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 Liwei Lin's research lab specializes in advanced functional materials and their applications in biomedicine and energy technologies. The lab focuses on developing smart hydrogels, 3D-printed biomaterials, and nanostructured composites for wound healing, tissue engineering, and personalized medical devices. Key research directions include stimuli-responsive hydrogels, conductive polymer composites for wearable sensors, and heteroatom-doped porous carbon for high-performance energy storage. The lab integrates materials science, biomedical engineering, and sustainable fabrication techniques to create next-generation solutions for healthcare and energy challenges.
Professor Jae Hong Kim's research lab specializes in cementitious materials and concrete technology, with a strong focus on rheology, durability, and sustainable concrete solutions. The lab investigates the flow behavior and formwork pressure of self-consolidating concrete, the role of mineral admixtures in reducing lateral pressure, and the impact of CO₂ curing on strength development and carbonation. Key research directions include optimizing concrete mix designs for improved workability and formwork performance, advancing rheological measurement techniques, and exploring carbon utilization through CO₂ curing to reduce environmental impact. The lab also contributes to the development of predictive models for concrete pumping and the evaluation of lubricating layers in pipeline flow.
Professor Dae-Ok Kim's research lab specializes in the comprehensive analysis of natural polyphenolics in plant-based foods, focusing on their antioxidant capacities, phenolic profiles, and biological activities. The lab employs advanced analytical techniques such as HPLC and spectrophotometric assays to quantify total phenolics, flavonoids, and anthocyanins, while evaluating their health-promoting potential using vitamin C equivalent antioxidant capacity (VCEAC) as a standard metric. A key research direction involves linking the chemical composition of fruits—such as apples, plums, cherries, and others—to their neuroprotective and antioxidant effects, particularly in relation to chronic disease prevention. The lab also explores the design of functional materials, including hierarchical porous metal–organic frameworks and carbon nitride foams, for applications in catalysis and environmental technologies.
Professor Takeshi Iwatsubo's research lab specializes in neurodegenerative disease pathology, with a primary focus on the molecular mechanisms underlying amyloid-beta (Aβ) deposition in Alzheimer’s disease and related disorders. The lab investigates the sequential accumulation and pathological roles of distinct Aβ species, particularly Aβ40 and Aβ42/43, using postmortem brain tissues and specific monoclonal antibodies. Their work in Down syndrome patients has provided critical insights into the early onset and progression of Aβ pathology, highlighting Aβ42/43 as key initiators of senile plaque formation. The lab’s research contributes significantly to understanding the pathogenesis of Alzheimer’s disease and the development of early diagnostic and therapeutic strategies.
Professor Tomohito Kameda's research lab specializes in the development and application of advanced functional materials, particularly layered double hydroxides (LDHs) and metal oxides, for environmental remediation and chemical transformation. The lab focuses on anion exchange mechanisms, adsorption kinetics, and surface reactivity of materials like Mg–Al LDHs and activated carbon for the removal of hazardous ions such as Cl⁻, Sb(V), and urea from aqueous solutions. Key research directions include the design of tailored materials for selective ion capture, understanding reaction pathways in nucleophilic substitution of polymers (e.g., PVC), and optimizing thermal and chemical processes for sustainable waste treatment. The lab also investigates the structural and mechanistic aspects of intercalation and surface interactions using techniques such as XRD, FTIR, and kinetic modeling.
Professor Masako Kato's research lab specializes in the design and investigation of luminescent metal complexes and coordination materials with unique optical and structural properties. The lab focuses on soft crystals, platinum(II) and copper(I) complexes, and coordination polymers that exhibit stimuli-responsive luminescence, chromism, and high photoluminescence quantum yields. Key research directions include understanding metal–metal and charge-transfer interactions in stacked metal complexes, developing materials for optical sensing and environmental response, and exploring thermally activated delayed fluorescence (TADF) and phosphorescence mechanisms through advanced spectroscopy and computational analysis.
Professor Sang-Bae Ko's research lab specializes in cerebrovascular and critical brain injury, with a focus on optimizing neurological outcomes following subarachnoid hemorrhage, ischemic stroke, and cardiac arrest. The lab investigates hemodynamic and metabolic monitoring strategies—such as cerebral perfusion pressure (CPP) and brain tissue oxygenation (PbtO2)—to guide individualized treatment and prevent secondary brain injury. A key research direction involves understanding and mitigating ischemia-reperfusion injury through mechanisms like oxidative stress and cellular senescence, with emerging interest in senolytic therapies as potential neuroprotective interventions. The lab also contributes to evidence-based guidelines for endovascular recanalization therapy in acute ischemic stroke, particularly in extended time windows for selected patients.
Professor Hokyou Lee's research lab specializes in cardiovascular and metabolic health, with a focus on identifying early risk factors for cardiovascular disease in young and middle-aged adults. The lab investigates the interplay between hypertension subtypes, socioeconomic factors, and metabolic liver disease in predicting cardiovascular outcomes. Key research directions include risk stratification using blood pressure phenotypes, the impact of lifestyle and socioeconomic status on treatment adherence and mortality, and the role of liver fibrosis in systemic cardiovascular complications among patients with type 2 diabetes. The lab employs large-scale national cohort studies to translate clinical and epidemiological insights into preventive strategies.
Professor Taeyoon Lee's research lab specializes in advanced functional materials and flexible electronics, with a focus on stretchable conductive fibers, wearable sensors, and bioinspired surface engineering. The lab develops next-generation electronic textiles and interconnects by integrating nanomaterials such as silver nanowires and graphene into elastomeric matrices, enabling high conductivity, mechanical robustness, and long-term reliability under deformation. Key research directions include the design of capacitive pressure sensors inspired by natural porous structures, ultrathin graphene diffusion barriers for copper interconnects, and energy-harvesting textiles for sustainable wearable applications.
Professor Kyeounghak Kim's research lab specializes in the design and mechanistic understanding of advanced functional materials for sustainable energy and environmental applications. The lab focuses on heterogeneous catalysis, particularly the development of ceria-based and perovskite-type oxides for CO oxidation, dry reforming of methane, and nitrous oxide reduction. By integrating advanced theoretical calculations—especially density functional theory (DFT)—with precise synthesis and characterization techniques, the lab uncovers structure-activity relationships at the atomic level. A key research direction involves engineering surface and electronic structures through doping, shell thickness control, and oxygen vacancy engineering to enhance catalytic activity and stability.
Professor Yongteng Qian's research lab specializes in the design and synthesis of advanced functional nanomaterials for sustainable energy and environmental applications. The lab focuses on developing novel photocatalysts, electrocatalysts, and nanogenerators based on metal-organic frameworks (MOFs), transition metal dichalcogenides, and heterostructured nanomaterials. Key research directions include phase engineering, defect modulation, and interfacial microenvironment control to enhance catalytic and energy conversion performance. The lab also explores applications in hydrogen evolution, water splitting, environmental remediation, and high-performance flexible energy harvesters.
Professor Muhammad Abdul Basit's research lab specializes in the design and synthesis of advanced nanomaterials for next-generation energy storage and conversion technologies. The lab focuses on atomic layer deposition (ALD) as a key technique to engineer functional nanocoatings and nanostructured materials, particularly metal sulfides and electrode materials for rechargeable batteries. Research directions include enhancing structural stability, energy density, and cycle life of battery components through precise nanoscale engineering. The lab also explores novel nanomaterial synthesis strategies to address challenges in sustainable and high-performance energy systems.
Professor Jae Su Yu's research lab specializes in the design, synthesis, and application of advanced functional materials for energy conversion and storage, with a strong focus on luminescent phosphors and electrochemical energy devices. The lab explores novel oxide-based materials—particularly rare-earth doped phosphors and vanadium-based oxides—for applications in solid-state lighting, temperature sensing, and next-generation batteries such as aqueous zinc-ion and multivalent ion batteries. Key research directions include nanostructure engineering, interface modulation, and the integration of carbon materials to enhance electrochemical performance and thermal stability.
Professor Goo Taeg Oh's research lab focuses on the role of oxidative stress and redox regulation in inflammatory and degenerative diseases, particularly in cardiovascular and neurodegenerative conditions. The lab investigates how antioxidant enzymes such as SOD1, PRDX1, and other redox-sensitive molecules modulate autophagy, immune cell function, and endothelial inflammation in diseases like colitis, ischemic stroke, atherosclerosis, and myocardial injury. Using advanced techniques including single-cell RNA sequencing, lineage tracing, and genetic models, the lab explores the functional heterogeneity of immune cells—especially macrophages, dendritic cells, and microglia—under oxidative stress. Their work bridges innate immunity, redox biology, and metabolic regulation in tissue homeostasis and pathology.
Professor Tsuguyuki Saito's research lab specializes in the sustainable development and functionalization of cellulose-based nanomaterials, with a primary focus on the topochemical oxidation of cellulose using the TEMPO/NaClO system to produce highly crystalline, individualized cellulose nanofibrils. The lab investigates the structure-property relationships of these nanofibrils, including their mechanical strength, dispersion behavior, and surface chemistry, with applications in high-performance films, aerogels, and nanocomposites. A key research direction involves engineering cellulose nanostructures for advanced functional materials with tailored optical, mechanical, and thermal properties.
Professor Takashi Ohshima's research lab specializes in the development of innovative catalytic systems for sustainable and selective organic synthesis. The lab focuses on transition metal catalysis, particularly palladium- and platinum-catalyzed transformations, as well as the design of artificial metal clusters and chiral catalysts for enantioselective and chemoselective reactions. Key research directions include the catalytic asymmetric synthesis of complex natural products and pharmaceuticals, with an emphasis on atom-economical, environmentally benign methods such as direct amination and O-acylation using non-enzymatic catalysts. The lab also pioneers new reactivity patterns, such as asymmetric Heck reactions coupled with carbanion capture, to access structurally diverse and medicinally relevant scaffolds.
Professor Joon Hak Oh's research lab specializes in the design, synthesis, and application of advanced organic semiconductors for next-generation electronic devices. The lab focuses on developing high-performance n-channel organic field-effect transistors and phototransistors using tailored molecular structures such as naphthalene tetracarboxylic diimides (NDIs) and perylene diimides (PDIs), with an emphasis on structural control, charge transport optimization, and solution-processable fabrication. Key research directions include the creation of nano/microwires and chiral supramolecular architectures for flexible, wearable, and bioelectronic applications, with a strong focus on stability, mobility, and real-time sensing capabilities. The lab also explores the structure–property relationships in organic semiconductors to enable practical deployment in point-of-care diagnostics and sustainable electronics.
Professor Haksoo Ko's research lab focuses on the intersection of law, technology, and public policy, with a particular emphasis on data privacy, artificial intelligence governance, and the legal implications of machine learning in regulatory and economic contexts. The lab explores how emerging technologies—especially AI and big data—challenge traditional legal frameworks, particularly in areas such as algorithmic discrimination, corporate insolvency reform, and the enforcement of data protection laws. Drawing on comparative law and Asian legal systems, the lab investigates both forward-looking regulatory design and the practical limitations of judicial remedies in complex technological contexts. The research also examines the transformation of legal institutions, such as Korea’s Unified Bankruptcy Act, to adapt to modern economic and technological realities.
Professor Hyunjoo J. Lee's research lab specializes in the development of advanced micro- and nanoscale sensors for biomedical and environmental applications. The lab focuses on creating highly sensitive, miniaturized resonant sensors—particularly capacitive micromachined ultrasonic transducers (CMUTs)—for real-time detection of gases, vapors, and biomolecules at ultra-trace levels. Key research directions include the integration of mesoporous materials and biocompatible adhesives (e.g., calcium-modified silk fibroin) to enhance sensor performance and biointerfacing, as well as the design of implantable and wearable neuromodulation systems using focused ultrasound. The lab also emphasizes system-level integration, including low-power CMOS circuits and noise-reduction techniques, to enable practical deployment in consumer, defense, and clinical settings.
Professor Hye Hyun Yoo's research lab specializes in pharmaceutical and biomedical sciences, with a strong focus on drug metabolism, pharmacokinetics, and the role of gut microbiota in drug response. The lab investigates drug repurposing for infectious diseases such as COVID-19, explores the impact of host-microbe interactions on drug bioavailability, and examines the effects of natural compounds—particularly citrus flavonoids—on drug transporters like P-glycoprotein. Additionally, the lab develops advanced biomaterials, such as GelMA-silica composites, for tissue engineering and 3D bioprinting applications.