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 Dong-Joo Yoo's research lab specializes in advanced energy storage systems, with a primary focus on next-generation batteries beyond lithium-ion technology. The lab explores multivalent ion batteries—particularly aluminum, magnesium, and calcium-based systems—aimed at overcoming the limitations of conventional lithium-ion batteries through abundant, high-capacity metal anodes. Key research directions include the design of novel cathode materials, rational electrolyte engineering for low-temperature performance, and fundamental understanding of solid-electrolyte interphase (SEI) formation and ion transport mechanisms. The lab combines experimental synthesis with computational modeling, such as density functional theory (DFT), to guide the development of high-performance, long-cycle-life batteries for sustainable energy applications.
Professor Yongsoon Park's research lab specializes in clinical and translational studies focusing on lipid metabolism, platelet function, and nutritional influences on cardiovascular and renal health. Key research directions include the impact of omega-3 fatty acids on postprandial triglycerides and platelet reactivity, the role of platelet volume (MPV) as a biomarker for activation, and nutritional interventions in chronic diseases such as end-stage renal disease and metabolic syndrome. The lab also investigates bioactive fatty acids, including conjugated linoleic acids, and their effects on maternal and infant nutrition. These studies integrate clinical trials, biomarker analysis, and translational applications to improve patient outcomes.
Professor Seunghyun Lee's research lab specializes in the design and fabrication of advanced nanomaterials for energy conversion and biomedical sensing applications. The lab focuses on plasmonic nanostructures, such as gold bipyramids and nanorods, for label-free immunoassays and surface-enhanced Raman scattering (SERS), leveraging their tunable optical properties and high sensitivity. Additionally, the lab develops heterostructured electrocatalysts—particularly boron-doped cobalt oxide and transition metal oxides integrated with conductive carbon matrices—for efficient alkaline water splitting, targeting both oxygen and hydrogen evolution reactions. The integration of 2D materials like graphene with plasmonic nanostructures further expands their capabilities in ultrasensitive detection and catalytic performance.
福井康介教授の研究室は、連続変数量子情報処理を基盤とし、特にGKP qubitを核とした耐障害性量子計算の実現に注力しています。光学系における高精度なエラー補正や、非古典的状態の生成・制御、量子中継器の構築を柱とした研究を展開しており、スケーラブルで実用に耐える量子技術の構築を目指しています。特に、アナログ情報とデジタル情報の統合的利用や、最大尤度推定を用いたエラー耐性の向上が特徴です。
Takato Mitsudome教授の研究室では、酸化物支持金属ナノ粒子を用いた高効率で選択的かつ再利用可能な固体触媒の開発に注力しています。特に、酸素を酸化剤として用いる酸化反応や、添加剤を不必要とする脱水素反応において、水酸化ホウ石(hydrotalcite)を担体に用いることで、反応性と選択性を両立する触媒系を構築しています。また、コア-シェル構造を有するナノ粒子触媒の設計を通じて、反応機構の解明と工業的応用への展開を進めています。
Hisabori教授の研究室では、植物・藍細菌のチラコイド膜に位置するタンパク質の赤酸化還元制御機構に注目し、特にチオレドキシンを介した電子伝達とタンパク質の還元的スイッチングのメカニズムを解明しています。特にHCF164やサイクロフィリン、ペルオキシドキシナーゼなどのターゲットタンパク質の構造的・機能的特徴を、還元還元反応の分子機構として解明しています。また、チオレドキシンアフィニティクロマトグラフィーを応用したターゲットプロテインスクリーニング技術の開発も進めており、赤酸化還元ネットワークの全体像の解明を目指しています。
Ludovico Minati教授の研究室は、神経変性疾患や脳血管障害の病態メカニズムを解明するため、非侵襲的脳イメージング技術(MRS、fMRI、DTI、NIRSなど)を応用した神経科学研究を展開しています。特に、加齢に伴う認知機能低下やアルツハイマー病における脳の代謝・機能・構造的変化の評価に注力しており、臨床応用に向けたバイオマーカーの同定や、呼吸制御が脳・循環系に与える影響の神経基盤の解明も行っています。
Watanabe教授の研究室は、神経変性疾患、特に多発性発達性萎縮(MSA)やレビー小体病変(DLB)を対象とした神経画像診断と生体アッセイの研究を専門としています。特に、MRSやMIBGシンチグラフィーを用いた神経変性の早期診断や病態解明に貢献しており、臨床的・画像的所見の整合性を高める研究が進んでいます。
高尾弘義教授の研究室は、統合失調症の治療における薬物療法の最適化を主眼としており、抗精神病薬の併用療法が心電図のQTc延長に与える影響や、最小有効投与量の特定、クロアズパミンの服用継続率の検証など、臨床的実務に即した有効性・安全性の解明を進めています。特に、長期的治療経過における症状の推移や、薬物の切り替え戦略の検討を通じて、患者個別のニーズに応じた個別化医療の実現を目指しています。
Kazuno Negishi教授の研究室では、視細胞の生体電気的応答と神経伝達物質の役割に注目し、魚の網膜におけるヒスタミンやカテコールアミンの影響を電気生理学的手法で解明しています。特に水平細胞の光応答に及ぼす神経調節のメカニズムを、光刺激と薬理学的介入を組み合わせて解析しています。また、人工観察レンズ(IOL)の光学的特性が網膜像質に与える影響についても、色収差の観点から研究を展開しています。
Professor Ki-Woong Nam's research lab specializes in cerebrovascular and metabolic risk factors in acute ischemic stroke, with a focus on identifying accessible biomarkers and metabolic indices that predict stroke complications and recurrence. The lab investigates the roles of systemic inflammatory markers (e.g., neutrophil-to-lymphocyte ratio), metabolic dysregulation (e.g., TyG index, homocysteine), and coagulation markers (e.g., D-dimer) in stroke outcomes such as stroke-associated pneumonia, early recurrent lesions, and neurological deterioration. Their work emphasizes translational clinical research, aiming to improve risk stratification and personalized management in stroke patients through readily available laboratory parameters.
Professor Doil Choi's research lab specializes in plant molecular biology and molecular plant pathology, with a focus on understanding the genetic and molecular mechanisms underlying plant innate immunity and stress responses. The lab investigates key regulatory genes and enzymes—such as HMGR, NLR receptors, and methionine sulfoxide reductases—involved in the biosynthesis of defense compounds and signaling pathways in Solanaceous plants like potato, pepper, and tomato. Using advanced genomic and molecular techniques, including QTL mapping, subtractive cloning, and functional genomics, the lab explores how plants perceive and respond to pathogens and environmental stresses at the molecular level. Their work contributes to the development of disease-resistant crops through a deep understanding of plant immune systems and stress adaptation mechanisms.
Professor Ki-Bong Oh's research lab specializes in natural product chemistry and antimicrobial drug discovery, with a focus on identifying bioactive compounds from marine and terrestrial sources. The lab investigates the structural characterization and biological activities of natural alkaloids and fatty acid derivatives, particularly those exhibiting potent antimicrobial and antifungal properties. Key research directions include the discovery of novel compounds from marine sponges and medicinal plants, such as farnesoic acid and bis(indole) alkaloids, and evaluating their mechanisms of action against drug-resistant pathogens. The lab also employs advanced analytical techniques like HPLC, NMR, and mass spectrometry to isolate and identify bioactive molecules.
Professor Song-Bae Kim's research lab specializes in environmental materials and water treatment technologies, focusing on the development of advanced functional materials for the removal of heavy metals and nutrients from water. The lab investigates bacterial transport and fate in porous media, integrating mathematical modeling with experimental validation to understand and predict microbial behavior in subsurface environments. A key research direction involves designing and applying nanomaterials—such as polymer-based nanofibers and iron oxide-chitosan composites—for efficient adsorption of contaminants like copper and phosphate from industrial and natural waters. The lab emphasizes sustainable solutions through material regeneration and reuse, demonstrating practical applications in fixed-bed column systems.
Professor Doman Kim's research lab specializes in bioactive compound discovery and functional food development, focusing on natural products from plants and microorganisms. The lab investigates the enhancement of bioavailability and stability of bioactive molecules—such as curcuminoids and phenolic compounds—through novel extraction and solubilization techniques. It also explores microbial fermentation processes to enrich functional nutrients like GABA, L-carnitine, and phenolic acids in plant-based foods. Additionally, the lab engages in molecular enzymology, particularly the cloning and characterization of novel enzymes like glucansucrases from lactic acid bacteria.
Professor Sumin Kim's research lab specializes in the development and characterization of sustainable bio-based materials, with a focus on tannin-derived adhesives for wood composites, exfoliated graphite nanoplatelet (xGnP)-reinforced polymer nanocomposites for enhanced mechanical and thermal properties, and novel bio-composite phase change materials (PCMs) from agricultural and food waste. The lab employs advanced analytical techniques such as FT-IR, DSC, TGA, DMTA, and XRD to investigate curing behavior, thermal stability, viscoelasticity, and microstructure-property relationships. Research directions emphasize environmental sustainability, indoor air quality, and the valorization of biomass by-products into high-performance functional materials.
Professor Geum Joon Cho's research lab focuses on reproductive and metabolic health, with a strong emphasis on the long-term physiological and metabolic consequences of pregnancy and menopause. The lab investigates the interplay between hormonal changes, reproductive history, and chronic disease risk, particularly metabolic syndrome, gestational diabetes, and adverse pregnancy outcomes. Key research directions include the impact of postmenopausal status, human papillomavirus (HPV) infection during pregnancy, and oral health on maternal and fetal health. The lab employs large-scale population-based data and longitudinal studies to identify modifiable risk factors and improve preventive strategies in women's health.
Professor Youngjong Kang's research lab specializes in the design and fabrication of advanced functional nanomaterials, with a focus on block copolymer-based nanostructures, carbon nanotube dispersion, and stimuli-responsive photonic materials. The lab develops innovative strategies for the self-assembly and stabilization of nanoparticles—such as gold and single-walled carbon nanotubes—within cross-linked micellar or polymeric matrices, enabling precise control over morphology, optical properties, and interfacial engineering. A key research direction involves creating electrically tunable photonic materials and smart pixels with nonvolatile color switching, leveraging the unique responsiveness of block copolymer gels to external stimuli like voltage and pH. The lab also explores the hierarchical organization of nanoparticles into ordered superstructures through controlled interfacial engineering and environmental triggers.
Professor Ki Sun Yoon's research lab specializes in food science and technology, with a focus on enhancing the quality, safety, and functionality of food products through natural ingredients and advanced processing techniques. Key research directions include the development of natural preservatives and antioxidants from plant sources—such as quinoa and young radish—alongside improving the cryoprotective properties of food systems using polysaccharides, polyols, and dietary fibers. The lab also investigates the impact of ingredient interactions on the texture, stability, and sensory attributes of meat and surimi-based products during frozen storage and freeze-thaw cycles.
Kimihiro Hino教授の研究室は、都市環境と健康行動の関連を解明することを目的としています。特に、歩行行動の変化や都市環境要因(歩きやすさ、都市農業、住環境の整備など)が高齢者の健康に与える影響を、大規模な実証データを用いて分析しています。近年の社会的変化に伴う歩行行動の変化や、健康促進のための都市的インフラの有効性についても、多分野連携の視点から研究を展開しています。