safety-enhanced stem cell therapies using genetic suicide systems. Their work bridges synthetic biology, nanotechnology, and biomedical engineering to address global health challenges.
Professor Yu-Jin Kwon's research lab focuses on the intersection of blockchain technology, cryptocurrency economics, and computational security, with a particular emphasis on incentive mechanisms, mining dynamics, and systemic vulnerabilities in distributed ledger systems. The lab investigates critical challenges such as block withholding attacks, selfish mining, fickle mining behavior, and the decentralization paradox in proof-of-work, proof-of-stake, and delegated proof-of-stake consensus models. Additionally, the lab explores the broader implications of these economic and technical dynamics on network fairness, miner behavior, and long-term protocol sustainability. Beyond blockchain, the lab also engages in health-related data science, analyzing large-scale nutritional and clinical cohorts to understand the impact of macronutrients and electrolytes on mortality outcomes.
Professor Yong Wook Kim's research lab focuses on translational and clinical neuroscience, with a strong emphasis on understanding the neural mechanisms underlying consciousness and neuropsychiatric disorders following brain injury. The lab investigates pharmacological responses to treatments such as methylphenidate in patients with impaired consciousness, explores neuroimaging correlates of post-stroke depression, and examines the role of specific brain regions in cognitive and affective sequelae after stroke. Additionally, the lab contributes to the understanding of molecular mechanisms in cancer biology, particularly the regulation of telomerase activity by signaling pathways such as PKC.
Professor Han-Sin Jeong's research lab specializes in translational and molecular oncology, with a focus on the biological mechanisms of cancer progression, particularly lymph node metastasis and tumor angiogenesis. The lab investigates the pathophysiology of rare thyroid malignancies, such as primary squamous cell carcinoma of the thyroid, and explores advanced imaging techniques to evaluate tumor behavior and treatment response. A key research direction involves understanding the limitations of antiangiogenic therapies in lymph node metastases, revealing that sprouting angiogenesis does not drive early metastatic growth, which has critical implications for treatment strategies. The lab also contributes to the development of diagnostic and therapeutic approaches for complex vascular lesions, such as hemangiomas and vascular malformations, through interventional radiology and image-guided interventions.
Professor Nuri Oh's research lab specializes in the design, synthesis, and application of advanced nanomaterials with a focus on colloidal quantum dots, gold nanoparticles, and nanostructured semiconductors. The lab explores fundamental mechanisms of nanoparticle-biological interactions, including macrophage-mediated exocytosis and intracellular trafficking, to enable safer and more effective nanotherapeutics. Key research directions include ligand engineering for enhanced photostability and processability, controlled etching and heteroepitaxial growth of nanocrystals, and the development of stimuli-responsive nanostructures for biomedical and optoelectronic applications. The lab integrates materials chemistry, surface science, and bio-nanotechnology to create functional nanomaterials with tailored optical, electronic, and biological properties.
Professor Young Ho Choi's research lab specializes in biomedical engineering and urological interventions, focusing on ureteral physiology, stent performance, and urinary flow dynamics. The lab investigates the hemodynamic effects of double J stents in anatomically realistic ureter models, aiming to optimize stent design and placement for ureteral stenosis. Additional research explores reproductive biotechnology, particularly sperm capacitation and in vitro maturation of equine oocytes, highlighting translational applications in animal fertility. The lab combines experimental and computational methods to address clinical challenges in urology and reproductive medicine.
Professor Hyun Joo Ahn's research lab focuses on translational critical care and oncology, with a strong emphasis on perioperative medicine in thoracic surgery. The lab investigates novel therapeutic strategies for cancer, particularly exploring repurposed drugs like phenformin and morphine through mechanisms involving mitochondrial function, oxidative stress, and receptor signaling. It also examines respiratory protective strategies, including protective ventilation and hemodynamic management, to improve outcomes in high-risk surgical patients. A recurring theme is the intersection of cancer biology, pain management, and critical care interventions to enhance survival and reduce complications.
Professor Rajkumar Patel's research lab specializes in advanced materials for sustainable energy and environmental applications. The lab focuses on developing functional nanomaterials such as transition metal layered double hydroxides, carbon quantum dots, and polymer-based composites for energy storage, photocatalysis, and wastewater treatment. Key research directions include enhancing lithium–sulfur batteries, improving luminescent solar concentrators and perovskite solar cells using carbon-based quantum dots, and designing efficient biosorbents from polysaccharides to remove heavy metal ions from industrial effluents. The lab emphasizes materials with tunable optical and electronic properties, high efficiency, and environmental compatibility.
Professor So Hyun Kim's research lab specializes in early identification, diagnosis, and developmental trajectories of autism spectrum disorder (ASD) in young children. The lab focuses on language development, restricted and repetitive behaviors (RRBs), and social communication impairments, using standardized tools like the ADOS and ADI-R to improve diagnostic accuracy and treatment outcomes. A key emphasis is on understanding individual differences in early profiles and their impact on long-term developmental trajectories, particularly in toddlers and preschoolers with varying levels of language and cognitive ability.
Professor Daejun Chang's research lab specializes in sustainable energy systems and maritime energy management, focusing on the integration of alternative energy sources such as liquid hydrogen and liquefied natural gas (LNG) in marine propulsion and energy storage. The lab develops advanced control strategies using deep reinforcement learning and reliability analysis to optimize energy efficiency, reduce emissions, and enhance safety in complex energy systems. Key research directions include energy management in hybrid electric ships, cold energy recovery from LNG, and risk assessment for hazardous processes in offshore and maritime applications.
Professor Chang Ook Park's research lab focuses on understanding the immunological and molecular mechanisms underlying atopic dermatitis (AD) and related atopic diseases, with an emphasis on identifying key biomarkers and immune cell interactions that drive disease progression. The lab investigates the roles of specific cytokines, chemokines (such as CCL18), and immune cells—including dendritic cells, ILCs, and iNKT cells—in shaping the inflammatory microenvironment in AD subtypes. Additionally, the lab explores novel diagnostic and therapeutic strategies, including immunotherapy using allergens and innovative molecular probes for cancer imaging, highlighting a translational approach bridging basic immunology and clinical applications.
Professor Daejun Chang's research lab specializes in maritime energy systems, with a focus on the thermodynamic, economic, and environmental optimization of liquefied hydrogen and natural gas propulsion and fuel supply systems for ships. The lab investigates innovative solutions for boil-off gas management, including re-liquefaction and fuel cell utilization, to enhance energy efficiency and reduce emissions. Key research directions include life-cycle cost analysis, energy efficiency design indices, and the development of sustainable propulsion strategies for zero-emission shipping.
Professor Jun-Ho Choi's research lab specializes in the analysis of complex networks and human-computer interaction, with a focus on understanding global communication structures, media credibility, and human activity recognition. The lab investigates the structural similarities between large-scale networks—such as the Internet backbone and air transport systems—using advanced network analysis techniques. It also explores psychological and behavioral aspects in virtual environments, particularly through multimodal sensing and real-time monitoring of human interactions in virtual meetings. Additionally, the lab develops cutting-edge deep learning models for multimodal human activity recognition, emphasizing confidence-based fusion of sensor data for improved accuracy.
Professor Yoo-Young Lee's research lab specializes in translational gynecologic oncology, focusing on improving outcomes for patients with cervical, ovarian, and uterine cancers. The lab investigates biomarkers for risk stratification—such as pretreatment neutrophil-to-lymphocyte ratio (NLR)—to guide personalized treatment strategies. It also explores novel therapeutic combinations, including Wee1 inhibitors with radiotherapy, to enhance tumor control while minimizing toxicity. Additionally, the lab contributes to the critical evaluation of clinical advances in gynecologic oncology, particularly in immunotherapy, targeted therapy, and treatment optimization in early and advanced disease.
Professor Youngjin Choi's research lab specializes in advanced control systems and intelligent robotics, with a strong focus on robust and optimal control methodologies for high-precision motion control and humanoid robotics. The lab develops innovative algorithms such as disturbance observer-based control, inverse optimal PID design, and ZMP-based walking control to enhance stability and performance in dynamic systems. Additionally, the lab explores adaptive signal processing techniques, including robust NLMS algorithms, and applies control theory to environmental applications like wastewater treatment using natural materials. The research integrates theoretical rigor with practical validation through experimental platforms in mechatronics and robotics.