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 Il Sohn's research lab specializes in the thermophysical properties and structural evolution of complex oxide slags and molten glasses, particularly in ironmaking and steelmaking processes. The lab focuses on understanding the viscosity, structure, and phase behavior of multi-component calcium-silicate-based slags, with an emphasis on how oxide additions (e.g., BaO, CaF₂, B₂O₃, alkali oxides) influence slag polymerization and flow characteristics. Advanced spectroscopic techniques (Raman, FTIR, XPS, NMR) and rheological measurements are combined with thermodynamic modeling to correlate molecular-level structure with macroscopic properties.
Professor Hui Joon Park's research lab specializes in next-generation optoelectronic devices, with a primary focus on perovskite and polymer solar cells, photonic color filters, and high-efficiency tandem solar cells. The lab develops advanced materials and scalable fabrication techniques—such as nanostructured photonic filters and hole-transporting materials with tailored energy levels—to enhance power conversion efficiency, stability, and processability. Key research directions include interface engineering, morphology control in bulk heterojunction systems, and the integration of photovoltaics with color display technologies for energy-efficient electronics.
Professor Atsushi Satsuma's research lab specializes in heterogeneous catalysis, with a focus on designing and understanding advanced catalysts for environmental remediation and sustainable chemical processes. Key research directions include the development of Pd- and Ag-based catalysts for methane combustion and NOx reduction (e.g., HC-SCR and C3H8-SCR), with a strong emphasis on the role of metal particle size, support properties, and surface chemistry. The lab employs advanced characterization techniques such as XAFS, in-situ FT-IR, and aberration-corrected electron microscopy to elucidate structure-activity relationships at the atomic level. They also explore solid acid catalysts for biomass conversion, particularly using clay- and heteropolyacid-based materials for green transformations.
Professor Kohjiro Ueki's research lab focuses on the molecular mechanisms underlying insulin resistance, metabolic syndrome, and inflammation-related diseases. The lab investigates the roles of suppressors of cytokine signaling (SOCS) proteins, particularly SOCS-1 and SOCS-3, in mediating insulin resistance and hepatic lipid metabolism. Using in vivo and in vitro models, including primary macrophage differentiation and metabolic phenotyping, the lab explores how immune cells and signaling pathways such as PI3K/Akt contribute to metabolic homeostasis and disease progression. Their work bridges immunology, metabolism, and cell signaling to identify novel therapeutic targets for type 2 diabetes and obesity-related disorders.
Professor Martin M. Matzuk's research lab focuses on the molecular and genetic regulation of female reproduction, with a central emphasis on the role of growth differentiation factors and other TGF-beta superfamily members in ovarian function and oocyte development. The lab investigates oocyte-somatic cell communication, identifying key secreted factors that control folliculogenesis, cumulus expansion, and oocyte maturation. Using knockout mouse models and comparative genomics, the lab has made seminal discoveries on genes such as GDF-9 and BMP15, which are critical for fertility and early follicular development. Their work bridges reproductive biology, developmental genetics, and endocrinology to understand conserved mechanisms of gametogenesis and infertility.
Professor Saneyuki Ohno's research lab specializes in the development and fundamental understanding of solid-state electrolytes and all-solid-state batteries, with a focus on materials design for fast ion conduction and enhanced electrochemical stability. The lab investigates complex ion conductors—particularly lithium thiophosphates and argyrodite-type materials—exploring how structural modifications and doping strategies influence ionic conductivity and interfacial behavior. A key research direction involves addressing failure mechanisms in solid-state batteries, such as chemomechanical degradation and irreversible phase formation in lithium–sulfur systems, through advanced composite cathode engineering. The lab also conducts interlaboratory studies to ensure reliability and reproducibility of ionic conductivity measurements in emerging solid electrolytes.
Professor Yong-Hwan Lee's research lab focuses on understanding the molecular mechanisms underlying fungal pathogenesis, particularly in *Magnaporthe oryzae* (formerly *M. grisea*), the causal agent of rice blast. The lab investigates fungal development, including appressorium formation and morphogenesis, and identifies key virulence factors such as transcription factors, secreted effectors, and pathogenicity genes that enable pathogens to overcome host immunity. A central theme is the characterization of effector proteins—especially nuclear effectors—that manipulate host gene expression to promote infection. The lab also explores fungal-plant interactions through functional genomics, reverse genetics, and host-induced gene silencing approaches.
Professor Rezzy Eko Caraka's research lab specializes in environmental and spatial data science, focusing on air quality monitoring, climate change impacts, and disaster vulnerability assessment. The lab integrates advanced statistical and machine learning methods—such as LSTM neural networks and spatial statistics— to analyze environmental time series and geospatial data. Research directions include pandemic-related air pollution dynamics, weather forecasting, and social vulnerability modeling in disaster-prone regions like West Papua. The lab also emphasizes practical applications through open-source tools, particularly using R software for spatial and spatio-temporal analysis.
Professor Mamoru Fujitsuka's research lab specializes in the design and development of advanced semiconductor materials for solar energy conversion, with a focus on photocatalytic hydrogen evolution and charge dynamics in nanostructured systems. The lab investigates photoinduced charge separation and recombination processes in organic-inorganic hybrid heterostructures and 2D materials such as black phosphorus and ZnIn₂S₄, aiming to enhance light absorption from UV to near-infrared and improve quantum efficiency. Key research directions include the engineering of heterojunctions with noble metal co-catalysts (e.g., Pt) and the modulation of electronic structures through doping (e.g., Ni) to promote catalytic activity and electron lifetime. The lab's work bridges fundamental photophysics with practical applications in renewable energy technologies.
Professor Yong-Jin Yoon's research lab specializes in advanced materials and microfluidic technologies with a focus on biomedical applications and environmental sensing. The lab develops innovative 3D-printed microfluidic devices and tissue engineering scaffolds using biocompatible polymers like polycaprolactone (PCL) and PCL-CNT composites, emphasizing structural precision, mechanical performance, and biological compatibility. Additionally, the lab investigates the hygroscopic behavior of airborne particulate matter and its impact on atmospheric visibility, employing statistical modeling and sensor technology. A significant portion of the research also involves the design of efficient, catalyst-free acyl transfer agents for synthetic chemistry, particularly in the formation of carbamates and ureas with broad functional group tolerance.
Professor So Hee Kwon's research lab focuses on epigenetic regulation in cancer and disease, with a central emphasis on chromatin-modifying proteins such as HP1 and KDM4 histone demethylases. The lab investigates how these proteins regulate gene expression, chromatin dynamics, and cell fate decisions in both heterochromatin and euchromatin contexts. Key research directions include the molecular mechanisms of HP1 in transcriptional regulation and DNA damage response, as well as the development of selective inhibitors for KDM4 enzymes as potential therapeutic agents. The lab integrates biochemical, cell biological, and proteomic approaches to uncover novel epigenetic targets in cancer and neurodevelopmental disorders.
Professor Seok Hoon Jeong's research lab specializes in antimicrobial resistance (AMR) mechanisms, particularly focusing on the molecular epidemiology and genetic dissemination of carbapenem-resistant and extended-spectrum beta-lactamase (ESBL)-producing Gram-negative pathogens such as *Pseudomonas aeruginosa*, *Klebsiella pneumoniae*, *Escherichia coli*, and *Acinetobacter baumannii*. The lab investigates the role of mobile genetic elements—including integrons, plasmids, and transposons—in the horizontal spread of resistance genes like *bla*<sub>NDM</sub>, *bla*<sub>VIM-2</sub>, *bla*<sub>OXA-23</sub>, and *bla*<sub>CTX-M-14</sub>. Utilizing molecular diagnostics, MALDI-TOF MS, and advanced genotyping techniques, the lab contributes to understanding resistance mechanisms and improving clinical diagnostics for multidrug-resistant infections in Korea and beyond.
Professor Wan Ki Bae's research lab specializes in the design, synthesis, and application of colloidal quantum dots for optoelectronic devices. The lab focuses on developing high-performance, solution-processable quantum dot materials with tailored optoelectronic properties, emphasizing enhanced photoluminescence quantum yield, stability, and device efficiency. Key research directions include core/shell heterostructures with composition gradients, interfacial alloying engineering, and surface passivation strategies to suppress non-radiative recombination. The lab applies these materials to practical optoelectronic devices such as light-emitting diodes (QLEDs), photodetectors, and solar cells, with a strong emphasis on structure-property relationships and scalable fabrication methods.
Takanori Suzuki 교수의 연구실은 주로 π-전자 구조를 기반으로 한 전기화학적 색소 및 유기 전기화학 물질을 중심으로, 생체 분자인 황화수소(H₂S)를 감지할 수 있는 스위치형 생물소재를 개발하고 있습니다. 특히, 전자 이동과 구조 변화를 연계한 색소 전환 메커니즘을 활용해, 실시간·비침습적 생체 내 감지가 가능한 나노입자 기반 프로브를 설계합니다. 또한 고체상에서의 전자 이동, C–C 결합의 가역적 열열 반응, 그리고 자성 및 색소 변화를 동시에 유도하는 과잉 에너지 시스템의 설계에도 주력하고 있습니다.
Professor Eue-Keun Choi's research lab specializes in cardiovascular epidemiology and digital health, focusing on real-world evidence from national health claims databases and wearable device data. The lab investigates atrial fibrillation (AF) mechanisms, risk factors, and outcomes, with particular emphasis on arrhythmia triggers like intra-atrial conduction abnormalities (ICNA), the impact of comorbidities such as cancer, and the role of lifestyle factors like exercise. Advanced analytics, including deep learning for photoplethysmographic (PPG) signal interpretation, are employed to improve early AF detection, especially in challenging cases with premature atrial complexes.
Professor Hayato Tsurugi's research lab specializes in the development of transition metal and f-element-based homogeneous catalysts for sustainable organic synthesis. The lab focuses on leveraging the unique redox properties of high-valent metals—particularly cerium(IV), vanadium, and tantalum—through tailored ligand environments to enable novel C–H and C–C bond functionalization reactions under mild conditions. A central theme is the use of photoresponsive and redox-active metal complexes for catalytic transformations, including decarboxylative oxygenation, [2+2+1] cycloadditions, and C–H activation, often using earth-abundant metals to replace precious metals. The lab also explores the emerging potential of magnesium and other main-group metals in homogeneous catalysis beyond traditional Lewis acid roles.
Professor Jung-Hoon Kim's research lab specializes in intelligent robotics and biomechatronics, focusing on the development of advanced assistive devices and humanoid robots for human-centered applications. Key research directions include wearable robotic systems such as exoskeletons and prostheses, with an emphasis on human-robot interaction, real-time control strategies, and energy-efficient actuation using smart materials like magnetorheological fluids. The lab also investigates electromagnetic modeling for biomedical applications and sustainable construction technologies through 3D concrete printing, reflecting a multidisciplinary approach combining robotics, biomechanics, and smart materials.
히데코 코시마 교수의 연구실은 광기계 작동을 보이는 분자 결정체를 중심으로, 빛에 의해 유도되는 가역적이고 반복 가능한 기계적 변형을 연구합니다. 특히 광변색성 분자 결정에서 발생하는 복합적인 분자 구조 변화와 거시적 기계운동 간의 상관관계를 X선 결정학적 분석을 통해 규명하고 있으며, 이는 약한 분자 간 힘에 의한 거시적 거동의 이해를 심화시킵니다. 연구는 광학적 자극에 반응하는 새로운 유형의 마이크로 액추에이터 및 스마트 재료 개발로 이어지고 있습니다.
Professor Yong Soo Cho's research lab specializes in advanced functional ceramics and thin films, with a strong focus on materials for energy conversion and electronic applications. Key research directions include the development of perovskite-based solar cells, piezoelectric thin films for energy harvesting and sensing, and low-temperature co-fired ceramics (LTCC) with tailored dielectric and mechanical properties. The lab also investigates the mechanical flexibility and strain engineering of halide perovskites, aiming to enhance their performance in flexible and wearable electronics.
Professor Ick Chan Kwon's research lab specializes in nanomedicine and nanobiotechnology, focusing on the design and application of multifunctional nanoparticles for cancer diagnosis and therapy. The lab develops advanced nanoscale systems that enable tumor-targeted delivery of imaging agents and therapeutic drugs, supporting precision medicine and theranostics. Key research directions include multimodal imaging, personalized cancer treatment, and the integration of diagnostic and therapeutic functions within a single nanoparticle platform. The lab leverages nanotechnology and molecular imaging to enhance early cancer detection and improve treatment efficacy.