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。
Minami教授の研究室は、微生物由来の天然物質、特にテルペン類やポリエーテル系抗菌物質の生合成機構を解明することを柱としています。特に、新規の酸化酵素やジテルペンシンターゼの同定を通じて、複雑な炭素骨格を有する天然物の生合成経路を解明しています。また、合成生物学的手法を応用した遺伝子クラスターの再構築や、酵素の基質特異性を利用した新規糖化学誘導体の合成にも取り組んでいます。
Professor Nakwon Kwak's research lab specializes in clinical and translational research in infectious diseases, with a primary focus on tuberculosis and non-tuberculous mycobacterial infections. The lab investigates treatment outcomes, diagnostic accuracy, and antimicrobial resistance in drug-susceptible and drug-resistant tuberculosis, including multidrug-resistant TB (MDR-TB) and *Mycobacterium abscessus* pulmonary disease. Their work emphasizes real-world clinical data, including meta-analyses and retrospective cohort studies, to evaluate the effectiveness of novel therapies such as later-generation fluoroquinolones and linezolid, and to optimize diagnostic strategies like the Xpert MTB/RIF assay. The lab also contributes to public health policy by analyzing the impact of infectious disease outbreaks on TB notification rates and diagnostic practices.
Professor Kyoungsik Yu's research lab specializes in nanophotonics, optoelectronics, and 2D materials, focusing on the development of ultra-compact photonic devices and advanced optical materials. Key research directions include subwavelength laser systems using metallodielectric cavities, high-efficiency light coupling in integrated photonic circuits, transparent radiative cooling windows, and heterostructure-based photodetectors leveraging 2D materials like MoS₂ and h-BN. The lab also explores novel optical coding schemes for high-capacity optical communication networks. These interdisciplinary efforts aim to advance on-chip optical integration, energy-efficient lighting and cooling, and next-generation quantum and photonic technologies.
Professor Kwan H. Lee's research lab specializes in the development of advanced biosensors and nanoscale devices for point-of-care diagnostics and energy applications. The lab focuses on integrating nanotechnology, optomechanics, and machine learning to create highly sensitive, portable, and reliable sensing platforms for clinical and environmental use. Key research directions include field-effect biosensors, multimarker urinary biosensors with machine learning integration, and optoelectromechanical systems for ultrasensitive detection. The lab also explores novel materials and device architectures for organic photovoltaics and immunodetection, emphasizing real-world applicability and performance in complex biological environments.
Professor Ju Hee Ryu's research lab specializes in the design and application of advanced nanomaterials for biomedical diagnostics and therapeutics. The lab focuses on engineering DNA-based nanostructures and stimuli-responsive nanoparticles to enhance targeted drug delivery, improve cancer imaging, and overcome biological barriers in the tumor microenvironment. Key research directions include the development of smart nanoprobes for real-time disease monitoring and the systematic investigation of cellular uptake mechanisms to optimize therapeutic efficacy.
Professor Eun-Jung Rhee's research lab focuses on metabolic and cardiovascular diseases, with a particular emphasis on diabetes, nonalcoholic fatty liver disease (NAFLD), and their interrelationships with obesity, insulin resistance, and vitamin D deficiency. The lab investigates the epidemiological trends and pathophysiological mechanisms underlying these conditions, especially in Asian populations, where rapid lifestyle and dietary changes have contributed to rising disease burdens. Research also explores the role of biomarkers such as 25-hydroxyvitamin D3 in metabolic health and disease risk. The lab integrates clinical, metabolic, and population-based approaches to understand the complex interplay between lifestyle, genetics, and chronic disease.
Professor Wooseok Yang's research lab specializes in developing efficient, low-cost photoelectrodes for solar hydrogen production through photoelectrochemical (PEC) water splitting. The lab focuses on earth-abundant semiconductors such as Sb₂Se₃ and CZTS, emphasizing materials design, nanostructure engineering, and solution-based processing to enhance optoelectronic performance and stability. Advanced characterization techniques, including time-resolved terahertz spectroscopy, are employed to understand and optimize carrier dynamics at the nanoscale.
Professor Ji-Beom Yoo's research lab specializes in the design, synthesis, and application of advanced nanomaterials for energy and optoelectronic technologies. Key research directions include the development of graphene-based materials with tunable electronic properties, nanostructured semiconductors for high-efficiency solar cells, and hierarchical oxide nanostructures for photocatalysis. The lab focuses on innovative synthesis methods—such as one-step exfoliation, pyrolysis, and electrospinning—to create materials with controlled morphology, crystallinity, and surface chemistry for practical device integration. Their work bridges fundamental materials science with scalable, low-cost fabrication techniques for sustainable energy solutions.
Professor Jinheung Kim's research lab specializes in bioinorganic and coordination chemistry, with a focus on non-heme iron and nickel complexes for catalytic transformations and sustainable energy applications. The lab investigates reaction mechanisms of metal-peroxide systems, particularly those involving Fe(TPA) and Ni(pbt/pbi) complexes, to understand fundamental pathways in C–H activation, alkane functionalization, and CO₂ reduction. A key emphasis is placed on developing selective, earth-abundant catalysts for green chemistry, including light-driven CO₂ conversion and ion sensing using fluorescent probes. Advanced spectroscopic and mass spectrometric techniques are employed to characterize short-lived intermediates and elucidate mechanistic details.
Aizawa教授の研究室は、有機エレクトロニクス分野に焦点を当て、特にTADF(熱的に活性化された遅延発光)材料や発光デバイスの基本挙動の解明を進めています。分子内のスピン状態の制御や、三重状態から一重状態への逆スピン翻訳(RISC)のメカニズムを理論的・実験的に解明し、発光効率の向上に寄与する材料設計の基盤を構築しています。また、溶液プロセシング可能な高耐久膜形成技術や、有機太陽電池におけるキャリア収支制御技術の開発も並行して行っています。
石内俊一教授の研究室では、分子集合体の構造と励起状態における原子移動・反応機構を、高分解能分光法と計算化学を融合して解明しています。特に、フェノールとアンモニアやアルゴンなどの小集団が形成する錯体を対象とし、励起状態水素移動や分子内エネルギー移動、イソマーの存在を精密に特定しています。時間分解分光やイオンドップ分光法を用いた動的プロセスの解明が特徴で、分子レベルでの反応メモリーや励起状態ダイナミクスの理解が目指されています。
Kitajima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、特にアクシオンやダークフォトンを含む新しいニュートリノ的暗黒物質の生成メカニズムを、数値格子シミュレーションを用いて精密に解明しています。特に、アクシオンの非摂動的ダイナミクスがダークフォトンにエネルギーを効率的に転送する「タキオン的不安定性」のメカニズムや、宇宙初期におけるドメインウォール崩壊から発生する重力波の生成を理論的に解明しています。また、Pulsar Timing Arrayのナノヘルツ帯重力波揺らぎやCMBの偏光回転といった最新観測結果との整合性を追求しており、実験的検証可能性を重視した理論的アプローチを展開しています。
Chul-Moon Yoo教授の研究室では、一般相対性理論と宇宙論の分野において、初期宇宙における原始ブラックホールの形成メカニズムや、非ガウスノイズがその生成に与える影響を、ピーク理論を用いて精密に解析しています。また、ブラックホールが周期的境界条件を満たす格子構造をとる宇宙モデルの時間発展を数値的にシミュレートし、局所的な不均一性が宇宙の全体的膨張に与える影響を解明しています。さらに、エリスワームホールの重力レンズ効果によるスペクトルmodulationを用いた探査法の可能性や、LTB型非一様宇宙モデルにおける赤方偏移の時間変化(赤方偏移ドリフト)の特徴についても理論的・数値的アプローチを展開しています。
佐藤一秀教授の研究室では、近赤外光を用いた画像診断と治療を統合した画期的ながん治療法「NIR光免疫療法(NIR-PIT)」の開発に取り組んでいます。抗体と光感光剤を結合させたコンjugateを用い、がん細胞に特異的に集積させ、近赤外光照射で局所的な細胞死を誘発する仕組みを解明しています。特に、細胞表面の物理的性質の変化や免疫抑制T細胞(Treg)の選択的破壊といった、がん微小環境の制御メカニズムの解明にも貢献しています。
中村孝義教授の研究室は、分子集合体の構造・機能制御を核として、分子回転、磁気・電気的性質の統合、およびナノスケールの機能性膜の創出を主な研究テーマとしています。特に、カウントカチオンとクマールエーテルの超分子相互作用を活用した分子回転子の設計や、金属錯体を用いた導電性LB膜の開発が進んでいます。また、超分子構造と物性の相関を解明することで、次世代のスマートマテリアルの創出を目指しています。
Professor Young-Jun Park's research lab specializes in next-generation electronic materials and devices, with a strong focus on sustainable and biocompatible electronics, resistive memory technologies, and energy-efficient power conversion systems. The lab explores biodegradable materials like lignin for memory devices, advances halide perovskite-based optoelectronic and synaptic transistors for neuromorphic computing, and develops ultra-efficient power management circuits for IoT and wearable applications. Their work bridges materials science, device engineering, and system integration to address challenges in energy efficiency, environmental sustainability, and biomedical applications.
Professor Hongyoon Choi's research lab specializes in translational biomedical imaging and molecular neuroscience, focusing on the development of advanced imaging technologies and computational models to understand neurodegenerative diseases, particularly Alzheimer’s disease. The lab integrates molecular imaging, deep learning, and systems biology to explore disease mechanisms, including amyloid pathology, microglial metabolism, and extracellular vesicle dynamics. A key focus is on creating non-invasive imaging biomarkers—such as those derived from PET and MRI—for early detection, disease progression monitoring, and therapeutic evaluation.
Professor Eui Jin Hwang's research lab specializes in the development and clinical validation of deep learning algorithms for medical imaging, with a primary focus on chest radiography. The lab investigates artificial intelligence applications in detecting thoracic diseases such as tuberculosis, pneumonia, and COVID-19, aiming to enhance diagnostic accuracy and efficiency in emergency and resource-limited settings. A key research direction involves evaluating the real-world performance of AI tools in clinical workflows, emphasizing their integration, interpretability, and impact on patient outcomes. The lab also explores computer-aided detection systems to support non-expert clinicians and improve diagnostic triage in underserved environments.
Professor Megalamane S. Bootharaju's research lab specializes in the design, synthesis, and structural characterization of atomically precise noble metal nanoclusters, with a focus on controlling composition, geometry, and electronic properties through innovative ligand engineering and templated synthesis strategies. The lab pioneers novel approaches such as galvanic exchange, ligand-exchange-induced growth, and hydride-based capping to create uniform, compositionally stable nanoclusters with tailored optical, electronic, and catalytic properties. A key emphasis is placed on understanding structure–property relationships and the dynamic transformation mechanisms in nanocluster systems, particularly in silver and silver-gold alloys, using advanced spectroscopic and crystallographic techniques. The lab also explores unconventional ligands, including hydrides and phosphines, to expand the chemical space of atomically precise nanomaterials.
Professor Byeong-Su Kim's research lab specializes in the design and fabrication of advanced functional nanomaterials for biomedical and energy applications. The lab focuses on developing smart drug delivery systems using stimuli-responsive nanostructures, such as polymer micelles and carbon-based nanomaterials, for targeted cancer therapy and imaging. Key research directions include the integration of magnetic nanoparticles, graphene oxide, and quantum dots into hybrid nanoconstructs for enhanced therapeutic and diagnostic performance. The lab also explores nanomaterials for energy conversion and storage, particularly in zinc–air batteries and supercapacitors, emphasizing synergistic effects in hybrid electrocatalysts and conductive electrodes.