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 Hye Jung Youn's research lab specializes in the development and characterization of cellulose-based nanomaterials, with a focus on cellulose nanofibrils (CNFs) for advanced functional applications. The lab investigates the structural control, surface modification, and rheological behavior of CNFs to enhance their performance in transparent composites, hydrogels, and porous foams. Key research directions include optimizing CNF morphology through chemical treatments like carboxymethylation and quaternization, and exploring their roles in sustainable materials for packaging, biomedical, and environmental applications.
Professor Gunhee Lee's research lab specializes in the development of advanced soft electronic materials and wearable bioelectronics, focusing on liquid metal-based composites, conductive fibers, and skin-integrated devices. The lab pioneers innovative fabrication techniques—such as meniscus-guided printing, shearing-based deposition, and heterostructure fiber printing—to achieve high-conductivity, mechanically durable, and stretchable electronics directly on flexible and soft substrates. Key research directions include intrinsically conductive e-tattoos, deformable liquid metal particles for wearable sensors, and passive resonators for wireless health monitoring.
Professor Yukwon Jeon's research lab specializes in the design and development of advanced functional materials for sustainable energy and environmental applications. Key research directions include the fabrication of high-performance catalysts and membranes for fuel cells and hydrogen production, with a focus on improving efficiency, durability, and cost-effectiveness. The lab also explores innovative nanomaterials—such as perovskite-based hollow fibers, zeolitic imidazolate frameworks, and hydrotalcite nanohybrids—for clean energy conversion, catalytic reforming of heavy hydrocarbons, and biomedical applications. A strong emphasis is placed on structural engineering at the micro- and nano-scale to optimize material performance in real-world conditions.
Professor Seungmin Bang's research lab specializes in advanced endoscopic interventions, with a primary focus on biliary and pancreatic diseases. The lab investigates innovative techniques such as endoscopic papillary balloon dilation (EBD) and endoscopic ultrasound-guided fine-needle biopsy (EUS-FNB), aiming to improve diagnostic accuracy and procedural safety. Key research directions include optimizing balloon size for stone extraction, evaluating needle gauge effects in tissue sampling, and understanding anatomical variations of the pancreatic ductal system to reduce complications like post-ERCP pancreatitis.
Professor Ji-Won Son's research lab specializes in advanced materials and thin-film technologies for sustainable energy conversion, with a primary focus on solid oxide and protonic ceramic fuel cells. The lab develops nanostructured electrolytes, anodes, and cathodes using pulsed laser deposition and template-assisted fabrication to enhance ionic conductivity, reduce operating temperatures, and improve device efficiency. Key research directions include thin-film electrolyte integration, ammonia-fueled direct operation, and the optimization of cobalt- and nickel-based electrocatalysts for low-temperature fuel cell applications.
Professor Joon Young Choi's research lab specializes in molecular imaging and nuclear medicine, with a focus on optimizing the diagnostic and prognostic utility of ¹⁸F-FDG PET/CT in oncology and neurology. The lab investigates the role of metabolic imaging in improving cancer staging, predicting treatment response, and guiding personalized management in diseases such as esophageal cancer, breast cancer, and focal cortical dysplasia. A key research direction involves refining imaging criteria—such as SUV, tumor length, and lymph node involvement—to enhance accuracy in distinguishing benign from malignant lesions and to inform revised staging systems.
Professor Sebyung Kang's research lab specializes in the design and engineering of protein-based nanomaterials for biomedical applications, with a focus on viral and ferritin-like protein cages as versatile nanoplatforms. The lab develops advanced biosensing technologies using surface plasmon resonance and nanoscale imaging, while also pioneering innovative strategies for targeted drug delivery and multiplexed cellular imaging through site-specific protein modifications. Key research directions include the construction of multifunctional nanocages, the use of bioorthogonal ligation systems like SpyTag/SpyCatcher, and the application of chemical cross-linking coupled with mass spectrometry to probe protein structures and interactions. The lab integrates structural biology, bioconjugate chemistry, and nanobiotechnology to create smart, modular nanosystems for diagnostics and therapeutics.
Professor Sang-Soo Baek's research lab specializes in environmental data science and advanced materials for sustainable water and energy systems. The lab focuses on developing deep learning and machine learning models to predict water quality, algal blooms, and dissolved organic matter dynamics in river systems, integrating hydrological, meteorological, and water quality data. Concurrently, the lab designs and optimizes novel metal–organic frameworks (MOFs) and carbon-based nanocomposites for high-performance energy storage applications, particularly supercapacitors. The interdisciplinary approach bridges environmental monitoring with materials innovation to address global challenges in water security and clean energy.
岸土敦史教授の研究室では、光応答性分子や液晶を用いた機能性材料の設計を柱とし、特に光刺激によって分子配向や相転移を制御する新規なプロセス技術の開発に注力しています。反射モードを用いた高速な光学スイッチング測定や、染料不使用のスキャン波光重合による大面積2次元分子配向制御技術の確立が特徴です。また、ハロゲン結合を活用した非分子性成分間の超分子自己集合とその光応答性の解明も進んでいます。
東山秀利教授の研究室は、有機合成化学を軸に、フルーテンやアルキン誘導体を用いた新規反応の開発や、天然物の全合成を主眼としています。特に、金属触媒を用いたC–H活性化や酸化的なシクラリゼーション反応により、複雑な骨格を効率的に構築する手法の確立が目立ちます。また、光誘導反応や酸素化反応を応用した新規合成経路の開拓も進んでいます。
山本義彦教授の研究室は、遷移金属触媒を用いたアルキンの新規付加・環化反応に注力しており、特にルトジュムや銀、銅を用いた高効率で選択的なC–H官能化や[2+2+2]環化反応の開発が特徴です。これにより、多機能性を有する芳香族骨格やヘテロシクロランを効率的に合成することが可能になっています。近年では、天然物合成や医薬品中間体の合成応用にも展開されており、有機合成の分野で高い評価を受けています。
三浦佳子教授の研究室では、糖鎖を有する高分子(グリコポリマー)を設計・合成し、その生体機能を活用したナノバイオテクノロジーの基盤を構築しています。特に、糖とタンパク質の多価相互作用を模倣するグリコポリマーの開発を通じて、がん細胞やウイルスの認識、アミロイド線維の抑制、肝細胞接着制御などの医療的応用をめざしています。また、酵素を用いた選択的エステル化反応を応用したグリココンジュゲート高分子の合成法も確立しており、生分解性と生体適合性を両立する新規材料の創出を目指しています。
Hiroki Ago教授の研究室では、カーボンナノチューブやグラフェンを含む2次元材料の合成・物性制御に注力しており、特にカーボンナノチューブと有機半導体の複合材料を用いた高効率な太陽電池の開発が進められています。また、エピタキシャル成長による均一なグラフェン膜の作製や、遷移金属ジ chalcogenides のドーピング制御による電界効果トランジスタへの応用も行われており、次世代の柔軟・薄型エレクトロニクスの基盤技術の確立を目指しています。
Professor Chris Hyunchul Jo's research lab specializes in regenerative medicine and orthopedic tissue repair, with a primary focus on mesenchymal stem cells (MSCs) and platelet-rich plasma (PRP) for treating degenerative joint and tendon diseases. The lab investigates cell-based therapies, particularly autologous adipose-derived MSCs, for knee osteoarthritis through clinical trials, emphasizing safe and effective intra-articular delivery. Another key direction involves optimizing PRP application in arthroscopic rotator cuff repair to enhance structural healing, especially in large to massive tears, while evaluating both clinical and anatomical outcomes. The lab aims to bridge translational research with clinical practice to improve long-term joint and tendon function.
Professor Mona Choi's research lab focuses on improving health outcomes in chronic disease management and aging populations through innovative digital health interventions and public health nursing practices. The lab specializes in mobile health (mHealth) technologies, ecological momentary assessment (EMA) using mobile devices, and the integration of environmental health assessments into community nursing. A key emphasis is on enhancing self-management, quality of life, and social support for older adults and patients with chronic conditions such as peripheral artery disease.
Professor Hyun S. Ahn's research lab specializes in the design, synthesis, and in-depth electrochemical characterization of nanostructured materials for sustainable energy conversion and storage. The lab focuses on understanding the surface-specific reactivity and electronic structure of transition metal-based electrocatalysts—particularly nickel, iron, cobalt, and molybdenum compounds—for key reactions such as the oxygen evolution reaction (OER), hydrogen evolution reaction (HER), and water oxidation. Using advanced in situ and surface-selective techniques like surface interrogation scanning electrochemical microscopy (SI-SECM) and time-resolved redox titrations, the lab probes active sites and reaction mechanisms at the molecular level in liquid environments. Their work bridges fundamental electrocatalysis with practical applications in renewable energy technologies like solar fuels and green hydrogen production.
Professor Sang Eun Lee's research lab focuses on skin biology and disease mechanisms, with a strong emphasis on epidermal barrier function, keratinocyte differentiation, and the role of proteases and their receptors (such as PAR-2) in inflammatory skin disorders like atopic dermatitis and acne. The lab also investigates natural compounds and stimuli-responsive nanotherapeutics for targeted drug delivery, particularly in inflammatory conditions, leveraging reactive oxygen species and pH as dual triggers for precise therapeutic release. Their work bridges molecular dermatology with translational nanomedicine.
Professor Jun-Hyuk Lee's research lab specializes in epidemiological and translational studies focusing on the role of oxidative stress, insulin resistance, and lifestyle factors in the development of chronic diseases. The lab investigates biomarkers such as the Oxidative Balance Score (OBS) and insulin resistance indices (e.g., HOMA-IR, METS-IR) to understand their predictive value for hypertension, type 2 diabetes, chronic kidney disease, NAFLD, and cardiovascular diseases. A key research direction involves evaluating the preventive potential of diet and lifestyle interventions, including the impact of electroacupuncture on inflammatory pathways. The lab integrates population-based cohort data with preclinical models to bridge molecular mechanisms with public health outcomes.
Professor Sangmin Jeon's research lab specializes in the design and fabrication of advanced functional materials for energy, environmental, and biomedical applications. The lab focuses on laser-assisted synthesis of carbon-based nanomaterials, particularly conductive graphitic carbon on cellulose and nanocellulose substrates, for sustainable solar energy conversion and water purification. It also explores multifunctional nanofibrous membranes for air filtration and real-time respiratory monitoring, as well as magnetic nanoclusters for targeted cancer therapy via magnetic hyperthermia. The integration of materials science, nanofabrication, and device engineering defines the lab’s interdisciplinary approach.
Professor Soon-Wook Kwon's research lab specializes in the integration of advanced digital technologies and agricultural biotechnology to enhance construction efficiency and rice crop improvement. The lab focuses on applying Cyber-Physical Systems (CPS), Digital Twins, and Augmented Reality (AR) for smart construction and real-time monitoring of construction processes, while also advancing rice breeding through molecular genetics, genome-wide association studies, and functional genomics. Key research directions include the development of 3D modeling techniques using point cloud data, the application of AR in facility management, and the identification of genes regulating root architecture and starch biosynthesis in rice. The lab bridges digital innovation in civil engineering with biotechnological solutions in agriculture to support sustainable development.