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。
Ueno教授の研究室では、タンパク質キャリッジをナノスケールの反応場・ナノコンパートメントとして用い、金属ナノ粒子や金属錯体を制御的に組み込むことで、機能性バイオハイブリッド材料の創出をめざしています。特に、フェリチンやミオグロビンをテンプレートとして、金属イオンの局在・還元・ナノクラスター形成を精密に制御する手法を開発しており、高選択的で効率的な酸化還元反応触媒の構築を目指しています。また、光応答性CO放出系の開発を通じて、医療応用に向けた細胞シグナル制御技術の確立も進めています。
Hiroaki Onoe教授の研究室では、生体適合性ハイドロゲルを用いたスマートな薬物送達システムや、刺激応答性マクロな構造の設計・製造を主な研究テーマとしています。特に超音波や温度・pH変化に反応するハイドロゲルの動的制御、3D/4Dプリンティング技術を応用した生体模倣型組織工学の構築が進んでいます。微小な粒子や繊維の自己集合制御、生体由来マトリックスを用いたリアルな血管組織のインビトロモデル構築も行っています。
Professor Yoon-Mo Koo's research lab specializes in biocatalysis and sustainable chemical processes, with a focus on enzyme-mediated synthesis of high-value biobased products such as sugar fatty acid esters and rare sugars. The lab integrates experimental studies with molecular dynamics simulations to understand and optimize enzyme behavior in non-aqueous environments like ionic liquids and organic solvents. Key research directions include enhancing the efficiency and scalability of lipase-catalyzed reactions, developing novel solvent systems for improved substrate solubility, and applying advanced separation techniques such as simulated moving bed (SMB) chromatography for product purification. The lab also investigates the economic and environmental feasibility of carbon capture and storage technologies, particularly in industrial sectors like steel production.
Professor Yong Shin's research lab specializes in the development of innovative microfluidic and nanomaterial-based platforms for point-of-care molecular diagnostics and liquid biopsy applications. The lab focuses on advancing sensitive, rapid, and label-free detection of genetic and epigenetic biomarkers—such as single-point mutations, cell-free nucleic acids, and extracellular vesicles—using cutting-edge technologies like silicon microring sensors, SERS substrates, and magnetic nanoparticle composites. A central theme in the lab’s work is the design of non-chaotropic, high-efficiency nucleic acid capture systems and isothermal amplification techniques to improve clinical translation of molecular diagnostics.
Professor Seok Chung's research lab specializes in developing advanced microfluidic and 3D bioprosthetic platforms to model complex physiological microenvironments, particularly in cancer, angiogenesis, and islet biology. The lab focuses on integrating dynamic biochemical gradients, extracellular matrix scaffolds, and live-cell imaging to study cellular behaviors such as collective migration, sprouting angiogenesis, and metastatic niche formation at the single-cell level. By mimicking in vivo conditions like interstitial flow and stromal interactions, the lab aims to create more clinically relevant in vitro models for disease research and drug testing. Their work bridges tissue engineering, microfluidics, and systems biology to uncover mechanistic insights into disease progression and microenvironmental regulation.
Professor Gil-Ho Lee's research lab specializes in quantum nanoscience and 2D materials-based quantum devices, focusing on spintronics, superconductivity, and topological quantum phenomena. The lab explores van der Waals heterostructures, Josephson junctions, and spin-orbit torque effects to develop energy-efficient, gate-tunable quantum devices. Key research directions include macroscopic quantum tunneling, crossed Andreev reflection, and twistronics in 2D materials, with an emphasis on atomically precise interfaces and quantum coherence. The lab combines advanced fabrication techniques like mechanical exfoliation and microcleave-and-stack with advanced transport and spectroscopy measurements to probe fundamental quantum phenomena.
Professor Jin-Goo Park's research lab specializes in surface and interfacial phenomena in semiconductor manufacturing, with a focus on chemical mechanical polishing (CMP) processes, contamination control, and surface modification. The lab investigates the fundamental interactions between slurries, particles, and wafer materials—such as silicon, polysilicon, and metal films—under various chemical and electrokinetic conditions. Key research directions include the role of surface charge, zeta potential, and interfacial forces in determining polishing performance and defect formation, as well as the development of strategies to enhance surface cleanliness and planarization efficiency through chemical additives like H₂O₂ and benzotriazole (BTA).
Professor Sunho Jeong's research lab specializes in the development of advanced functional materials for next-generation electronic and energy devices, with a strong focus on solution-processed oxide semiconductors, conductive nanomaterials, and flexible electronics. The lab investigates low-temperature processing techniques for amorphous oxide semiconductors (AOS) such as IZO and ZTO, aiming to enhance thin-film transistor performance while maintaining compatibility with flexible plastic substrates. A key research direction involves surface engineering of metal nanoparticles—particularly copper—to suppress oxidation and enable high-conductivity, inkjet-printable electrodes. The lab also explores functional nanocomposites, including piezoelectric generators based on PZT-NH₂ nanoparticles, for energy harvesting applications.
Professor Suk-Ho Choi's research lab specializes in advanced optoelectronic materials and devices, focusing on hybrid heterostructures combining 2D materials, perovskites, and quantum dots for next-generation solar cells, photodetectors, and light-emitting devices. The lab explores fundamental mechanisms in carrier transport, interface engineering, and charge dynamics in nanostructured systems to enhance device performance and stability. Key research directions include the development of transparent and semitransparent photovoltaics, high-sensitivity photodetectors, and multifunctional devices such as solar cell-light emitting diodes (SOLEDs).
Sugiyama教授の研究室は、プロセス工学と持続可能性を融合した先進的なプロセス設計フレームワークの構築を主眼としています。特に、経済的・環境的・健康・安全(EHS)的側面を統合した多目的評価を早期段階のプロセス設計に組み込むことを目指しており、IDEF0を用いた活動モデルやシステムダイナミクス、確率的シミュレーションを活用した設計空間の特定を展開しています。バイオ医薬品の製造プロセスにおける不確実性を考慮した性能評価手法の開発も進んでいます。
Vinogradov教授の研究室は、ペプチドを用いた新薬創出を目的としたバイオケミストリー的研究を展開しています。特に、メタボリック安定性や細胞膜透過性に欠けるペプチドの欠点を克服するため、マクロサイズ化や非プロテオジックアミノ酸導入、合成生物学的手法を駆使した新規ペプチド医薬の設計・合成を推進しています。また、in vitro酵素反応系を用いた天然物の生合成解明や、高スループットなペプチド配列同定技術の開発も行っています。
池田耕一教授の研究室は、造血幹細胞の自己複元と分化メカニズム、特にc-kit受容体とsteel因子の相互作用、ならびにT細胞発生における微小環境の役割を解明しています。特に、Thy-1lo Lin⁻ Sca-1⁺というマーカーを用いた造血幹細胞の精製と、IL-7の産生細胞の分布解析を通じて、胸腺や骨髄におけるリンパ球発生の制御機構を解明しています。また、T細胞受容体の遺伝子変異頻度やIgE受容体の分子同定など、免疫細胞の発生・機能に関する分子機構にも貢献しています。
Akitsu Hotta教授の研究室は、iPS細胞を用いた遺伝子編集技術の開発と応用を柱としています。特にCRISPR-Cas9を用いた精確なゲノム編集や、非ウイルス的遺伝子導入系(piggyBacトランスポーザー)の応用により、血友病Aを含む遺伝疾患の治療法の確立を目指しています。また、iPS細胞の再プログラミングメカニズムや、ゲノム編集の効率化・安全性向上に関する基礎的・応用的研究を進めています。
Rui Nouchi教授の研究室は、高齢者の認知機能向上を目的とした非薬物的介入の有効性を検証する研究を主軸としています。特に音楽療法や処理速度トレーニング、栄養補助食品(ルテイン)の影響について、臨床試験やシステマティックレビューを通じて科学的根拠を積み重ねています。認知症予防や高齢者の生活の質向上に貢献する実用的で実践的な介入の開発が目指されています。
スティーブン・マシュー・リス教授の研究室は、ナノ炭素材料を基盤として、燃料電池やCO2還元、水素貯蔵などの次世代エネルギー技術に向けた非白金族金属触媒や機能性材料の開発を進めています。特に、窒素ドープ炭素やカーボンナイトライドを用いた酸素還元反応触媒の機構解明や、ナノセルロースを応用したプロトン交換膜の開発が特徴です。機械学習を活用した材料特性の予測や、低コストで大面積に均一なナノ材料を形成するプロセス開発にも注力しています。
山本丈教授の研究室では、分子動力学法や粒子シミュレーションを用いたマルチスケールなシミュレーション手法を開発・応用し、界面・界面反応、自己組織化構造の形成、繊維系・ゲル系の流動・物性を解明することを主眼としています。特に、リン酸脂質膜の自己組織化や、反応性接着剤の界面挙動、繊維の流動・変形挙動のメカニズムを原子・分子スケールから解明しています。これにより、ナノ材料の設計や接着技術の高度化に貢献する基礎的知見を提供しています。
Professor Se-Bum Paik's research lab specializes in computational and systems neuroscience, focusing on understanding the neural mechanisms underlying visual perception, number sense, and cortical network dynamics. The lab employs computational modeling, deep neural networks, and advanced image analysis to investigate how brain circuits spontaneously generate functional maps—such as orientation and retinotopic maps—and how oscillatory activity shapes sensory processing. A key focus is on the emergence of abstract cognitive functions from intrinsic network dynamics, as well as developing automated tools for whole-brain neural mapping in mice.
Professor Young-Kook Lee's research lab specializes in the development and characterization of advanced high-strength steels, with a focus on medium Mn steels, Fe-Mn alloys, and martensitic stainless steels. The lab investigates phase transformations, microstructure evolution, and mechanical properties—particularly transformation-induced plasticity (TRIP) and damping capacity—under varying processing conditions such as annealing and heating rates. Key research directions include the control of retained austenite, martensite reversion mechanisms, and the role of defects and phase boundaries in enhancing material performance. The lab combines experimental techniques like dilatometry, XRD, and TEM to understand structure-property relationships at the microscale.
Professor Han-Sung Jung's research lab focuses on bioinspired materials and developmental biology, with a strong emphasis on understanding the molecular mechanisms underlying tissue and organ development—particularly in limb and mammary gland formation—through the interplay of key signaling pathways such as Wnt, FGF, and T-box genes. The lab also explores the application of natural micro- and nanostructures, such as those found in gecko skin, for biomimetic fabrication of functional surfaces in biomedical and everyday applications. Additionally, the lab investigates the role of chirality in biological systems and develops advanced nanomaterials, including graphene oxide-supported bimetallic nanoparticles, for combating antibiotic-resistant bacterial biofilms.
Professor Boyoung Park's research lab focuses on public health and translational biomedical research, with a strong emphasis on women's health, chronic disease prevention, and bioactive natural compounds. The lab investigates body image and obesity-related health disparities in Korean women across age groups, while also exploring anti-complement and anti-cancer properties of plant-derived compounds such as flavonoids and lignans. Additionally, the lab examines health behavior and screening patterns for diabetes-related complications, as well as mental health factors influencing suicide risk in family caregivers. These interdisciplinary efforts bridge epidemiology, pharmacology, and clinical health promotion.