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 Gi-Ra Yi's research lab specializes in the design, synthesis, and self-assembly of functional colloidal particles and their hierarchical architectures. The lab focuses on creating anisotropic and patchy colloids, shape-controlled microparticles, and responsive block copolymer-based nanostructures to enable bottom-up fabrication of advanced materials. Key research directions include colloidal self-assembly driven by geometry and interfacial engineering, scalable production of conductive nanowire networks, and the development of novel functional materials for optoelectronics and catalysis. The lab integrates synthetic chemistry, soft matter physics, and materials engineering to explore new structural motifs and functional properties at the micro- and nanoscale.
Professor Hyunchul Oh's research lab specializes in the development of advanced porous materials for sustainable energy and separation technologies. The lab focuses on designing highly selective nanoporous sorbents—particularly metal-organic frameworks and activated carbons—for applications in hydrogen isotope separation, gas storage (H₂, CH₄, CO₂), and carbon capture. Key research directions include kinetic-quantum sieving in flexible porous materials, isotope-responsive adsorption behavior, and the utilization of renewable and biomaterial-based precursors such as spider silk for high-surface-area carbon materials. The lab aims to replace energy-intensive industrial processes with efficient, low-cost adsorption-based technologies.
Taisuke Tomita教授の研究室は、アルツハイマー病の発症機構、特にアミロイドベータ(Aβ)の産生メカニズムに焦点を当てた膜貫通プロテアーゼ「γセクレターゼ」の構造・機能解明を主な研究テーマとしています。Presenilinを核とするγセクレターゼの触媒部位や膜内構造の解明を通じて、病原因因の分子機構を解き明かし、Aβ42の異常産生を標的にした治療戦略の開発にも貢献しています。また、非ステロイド性抗炎症薬(NSAIDs)がγセクレターゼを直接標的にする可能性についても、分子機構の解明を進めています。
Wen Yin教授の研究室は、素粒子物理学と宇宙論の交差点に位置し、特に電弱スケーリングと宇宙初期状態における新物理の解明を主眼としています。muonの磁気モーメントの異常な値の解明や、スピン統計の破れを伴わない超対称性の構築、さらにはALP(仮想スカラーポータル)ドメインウォールによるCMBの偏光歪みの研究を通じて、宇宙の初期状態と暗黒エネルギーの性質を解明することを目指しています。また、高エネルギー物理学における新しい加速器実験の可能性や、宇宙線ニュートリノがダークセクターにエネルギーを伝えるメカニズムの解明にも貢献しています。
Shu-Ping Hui教授の研究室では、リン脂質代謝とその異常が関与する疾患のメカニズム解明を主眼としています。特に、リソホスファチジルエタノールアミン(lysoPE)、プラスマログェン、スフィンゴシルホスファート(S1P)といった生物学的活性を有するリン脂質の代謝制御機構や、酸化ストレスに伴う脂質ドロイプの異常が疾患発症に与える影響を、質量分析法を用いた高精度な脂質プロファイル解析によって解明しています。慢性腎疾患における脂質ドロイプの質的異常や、治療用中鎖脂肪酸のモニタリング技術の開発にも取り組んでいます。
Professor Suyeon Cho's research lab specializes in the synthesis, characterization, and application of two-dimensional transition metal dichalcogenides (TMDs), with a focus on phase engineering, defect control, and heterophase boundary design to enhance catalytic and electronic properties. The lab investigates fundamental quantum phenomena such as charge density waves and 2D magnetism in TMDs, while also developing advanced electrocatalysts—particularly for the hydrogen evolution reaction (HER)—by manipulating atomic-scale structures like anion vacancies and polymorphic phases. Their work bridges materials synthesis, nanoscale characterization, and device integration, enabling novel functionalities in energy conversion and 2D electronics.
Professor Junga Lee's research lab specializes in health and physical activity interventions, with a focus on leveraging technology and epidemiological research to improve health outcomes across diverse populations. The lab investigates the role of physical activity in preventing chronic diseases such as dementia, colorectal cancer, and prostate cancer, while also exploring the integration of artificial intelligence in physical education and health assessment tools. A key emphasis is on developing and validating culturally adapted physical activity questionnaires, such as the K-GPAQ, to enhance measurement accuracy in Korean and other populations. The lab also examines the psychological and physiological benefits of exercise in cancer survivors, aiming to optimize rehabilitation and quality of life during treatment.
Akio Kihara教授の研究室は、膜タンパク質とリン脂質代謝の分子機構に焦点を当てた細胞生物学的研究を推進しています。特に、オートファジーとタンパク質輸送に関与するVps34キナーゼ複合体の構成と機能、ならびに長鎖脂肪酸の代謝とそのリン脂質への組み込みが細胞内シグナル伝達に与える影響を解明しています。また、スフィンゴリピドスの代謝とそのシグナル伝達機能、ならびに膜タンパク質の品質制御機構についても深く研究しています。
Professor Eun Soo Park's research lab specializes in the design, synthesis, and characterization of advanced metallic materials, with a focus on high-entropy alloys, bulk metallic glasses, and complex concentrated alloys. The lab investigates the atomic-scale origins of mechanical properties—particularly strength, ductility, and glass-forming ability—by combining advanced experimental techniques such as X-ray absorption spectroscopy with first-principles theoretical calculations. Key research directions include understanding local lattice distortions, phase stability, and the role of electronic structure and atomic size mismatch in determining material performance under extreme conditions. The lab also explores the development of refractory high-entropy superalloys and bulk metallic glasses with enhanced mechanical properties for high-temperature and structural applications.
Professor Chan Yeong Heo's research lab specializes in biomaterials and tissue engineering, focusing on the development of biocompatible and bioactive materials for regenerative medicine and clinical applications. Key research directions include the design of bioabsorbable implants for orthopedic and maxillofacial reconstruction, innovative polymeric fillers for soft tissue augmentation (e.g., breast reconstruction), and advanced skin rejuvenation technologies using tailored polymers and growth factors. The lab also investigates surface engineering strategies—such as photopolymerization of functional polymers on implant surfaces—to modulate immune responses and improve implant integration.
Professor Woo-Hee Kim's research lab specializes in advanced thin film deposition techniques, particularly atomic layer deposition (ALD) and its applications in nanoelectronics and 2D materials. The lab focuses on developing area-selective ALD (AS-ALD) for precise, bottom-up nanofabrication, enabling selective growth on complex 3D nanostructures and patterned substrates. Key research directions include the design of novel ALD precursors, surface chemistry control for selective nucleation, and the integration of 2D transition metal dichalcogenides (TMDs) into self-powered, high-performance gas sensors. The lab also explores functional coatings for semiconductor devices, including conformal metal films and hydrophobic interfacial layers for advanced patterning.
Professor Seung Soo Oh's research lab specializes in the development of advanced nucleic acid-based biosensors and targeted delivery systems, with a focus on aptamer technology and microfluidic platforms. The lab pioneers innovative strategies for generating high-affinity aptamers and self-reporting systems that enable label-free, fluorescence-based detection of biomolecules with high sensitivity and specificity. By integrating principles from synthetic biology, nanotechnology, and microfluidics, the lab designs smart molecular tools for diagnostics and therapeutics, including aptamer-polymer hybrids for controlled drug delivery. Their work emphasizes rapid, efficient, and reproducible selection methods, such as VDC-MSELEX and microfluidic phage display, to accelerate the discovery of functional biomolecules.
Professor Joo Hyun Park's research lab specializes in the thermodynamic and structural characterization of non-metallic inclusions and slags in steelmaking processes, with a focus on improving the quality and performance of advanced steels. The lab investigates the formation mechanisms, crystallization behavior, and compositional control of spinel (MgO·Al₂O₃) and other oxide inclusions, as well as the structural evolution of silicate and aluminate slags using advanced spectroscopic techniques such as FT-IR and micro-Raman spectroscopy. Their work bridges fundamental materials science with industrial applications, particularly in stainless steel and high-performance steel production.
Nakamura教授の研究室では、ゲルマニウムナノクリスタルやシリコン系ナノ構造を用いた半導体ナノ材料の創製と物性評価に注力しています。特に、量子-confainment効果が顕著に現れるGeおよびGeSn量子ドットのエピタキシャル成長と、その光学的・電気的特性の制御を目的としています。また、熱電変換効率を向上させるためのナノ構造設計や、高効率なスキャニングトンネル顕微鏡用極細チップの開発も進めています。
阿部史善教授の研究室では、Toll様リセプター(TLR)を介するインナート免疫応答の分子機構に焦点を当て、特にTRIFを介するシグナル伝達経路とIFN-β産生の制御機構を解明しています。MyD88非依存経路の解明を通じて、ウイルスや細菌に対する初期防御反応のしくみを分子レベルで解明しています。また、炎症性サイトコイントンの制御機構や、自己免疫疾患・慢性炎症の発症メカニズムの解明にも貢献しています。
Sano教授の研究室は、水質汚染と微生物のリスク管理に焦点を当てた環境・公衆衛生分野の研究を推進しています。特に、廃水中のウイルスモニタリングや水再生・再利用における微生物的安全性の確保を目的とした、ウイルスの不活化評価や環境中での動態解析を主な研究テーマとしています。また、WBE(廃水由来疫学)を活用した感染症の早期警戒システム構築や、ナノスケールのウイルス粒子に対する酸化的損傷評価法の開発も進めています。
Professor Dong Young Lee's research lab specializes in aging-related brain disorders, with a focus on neurodegenerative diseases such as Alzheimer’s disease and vascular dementia. The lab investigates the neuroimaging and neurocognitive correlates of brain atrophy, white matter integrity, and metabolic dysfunction across the cognitive impairment spectrum. Using advanced MRI and PET imaging techniques, the lab explores regional patterns of brain atrophy, hypometabolism, and structural connectivity disruptions, particularly in aging and dementia populations. The research also emphasizes cross-cultural and education-sensitive assessment tools for geriatric cognitive evaluation.
Professor Mee Kum Kim's research lab focuses on the intersection of ocular immunology, regenerative medicine, and the gut-immune axis in autoimmune and inflammatory eye diseases. The lab investigates the therapeutic potential of mesenchymal stem cells and their secretome in corneal injury and dry eye disease, while also exploring how gut microbiota dysbiosis contributes to systemic autoimmunity, particularly in Sjögren’s syndrome. Recent work emphasizes the role of microbial modulation in improving clinical outcomes through immune regulation, especially via antigen-presenting pathways. The lab also explores innovative approaches in corneal regeneration, including xenotransplantation and bioengineered corneas.
Professor Seung Hyun's research lab focuses on human-centered smart environments and sustainable building design, integrating technology and well-being. The lab investigates user perception and emotional responses in immersive virtual environments, smart home systems for elderly care, and the psychological impacts of indoor environmental factors such as color and vegetation density. Key research directions include optimizing building performance through early-stage energy system design, enhancing user adoption of health monitoring technologies, and exploring the restorative effects of nature in indoor spaces. The lab combines behavioral, physiological, and engineering approaches to develop intelligent, sustainable, and human-friendly environments.
Professor Beom Kyung Kim's research lab specializes in hepatology, with a primary focus on noninvasive prediction of liver fibrosis and cirrhosis in chronic hepatitis B (CHB) patients. The lab develops and validates clinical scoring systems—such as FIB-4, ASPRI, and SNACOR—to improve risk stratification and reduce reliance on liver biopsy. Their work also emphasizes optimizing prognostic models like mREACH-B and BCLC for hepatocellular carcinoma (HCC), integrating virological and fibrotic burden markers to guide personalized treatment in the era of antiviral therapy.