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 Jeeyoung Yoo's research lab specializes in advanced materials for electrochemical energy storage, with a strong focus on next-generation batteries and supercapacitors. The lab explores innovative electrolytes—particularly ionic liquids—and novel electrode architectures, such as nanoporous anodic aluminum oxide and three-dimensional current collectors, to enhance interfacial stability and performance. Key research directions include lithium metal anode protection, solid-state electrolyte development, and low-cost, environmentally friendly fabrication of conductive electrodes using self-reducible metal-organic inks. The lab integrates materials synthesis, electrochemical characterization, and interfacial engineering to address critical challenges in energy density, safety, and scalability.
Professor Tae-Eun Park's research lab specializes in developing advanced human microphysiological systems (MPS) and organ-on-a-chip platforms to model human organ barriers, with a focus on the blood-brain barrier and gastric mucosal barrier. The lab integrates induced pluripotent stem cells (iPSCs), primary human cells, and microfluidic technologies to create physiologically relevant in vitro models that recapitulate in vivo barrier functions, cell-cell interactions, and host-microbe dynamics. Their work emphasizes precision drug testing by addressing key limitations of traditional platforms, such as small molecule absorption in PDMS and immature epithelial phenotypes, enabling more accurate preclinical drug screening and disease modeling. The lab's innovative approaches support translational research in neurodegenerative diseases, gastrointestinal infections, and targeted therapeutics.
Professor Sunil Kumar Prabhakar's research lab specializes in computational neuroscience and biomedical data analytics, focusing on the development of advanced machine learning and signal processing techniques for early diagnosis and classification of neurological and oncological disorders. The lab primarily investigates electroencephalography (EEG), photoplethysmography (PPG), and gene expression microarray data to identify biomarkers and classify diseases such as schizophrenia, prostate cancer, and ovarian cancer. A key research direction involves optimizing feature selection and classification pipelines using wavelet transforms and hybrid optimization techniques to handle high-dimensional, noisy biological data.
Professor Su Seok Choi's research lab specializes in soft photonic materials, focusing on chiral nematic liquid crystals, chiral liquid crystal elastomers, and hybrid photonic bandgap structures. The lab explores dynamic color tuning through external stimuli such as electric fields and mechanical deformation, enabling applications in tunable optical devices, stretchable multicolor displays, and smart sensors. A key research direction involves engineering the structural and mechanical properties of these materials to achieve precise, reversible, and multi-mode control of structural color. The lab also develops digital tools for risk analysis in engineering contracts, integrating AI and text-mining for improved project management in EPC (engineering, procurement, and construction) sectors.
池原和和教授の研究室は、人工細胞の構築を目的としたセルフリプリケーション系の開発に取り組んでいます。特に、自己複製可能な遺伝子発現系とDNA複製系を統合し、再構成された細胞内環境(PUREシステムやリポソーム)で持続的なDNA複製と翻訳因子の再生を実現する研究が特徴です。この研究は、生命の根源的機能である自己複製と進化の再現に向けた基盤を提供しています。
Naoya Shibata教授の研究室は、電子顕微鏡を用いたナノスケールの電場・電位構造の直接可視化を柱としています。特に、走査型透過電子顕微鏡(STEM)を応用し、原子分解能で電場分布を測定・イメージングする差動位相コントラスト法の開発・応用に力を入れています。酸化物や半導体における不純度や不配位子欠陥の電気的・構造的性質の解明も重要なテーマです。
Ting-Hui Xiao教授の研究室は、ナノスケールの光・物質相互作用を応用した次世代光デバイスの創出を狙い、特にグラフェンやゲルマニウムを用いた中赤外領域の集積光デバイス、表面プラズモン励起、および超高感度分光技術の開発を主な研究分野としています。単分子レベルでのラマン分光や光学的キラリティの強化、さらにはCMOSプロセスと統合可能な光子集積回路の設計にも注力しており、バイオセンシングや環境モニタリングへの応用が期待されています。
Hisashi Arase教授の研究室は、ナチュラルキラー(NK)細胞の機能と制御機構に焦点を当てており、特にNK細胞受容体の多様性とその機能的役割、ウイルスに対する免疫逃避機構の解明を主な研究テーマとしています。MCMV感染におけるNK細胞の反応、FasLを介した細胞傷害性、NKR-P1受容体によるインターフェロンγ産生の制御、ならびにCD4+8−胸腺細胞におけるNK1.1+サブセットの特徴解明など、NK細胞の発生・機能・シグナル伝達を多角的に解明しています。
Kanda教授の研究室は、消化器がん、特に膵がんおよび胃がんの病態解明と予後予測のためのバイオマーカーの同定を柱としています。特に、予後予測に有用な栄養状態指標(PNI)の臨床的意義や、膵液中のGαs遺伝子変異を用いた早期がんスクリーニングの可能性についての研究が進んでいます。また、腹膜播種や術後合併症のメカニズム解明や、がんの進行を予測する分子標識の同定にも注力しています。
Eiji Kobayashi教授の研究室は、再生医療とがん免疫療法を柱とした先端的医学研究を推進しています。特に、キラーT細胞や自然殺傷細胞(NK細胞)を標的にしたがん免疫応答の強化や、末節性軟骨修復に向けた幹細胞治療の開発が目立ちます。また、画像技術を活用した幹細胞の可視化や、プリクリニカルモデルとしてのブタを用いた医療機器開発・教育にも力を入れており、実験動物の福祉向上(3R原則)にも貢献しています。
Professor Hyun-Jung Kim's research lab specializes in systems thinking and simulation modeling for complex decision-making in manufacturing systems and public policy. The lab focuses on developing systematic methods to integrate qualitative data into system dynamics modeling, particularly through grounded theory-informed coding techniques. It also investigates advanced scheduling and control strategies for semiconductor manufacturing, including noncyclic and robotic flow shop scheduling using reinforcement learning. Additionally, the lab explores energy-efficient power converter topologies and their applications in high-power charging systems.
Professor Sujung Go's research lab specializes in atmospheric remote sensing, with a focus on aerosol and dust characterization using satellite-based hyperspectral and broadband radiometric measurements. The lab develops advanced retrieval algorithms to quantify aerosol optical properties, particularly the iron-oxide composition of mineral dust—such as hematite and goethite—critical for understanding light absorption and radiative forcing. Key research directions include the synergistic use of UV–visible and infrared sensors for improved aerosol detection, innovative single-channel UV aerosol index methods, and the application of instruments like OMI, GEMS, MODIS, and DSCOVR-EPIC for atmospheric monitoring. The lab's work contributes significantly to improving climate models and environmental assessments through precise aerosol and radiative effect characterization.
Professor Sang Won Seo's research lab specializes in the intersection of neuroscience, cognitive aging, and neurodegenerative diseases, with a focus on understanding the neural and biological mechanisms underlying cognitive decline in conditions such as Alzheimer’s disease and frontotemporal dementia. The lab investigates the impact of metabolic and vascular risk factors—like NAFLD—on brain health and cognition, while also exploring neuroimaging and pathological markers to predict disease progression. Additionally, the lab contributes to fundamental physics through studies on quantum phenomena in ultracold atomic systems, particularly vortex dynamics and spin textures in Bose-Einstein condensates.
Professor Chaenyung Cha's research lab specializes in the design and engineering of functional biomaterials, with a focus on carbon-based nanomaterials and hydrogels for advanced biomedical applications. The lab develops innovative strategies to enhance the mechanical, structural, and biochemical properties of hydrogels through nanomodification, covalent integration of graphene derivatives, and smart crosslinking techniques. A central theme is the creation of biomimetic microenvironments that replicate native stem cell niches to guide cell behavior for regenerative medicine and tissue engineering. The lab also pioneers surface engineering approaches to achieve robust hydrogel-polymer adhesion, enabling applications in microfluidics and dynamic cell culture systems.
Professor Kyoung Jin Choi's research lab specializes in the design, fabrication, and characterization of advanced functional oxide and nanostructured materials for next-generation electronic, optoelectronic, and energy conversion devices. Key research directions include strain-engineered ferroelectrics for non-volatile memories and electro-optic applications, one-dimensional metal oxide nanostructures for high-performance gas sensors, and plasmonic heterostructures for enhanced photocatalytic water splitting. The lab also investigates defect engineering in wide-bandgap semiconductors and the integration of nanostructures into practical device platforms using scalable fabrication techniques.
Professor Seoyon Yang's research lab focuses on neuromodulation and neurorehabilitation, with a strong emphasis on chronic pain mechanisms, brain plasticity, and the application of non-invasive brain stimulation techniques such as repetitive transcranial magnetic stimulation (rTMS). The lab investigates the neural and psychological underpinnings of chronic pain and dysphagia post-stroke, while also exploring the impact of global health crises—like the COVID-19 pandemic—on healthcare professionals’ mental health. Additionally, the lab examines the potential of virtual reality (VR)-based cognitive rehabilitation for neurological conditions, particularly in patients with brain tumors.
Warit Asavanant教授の研究室は、光を用いた連続変数量子計算に焦点を当てており、特に時間分割多重を用いた大規模クラスタ状態の生成と制御を主な研究テーマとしています。量子情報処理の実用化に不可欠なスケーラビリティとフォールトトレランスを実現するための光学的基盤技術の構築を進めています。また、非ガウス状態の生成や量子テレポーテーションを応用した高精度な量子状態操作の開発も行っています。
東海・南紀地方のプレート境界で発生する浅いスロースリップイベントや非常に低周波地震の発生メカニズムを、長期間にわたる地上地震計データと3次元波動場シミュレーションを融合して解明しています。特に、地下の不均質構造や地形の影響が高周波数地震波の散乱に与える影響を数値シミュレーションで定量的に評価しています。また、長期間にわたる地震活動の時空間的変動を高精度なCMT逆問題と相関解析によって解明し、巨大地震の前兆現象の理解を進めています。
Yamamoto教授の研究室は、高齢者の健康行動とその心理的・社会的要因に注目し、睡眠障害や抑うつ症状が転倒リスクに与える影響を長期間にわたり解明しています。また、透析患者における皮膚症状の心理的要因や、進行情報の早期開始のための患者の意思疎通のあり方についても、文化的・文化的要因を踏まえた研究を展開しています。特に、宗教的信念や心理的ストレスが医療意思決定に与える影響を、日本における文化的背景を踏まえて分析しています。
Javier Troyano教授の研究室は、金属有機フレームワーク(MOFs)や金属イオンを含む有機配位子錯体を核に、機能性ポーラス材料の創出と応用を追求しています。特に、コロイダルMOFsの設計や、スイッチング性・形状記憶性を示すスマートな複合膜の開発が特徴で、湿度応答性の自己折りたたみ型材料や、発光特性を制御可能なCu(I)錯体の開発も進んでいます。これらの材料は、センシング、ドラッグデリバリー、エネルギー関連応用に応用が期待されています。