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 Chul-Su Yang's research lab focuses on innate immune signaling pathways and redox regulation in host defense against intracellular pathogens, particularly Mycobacterium tuberculosis. The lab investigates the roles of NADPH oxidase (NOX2), inflammasomes, reactive oxygen species (ROS), and key signaling molecules such as AMPK, ASK1, and Prx II in regulating inflammation, antimicrobial responses, and autophagy. A central theme is the intricate balance between pro-inflammatory and protective host responses, with translational aims to identify novel therapeutic targets for tuberculosis and other infectious diseases.
Professor Young-Rok Kim's research lab specializes in the development of advanced biomaterials and nanomaterials for biomedical and diagnostic applications. The lab focuses on designing smart drug delivery systems using biodegradable polymers such as polyhydroxyalkanoates and starch-based magnetic microparticles, with an emphasis on targeted and controlled release. A key research direction involves the creation of highly sensitive, paper-based biosensors and immunoassays using gold nanoparticles and surface-enhanced Raman scattering (SERS) for rapid, on-site detection of foodborne pathogens like *Escherichia coli* O157:H7. The lab also pioneers functionalized biomimetic membranes and nanoparticle-based platforms for diagnostics and therapeutic delivery.
Professor Andreas J. Heinrich's research lab specializes in quantum nanoscience and atomic-scale spintronics, focusing on the manipulation and characterization of individual spins in solid-state systems. The lab pioneers the use of low-temperature scanning tunneling microscopy (STM) to probe and control quantum states at the atomic level, with a strong emphasis on electron spin dynamics, quantum coherence, and magnetic anisotropy. Key research directions include quantum control of single atoms, spin relaxation and decoherence mechanisms, and the engineering of quantum phenomena in nanostructures such as atomically precise molecular cascades and magnetic adatoms on surfaces. The lab's work bridges fundamental quantum physics with applications in quantum information processing and nanoscale magnetometry.
Kimura教授の研究室は、腸内細菌と宿主の代謝の相互作用に注目し、特に短鎖脂肪酸受容体GPR43とGPR41がエネルギー恒常性や脂肪代謝に果たす役割を解明しています。妊娠中の母体の腸内細菌が胎児の代謝システムに与える影響や、腸内細菌由来の代謝物が神経・腸・膵島細胞の分化を制御するメカニズムについても発見を続けています。これらの研究は、肥満、インスリン抵抗性、糖尿病の予防や治療への応用が期待されています。
Uji-i教授の研究室は、単一分子分光法を核として、高精度な分子動態解析とナノスケールの光物性評価を実現する。特に、ポリマーの構造・動態や、金属ナノ構造における蛍光・ラマン増強効果を、生体分子や細胞内環境を損傷せずに可視化する技術開発が進んでいる。柔軟なSERS基板や、生体適合性プラットフォームを用いたリアルタイム・ライブセルイメージングが特徴で、医療・バイオセンシング分野への応用が期待されている。
リチャード・L・スミス教授の研究室は、極値統計学とその応用に焦点を当てており、特に極端な出来事の発生メカニズムやその推定手法の理論的・実用的側面を深く探求しています。特に、極値理論における漸近的性質、パレート分布に基づく尾部推定、および極値のクラスタリングを記述する「極値指数」の推定が中心的研究テーマです。また、環境データ(例:オゾン濃度)におけるトレンド分析や、反応条件に強い触媒系の開発など、実社会の問題への応用も積極的に行っています。
Professor Hyoungkwan Kim's research lab specializes in intelligent construction site monitoring and sustainable construction management, focusing on leveraging advanced computer vision, deep learning, and augmented reality to enhance project efficiency and safety. The lab develops innovative methodologies for real-time object detection, equipment utilization analysis, and automated progress tracking in construction projects. It also emphasizes environmental sustainability by estimating greenhouse gas emissions during pavement construction and promoting strategic stakeholder management in long-term megaconstruction projects. The lab's work bridges cutting-edge technology with practical construction challenges to support smarter, greener, and more data-driven construction processes.
佐倉義光教授の研究室では、機械的刺激によって分子配列が変化し、その結果として光物性が大きく変化する機能性有機・有機金属材料の設計を目指しています。特に、圧力や剪断力によって発光色が変化する「メカノクロミック発光」材料の開発が中心であり、可逆的な色変化や画像の書き換えが可能なスマート材料の創出をめざしています。また、分子シャトル型回転体やメカノフォアを組み込んだポリマーを用いた、力学的応力による発光制御技術の確立も進んでいます。
Takao Yasui教授の研究室は、ナノスケールの人工構造を用いたバイオセンシングと分析技術の開発を柱としています。特に、マイクロフルイディクスとナノワイヤーやナノピラーアレイを融合させたデバイスを用いて、尿由来のエクストラセルラーベスキュール(EVs)やがん由来のエクソソームを高感度で効率的に回収・分離する技術を開発しています。これにより、非侵襲的で早期がん診断に役立つ液体バイオプシー技術の実現を目指しています。
Professor Dongwook Kim's research lab specializes in computational biology and bioinformatics, with a focus on genomic analysis and evolutionary genomics in prokaryotes and fungi. The lab develops high-performance bioinformatics tools—such as EzAAI and the Universal Fungal Core Genes (UFCG) pipeline—for large-scale phylogenomic analysis, enabling accurate and efficient taxonomic classification. In parallel, the lab explores molecular mechanisms in cellular transport and post-transcriptional gene regulation, particularly involving miRNA and alternative polyadenylation. The lab also extends its expertise into intelligent transportation systems, designing adaptive control strategies for autonomous vehicles using advanced modeling and control theory.
Karthikeyan Sekar教授の研究室は、環境浄化と持続可能なエネルギー変換を両立するためのナノ材料開発を主眼としています。特に、チタンディオキサイドやグラフェン酸化物を基体とする光触媒や、銅・鉄系金属酸化物を用いた酸化触媒を用いた水中質汚染物質の分解に注力しています。太陽光を効率的に利用する可視光応答型触媒の設計や、バイオマスを原料とする水素生成技術の開発も進めています。
Professor Vladimir Šimić's research lab specializes in sustainable urban development, with a focus on climate change mitigation and intelligent transportation systems. The lab develops advanced decision-making models to support sustainable policy prioritization and public infrastructure financing, particularly in urban mobility and public transit. It integrates multi-criteria decision-making methods—such as MEREC and MARCOS—within fuzzy and uncertain environments to address real-world complexities in policy and financial planning. The lab emphasizes practical, data-driven solutions for municipalities aiming to enhance sustainability and resilience in urban systems.
坂井晋司教授の研究室は、生体適合性の高い高分子を基盤として、光・酵素・糖代謝反応を活用したスマートな水gelの創製を進めています。特に、創傷治癒や組織工学に応用可能な、体内条件下で即時かつ制御可能な凝膠化を実現する新規材料開発が柱です。また、生体適合性と生分解性を両立したバイオプリンティングやマイクロカプセル技術を用いた3次元的組織構築の研究も展開しています。
Professor Boseok Kang's research lab specializes in the development of advanced organic semiconductors and printed electronics, with a strong focus on materials design for high-performance organic field-effect transistors (OFETs). The lab explores innovative strategies such as molecular engineering of conjugated polymers, surface functionalization of reduced graphene oxide electrodes, and the integration of insulating units to enhance charge transport and device stability. A key emphasis is placed on sustainable processing techniques, including water-based dispersion of conjugated polymers and environmentally friendly printing methods, to enable practical and scalable applications in flexible and wearable electronics.
Professor Harris Hyun-soo Kim's research lab specializes in sociological and behavioral studies focusing on the impact of social structures, digital media, and socioeconomic vulnerability on mental health and social participation across diverse cultural and economic contexts. The lab investigates how individual well-being is shaped by national contexts, online media engagement, and structural inequalities, particularly among adolescents, older adults, and marginalized populations. Research spans comparative and cross-national studies, with a strong emphasis on longitudinal and survey-based data analysis in both developed and developing settings.
Professor So-Jung Park's research lab specializes in the design and application of functional nanomaterials, particularly DNA- and nanoparticle-based systems, for advanced sensing, biomedicine, and optoelectronic devices. The lab focuses on leveraging the programmable self-assembly of DNA-functionalized nanoparticles to create tunable plasmonic nanostructures and highly selective biosensors. A key research direction involves targeting viral RNA structures—such as the SARS-CoV pseudoknot—to discover small-molecule therapeutics through computational and experimental screening. The lab also investigates charge transfer and energy transfer phenomena at the single-molecule level in organic electronic devices.
Professor Won Joon Yun's research lab specializes in next-generation intelligent systems, focusing on the integration of deep reinforcement learning, quantum machine learning, and unmanned aerial vehicle (UAV) technologies. The lab explores scalable and reliable multi-agent systems for smart city applications, including urban air mobility (UAM), surveillance, and ultra-reliable communication using UAVs. A key research direction involves advancing quantum-enhanced reinforcement learning, particularly quantum multi-agent reinforcement learning (QMARL) and quantum meta-learning, to address challenges in noisy intermediate-scale quantum (NISQ) environments. The lab also investigates real-time, distributed control frameworks for autonomous systems under dynamic and uncertain conditions.
Professor HangJin Jo's research lab specializes in thermal-fluid physics and surface engineering, focusing on nucleate boiling and condensation heat transfer on structured and heterogeneous surfaces. The lab investigates how micro/nano-scale surface architectures and wettability patterns—such as biphilic surfaces and self-assembled monolayers—enhance heat transfer performance and critical heat flux. Key research directions include optimizing surface structures for improved thermal-hydraulic efficiency in advanced energy systems, such as sodium-cooled fast reactors, and developing scalable fabrication methods for industrial applications.
Professor Jeong Gil Seo's research lab specializes in the development of advanced electrocatalysts and sustainable materials for clean energy applications. The lab focuses on designing nanostructured materials—such as NiFeCe₂, CoV₂O₆, and Cu₂O/CuO heterostructures—using low-temperature, environmentally friendly synthesis methods like electrodeposition and deep eutectic solvent (DES)-assisted processes. Key research directions include electrochemical CO₂ reduction to value-added fuels, methanol oxidation for fuel cells, and the catalytic conversion of biomass-derived compounds into high-energy fuel precursors. The lab integrates experimental studies with in situ characterization and computational simulations to understand reaction mechanisms and optimize material performance.
Professor Oran Kwon's research lab focuses on the role of dietary bioactive compounds in preventing chronic diseases, with a strong emphasis on metabolic and musculoskeletal health. The lab investigates how nutrients and phytochemicals—such as flavonoids, carotenoids, and pinitol—affect oxidative stress, glucose transport, liver fat accumulation, and bone mineral density. Key research directions include the molecular mechanisms of intestinal nutrient transporters (e.g., GLUT2), the protective effects of dietary antioxidants in non-alcoholic fatty liver disease, and the impact of carotenoid intake on age-related bone loss. The lab integrates clinical trials, biochemical assays, and population-based cohort studies to translate nutritional science into preventive health strategies.