探索全球顶尖大学的研究室——研究领域与主要论文一览无余。
Professor Man-Sung Yim's research lab focuses on advanced materials and sustainable energy technologies, with a strong emphasis on nuclear energy safety, environmental remediation, and clean energy systems. Key research directions include the development of novel adsorbents—such as bismuth-based metal-organic frameworks (MOFs) and activated carbon composites—for capturing radioactive iodine and uranium from seawater, particularly under extreme conditions like severe nuclear accidents. The lab also investigates the integration of renewable energy into national grids, addressing challenges related to excess electricity generation and grid stability through innovative modeling and management strategies. Additionally, the lab explores public perception and socio-technical factors influencing nuclear energy adoption, combining materials science with policy-relevant research.
Professor Q-Han Park's research lab specializes in theoretical and mathematical physics with a focus on nonlinear dynamics, optical materials, and quantum field theory. The lab investigates integrable systems such as coupled nonlinear Schrödinger equations and self-dual field theories, exploring their soliton solutions and underlying symmetries. It also conducts cutting-edge research on plasmonic nanostructures, optical antennas, and the optical response of low-dimensional materials like 2D semiconductors, using advanced spectroscopic techniques. The work bridges fundamental theoretical physics with applications in nanophotonics, quantum optics, and materials characterization.
Professor Sunkuk Kim's research lab specializes in sustainable construction technologies and advanced materials, focusing on the integration of digital technologies such as UAVs, BIM, and XR to enhance project efficiency and automation in the AEC (Architecture, Engineering, and Construction) industry. The lab also investigates innovative composite materials—particularly MWCNT-reinforced epoxy/carbon fiber laminates—for improved structural performance and durability. Additionally, the lab addresses critical challenges in construction sustainability, including rebar waste minimization through advanced optimization algorithms and improved formwork systems for free-form concrete structures. A strong emphasis is placed on reducing environmental impact, improving productivity, and enhancing safety through data-driven and technology-integrated solutions.
Professor Juhwan Oh's research lab focuses on population health, with a strong emphasis on social determinants of health across the lifespan. The lab investigates health disparities related to socioeconomic status, family and peer influences, and employment insecurity, particularly in the context of public health crises like the COVID-19 pandemic and long-term developmental outcomes such as adolescent mental health and child growth. Research also extends to reproductive health and health behavior in low- and middle-income countries, especially Vietnam and South Korea, with policy-relevant interventions as a central goal.
Professor Sun Min Lim's research lab focuses on molecular oncology and targeted therapy in non-small cell lung cancer (NSCLC), with a particular emphasis on identifying and validating novel therapeutic targets and resistance mechanisms in driver-positive lung cancers. The lab investigates the efficacy and safety of next-generation tyrosine kinase inhibitors, such as ceritinib in ROS1-rearranged NSCLC, and explores resistance mechanisms in EGFR-mutant and other advanced lung cancers through comprehensive genomic profiling. The lab also extends its research to rare and aggressive malignancies, including anaplastic thyroid cancer and gastric cancer, aiming to identify surrogate biomarkers and improve outcomes through precision oncology approaches. Their work integrates molecular diagnostics, including FISH, IHC, and next-generation sequencing, to enhance patient stratification and treatment personalization.
Professor Daehoon Kim's research lab focuses on cardiovascular and cerebrovascular diseases, with a strong emphasis on atrial fibrillation (AF) and its long-term complications, including dementia and cognitive decline. The lab investigates the impact of rhythm and rate control strategies, anticoagulant adherence, and comorbid conditions such as hypertension on clinical outcomes in AF patients. Using large-scale national databases, the lab explores mechanisms linking AF to neurocognitive impairment and identifies modifiable risk factors, particularly in midlife populations. The research also extends into molecular mechanisms of epigenetic regulators like CARM1, linking cellular signaling to disease pathogenesis.
Professor So Mi Jemma Cho's research lab focuses on cardiovascular disease prevention, with a strong emphasis on dyslipidemia, polygenic risk scores, and individualized risk prediction. The lab investigates how genetic, clinical, sociodemographic, and lifestyle factors interact to influence coronary artery disease (CAD) risk and recurrence, particularly in diverse populations. Using large-scale clinical data and health system-based studies, the lab aims to improve risk stratification and precision prevention strategies. Their work spans from basic genetic associations to real-world implementation of risk models in clinical settings.
Professor Kye-Seong Kim's research lab focuses on the molecular mechanisms underlying cellular regulation, particularly through the ubiquitin-proteasome system and post-translational modifications in stem cell biology and reproductive biology. The lab investigates the roles of ubiquitination and deubiquitination enzymes in maintaining stem cell pluripotency and regulating spermatogenic cell development, with a special emphasis on the acrosomal matrix and protein compartmentalization in sperm. Additionally, the lab explores epigenetic regulation in embryonic stem cells, especially the interplay between signaling pathways, histone demethylases, and DNA methylation in establishing the naive pluripotent state. These studies integrate cell biology, biochemistry, and molecular genetics to uncover fundamental regulatory mechanisms with implications for regenerative medicine and infertility.
Professor Junghwan Kim's research lab specializes in the development and application of advanced oxide and halide semiconductors for next-generation optoelectronic devices. The lab focuses on designing amorphous and low-dimensional materials—such as amorphous InGaZnO, Ga2Ox, and lead-free copper halides—to achieve high mobility, excellent transparency, and efficient luminescence. Key research directions include enhancing charge transport in amorphous oxides, suppressing photo-instability through electronic structure engineering, and creating novel phosphors for white-light-emitting devices. The lab also explores thin-film transistors and Schottky diodes based on these materials, aiming for fully transparent and stable electronics.
Professor Ryōsuke Takahashi's research lab focuses on the molecular mechanisms underlying neurodegenerative diseases, particularly Parkinson’s disease and amyotrophic lateral sclerosis (ALS). The lab investigates the roles of protein quality control systems, including the ubiquitin-proteasome system and autophagy, in neuronal homeostasis and disease pathogenesis. Key research directions include the function of E3 ubiquitin ligases such as Parkin and IAP family proteins in regulating protein degradation and apoptosis, as well as the interplay between oxidative stress, endoplasmic reticulum stress, and neurodegeneration. The lab employs genetic, cell biological, and biochemical approaches to dissect these pathways in disease models.
Professor Ibrahim Akal's research lab specializes in quantum field theory, quantum gravity, and holography, with a focus on understanding quantum entanglement, black hole information paradox, and strong-coupling dynamics through holographic duality. The lab investigates moving mirror models in 2D conformal field theories and their gravity duals, using end-of-the-world branes to model black hole formation and evaporation. It also explores nonequilibrium quantum phenomena such as pair production in strong electromagnetic fields, particularly in condensed matter systems like graphene, using kinetic field theory approaches. The work bridges foundational quantum gravity with observable phenomena in high-energy and condensed matter physics.
Professor Sadahito Aoshima's research lab specializes in the development and application of living cationic polymerization techniques, particularly for vinyl ethers and related monomers. The lab focuses on designing novel catalyst systems—especially Lewis acid-base combinations—that enable fast, controlled, and highly selective polymerizations with narrow dispersity and precise molecular weight control. A key innovation is the use of weakly basic additives to stabilize carbocations, allowing for the synthesis of complex architectures such as ABC triblock copolymers and star-shaped polymers with stimuli-responsive behavior. The lab also explores heterogeneous catalysis, including Fe₂O₃-based systems, and investigates the thermoresponsive physical gelation of aqueous polymer solutions for smart material applications.
Professor Dongwhan Lee's research lab specializes in bioinorganic chemistry, focusing on the synthesis and characterization of synthetic models for non-heme diiron enzymes, particularly ribonucleotide reductase and soluble methane monooxygenase. The lab investigates the electronic and magnetic properties of diiron complexes, with an emphasis on understanding the activation of dioxygen and the formation of high-valent iron-oxo intermediates relevant to enzymatic catalysis. Their work combines molecular synthesis, spectroscopic techniques (such as Mössbauer and EPR), and structural analysis to mimic and probe the reactivity of biological iron centers.
Professor Yoo Yong Kim's research lab specializes in animal nutrition and feed science, focusing on optimizing dietary formulations to enhance growth performance, health, and productivity in livestock and poultry. The lab investigates the effects of nutrient manipulation—such as energy and protein levels, lysophospholipid supplementation, and alternative feed ingredients—on animal metabolism, intestinal health, and carcass traits. A key research direction involves developing sustainable and cost-effective feeding strategies, including the use of alternative protein sources like edible insects and fiber-rich ingredients such as sugar beet pulp, to replace antibiotics like ZnO in weaning pigs. The lab also explores phase feeding systems and feed processing techniques to improve feed efficiency and economic profitability in animal production systems.
Professor Jessie S. Jeon's research lab specializes in developing advanced microfluidic and 3D in vitro models to study complex biological processes, particularly cancer metastasis and vascularization. The lab focuses on mimicking the tumor microenvironment by integrating human cells, extracellular matrices, and dynamic fluidic conditions to investigate organ-specific cancer cell extravasation, endothelial-pericyte interactions, and the role of signaling molecules like Ang-1 and TGF-β1. Their work also extends to antimicrobial screening, where they apply microfluidic platforms to study combinatory antibiotic effects with high-throughput phenotypic analysis. These innovative models enable real-time, in situ monitoring of cellular behaviors, offering new insights into disease mechanisms and therapeutic development.
Professor Woo-Bin Jung's research lab specializes in the design and fabrication of advanced nanomaterials for sustainable energy and environmental applications. The lab focuses on developing low-cost, scalable nanofabrication techniques for high-density, ultra-small nanopatterns and advanced electrocatalysts, particularly for carbon dioxide reduction and rechargeable metal-air batteries. Key research directions include the synthesis of polyelemental alloy nanoparticles, defect-engineered carbon-supported catalysts, and facet-controlled copper nanostructures to enhance catalytic selectivity and activity.
Professor Eun Yeon Joo's research lab specializes in neuropsychiatry and neuroimaging, focusing on the neural mechanisms underlying sleep disorders and epilepsy. The lab investigates structural and functional brain changes—such as cortical thinning, gray matter atrophy, and alterations in cerebral glucose metabolism—associated with conditions like obstructive sleep apnea, narcolepsy, and mesial temporal lobe epilepsy. Using advanced neuroimaging techniques including FDG-PET, SPECT, and statistical parametric mapping, the lab explores how sleep disruption and neurological diseases affect cognition, attention, emotion regulation, and autonomic function. The research also evaluates the neurobiological impact of wake-promoting medications like modafinil on regional cerebral blood flow in healthy individuals.
Professor Jun Moon's research lab specializes in stochastic control, differential games, and reinforcement learning with applications to large-scale multiagent systems, unmanned aerial vehicles, and Markov jump systems. The lab focuses on risk-sensitive and robust control strategies, mean-field type games, and time-inconsistent optimal control problems, integrating advanced mathematical frameworks such as backward stochastic differential equations and Hamilton-Jacobi-Bellman-Isaacs equations. A key emphasis is on developing scalable, decentralized, and robust control algorithms for dynamic, uncertain environments using deep reinforcement learning and stochastic optimization techniques.
Professor Akifumi Sugiyama's research lab focuses on plant-microbe interactions in the rhizosphere, particularly the role of root-derived metabolites in shaping microbial communities and influencing plant growth and soil health. The lab investigates the molecular mechanisms of metabolite secretion, such as flavonoids and isoflavones, and their impact on symbiotic relationships with rhizobia and mycorrhizal fungi. Using integrative approaches combining molecular biology, omics technologies (e.g., pyrosequencing), and physiological assays, the lab explores how agricultural practices affect microbial diversity and function in soil ecosystems. A key focus is understanding the spatiotemporal dynamics of signaling molecules and their ecological consequences in sustainable agriculture.
Professor Sensuke Ogoshi's research lab specializes in transition metal-catalyzed C–C and C–heteroatom bond formations, with a strong focus on nickel- and palladium-catalyzed transformations involving C–F and C–O bond activation. The lab develops innovative strategies for selective functionalization of fluorinated compounds, including defluorosilylation and Suzuki-type cross-coupling without requiring external bases or Lewis acids. Key research directions include the design of novel nickel complexes for oxidative cyclization, cycloaddition, and carbonylative coupling, often involving unique organometallic intermediates such as allylnickel and nickelacycles.