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 Yoonmook Kang's research lab specializes in advanced photovoltaic materials and devices, with a strong focus on hybrid and tandem solar cells, nanostructured absorber materials, and interface engineering for high-efficiency, low-cost solar energy conversion. The lab investigates novel materials such as CdTe nanorods, CIGS thin films, and titanium oxide-based passivated contacts to enhance power conversion efficiency and long-term stability. Key research directions include optimizing device architectures—particularly in bifacial and tandem configurations—while addressing reliability issues such as hotspot formation under partial shading and interfacial challenges in multijunction cells.
Professor Eun-Soo Choi's research lab specializes in cross-cultural psychology, with a focus on cultural influences on mental health, emotional expression, and psychosocial adaptation. The lab investigates how cultural contexts shape psychological well-being, somatization of distress, body image, and responses to global crises such as the COVID-19 pandemic. Key research directions include the development and validation of culturally sensitive psychological assessment tools, emotion recognition in masked faces, and the role of parental support in adolescent mental health across East Asian and Western societies. The lab emphasizes translational research to inform mental health practice and policy in diverse cultural settings.
Professor Heeyeop Chae's research lab specializes in the development of advanced nanomaterials and optoelectronic devices, with a primary focus on quantum dot-based light-emitting diodes (QLEDs) and flexible energy storage systems. The lab explores solution-processed semiconductor nanostructures, particularly InP-based quantum dots, for high-efficiency and stable optoelectronic applications, while also advancing device architectures through innovative charge transport engineering. Additionally, the lab investigates 3D graphene-based nanostructures for next-generation flexible supercapacitors with exceptional mechanical robustness and electrochemical performance. Their work bridges materials synthesis, device physics, and practical applications in sustainable lighting and wearable electronics.
Professor Hyoungshick Kim's research lab specializes in network science and cybersecurity, focusing on dynamic and resilient network systems. The lab investigates models for information diffusion, anomaly detection in industrial and IoT environments, and secure authentication frameworks for emerging technologies like drones and the Internet of Drones. A central theme is developing lightweight, efficient, and scalable solutions for real-world deployment under security and performance constraints. The lab also explores strategic network attacks and defenses with cost-aware models to enhance system resilience.
Professor Kihyung Lee's research lab specializes in advanced internal combustion engine technologies, focusing on low-emission and high-efficiency combustion systems. Key research directions include two-stage and controlled autoignition (CAI/HCCI) combustion, high-pressure fuel injection systems, and spray dynamics in direct-injection engines. The lab investigates fundamental spray characteristics, such as droplet size, velocity, and impingement behavior on hot surfaces, to optimize combustion and reduce NOx and soot emissions. The work also addresses real-world driving cycle impacts on fuel efficiency and emissions, particularly under WLTP conditions.
Professor Youngmoon Lee's research lab specializes in intelligent systems and embedded technologies with a focus on real-time resource and thermal management in high-performance computing environments, particularly in automotive and healthcare applications. The lab develops advanced deep learning and IoT-based solutions for early disease detection, including monkeypox and pulmonary embolism, leveraging sensor data and edge intelligence. It also investigates environmental monitoring using satellite data for disaster assessment, such as drought and flood analysis. The lab emphasizes the integration of AI, edge computing, and secure communication in critical infrastructure and medical systems.
Eguchi教授の研究室では、特にウイルス性肝炎を背景とする肝細胞癌(HCC)の術後再発メカニズムに注目し、ウイルス型に応じた個別化された治療戦略の確立を目指しています。長期間にわたる臨床的フォローアップを基盤に、ウイルス性肝炎がHCC再発に与える独立した影響を解明しており、特にB型・C型肝炎ウイルスの役割を詳細に解析しています。これにより、再発予防のための個別化医療の実現に貢献することを目的としています。
郭海新教授の研究室では、バイオマスを効率的に利用するための新規触媒開発とプロセス技術の確立を主眼としています。特に、セルロースを原料とするスーパーパラマグネティックな固体酸触媒の開発や、イオン液体を用いたバイオエタノール誘導体(5-EMF)の高効率合成に注力しています。また、リン酸塩の効果的除去を目的としたランタン系酸化物触媒の開発や、デキストリンやヘミセルロースを効率的に分解するためのデリグニフィケーション技術の開発も進めています。
中島慎一郎教授の研究室は、てんかんやうつ病、統合失調症を代表とする精神疾患の神経生理学的メカニズムを、非侵襲的脳刺激法(TMS)と脳波計測(EEG)を組み合わせた先進的アプローチで解明しています。特に、皮膚の興奮性・抑制性のバランス(E/Iバランス)と神経可塑性の観点から、精神疾患の病態を神経回路レベルで解明することを目的としています。また、認知症の予防に寄与する脳予備能(brain reserve)のメカニズムについても教育歴の影響を検証しており、神経科学と臨床医学の融合的研究を推進しています。
Professor Jinhee Kim's research lab specializes in transportation behavior, choice modeling, and sustainable mobility, with a strong focus on understanding how social networks, personal attitudes, and contextual factors influence travel decisions. The lab develops advanced econometric models—particularly hybrid and latent class models—to capture individual heterogeneity and nonlinear utility structures in mode choice and car-sharing behavior. Research also emphasizes stakeholder uncertainty and cultural influences in transportation planning, especially in urban contexts like Seoul, where eco-friendly transit systems are being developed. The lab integrates behavioral theory with empirical data to support evidence-based policy design.
Professor Jinkee Hong's research lab specializes in the design and fabrication of advanced functional nanomaterials and multilayer thin films using layer-by-layer (LbL) assembly techniques. The lab focuses on developing smart, stimuli-responsive coatings for biomedical applications—particularly controlled drug delivery systems with sequential or programmable release of therapeutics—while also exploring applications in energy storage, microwave absorption, and nanodevices. Key innovations include the use of graphene-based materials (e.g., GO, rGO) and inorganic nanoparticles (e.g., ferrite) to engineer films with tunable electrical, mechanical, and degradation properties. The lab integrates materials science, nanotechnology, and biomedicine to create multifunctional platforms for healthcare and defense technologies.
Professor Jae W. Hahn's research lab specializes in advanced photonic and plasmonic materials for stealth technology, sensing, and nanofabrication. The lab focuses on designing multispectral and multiband electromagnetic absorbers, plasmonic resonators, and metasurfaces for infrared stealth and camouflage applications. It also develops cutting-edge optical sensing systems, such as cavity ringdown spectroscopy with novel laser coupling techniques, and explores the fundamental limits of plasmonic lithography for nanoscale patterning. The integration of materials science, nanophotonics, and biomedical applications—particularly in pharmacokinetics under extracorporeal membrane oxygenation—demonstrates the lab’s interdisciplinary approach.
Professor Minah Seo's research lab specializes in terahertz (THz) science and nanophotonics, focusing on the design and application of functional metamaterials and 2D nanomaterials for ultra-sensitive sensing, dynamic control of electromagnetic waves, and advanced THz imaging. The lab pioneers the integration of materials like VO₂, MXene, and graphene with nanostructured resonators to achieve unprecedented control over THz wave manipulation, including dynamic tuning, field enhancement, and shielding. Key research directions include label-free biomolecular detection, real-time monitoring of trace hormones, and sub-wavelength characterization of light flow in plasmonic and metamaterial systems. The lab's work bridges fundamental nanophotonics with practical applications in medical diagnostics, environmental sensing, and next-generation electronics.
Professor Ji Yun Noh's research lab specializes in infectious disease epidemiology, with a focus on respiratory viruses including influenza and SARS-CoV-2. The lab investigates the impact of public health interventions—such as social distancing and infection control measures—on viral transmission dynamics and epidemic patterns. It also conducts serosurveillance to assess population-level immunity and disease burden, contributing critical insights for pandemic preparedness and hospital infection control strategies.
Professor Ki-Chul Sung's research lab focuses on cardiovascular and metabolic epidemiology, with a strong emphasis on identifying early biomarkers and modifiable risk factors for cardiovascular disease (CVD) and metabolic disorders in Asian populations. The lab investigates the role of low-grade inflammation, iron metabolism, adiposity markers, and lifestyle factors such as physical activity and alcohol intake in predicting subclinical atherosclerosis, insulin resistance, and long-term CVD outcomes. A key focus is adapting Western-derived risk thresholds—such as C-reactive protein and albuminuria levels—to better reflect the true risk in East Asian populations, where baseline levels often differ. The lab integrates clinical, metabolic, and imaging data to improve risk prediction and early intervention strategies in chronic disease prevention.
Professor Yeon-Ju Kim's research lab specializes in the development and application of biogenic nanoparticles using natural plant extracts, with a focus on sustainable and eco-friendly synthesis methods. The lab investigates the biomedical and cosmetic potential of plant-capped nanoparticles, particularly those derived from *Dendropanax morbifera* and *Panax ginseng*, exploring their antioxidant, anti-inflammatory, and multifunctional properties. Additionally, the lab examines the role of beneficial microbes in enhancing plant stress tolerance, particularly under salinity stress, contributing to agricultural sustainability. The integration of natural products with nanotechnology and environmental health is a central theme in their interdisciplinary research.
Rumi Ueha教授の研究室では、加齢に伴う嗅覚機能低下の細胞・分子機構に注目し、嗅感覚神経細胞の再生メカニズムや、神経栄養因子・炎症関連因子の発現変化を解明しています。特に、老化に伴う嗅上皮の構造的・機能的変化と、それに関連する幹細胞系の機能低下を、マウスモデルを用いて詳細に解析しています。また、SARS-CoV-2感染リスクを考慮した嚥下療法の安全性や、嚥下障害を有する患者に対する治療戦略の最適化についても、臨床的・実験的アプローチを併用して研究を進めています。
Mori教授の研究室は、自然災害に伴う津波や高潮の発生メカニズム、波浪環境の変化、および流体計測技術の高度化を柱とする。特に、2011年東日本大震災における津波の詳細な現場調査データの収集と解析を通じて、津波の予測・防災に貢献している。また、波浪の非ガウス的性質や気候変動が波浪環境に与える影響についても、数値モデルと現場データの統合的分析を進めている。
Osada教授の研究室では、2次元酸化物ナノスケール材料の創製と応用に注力しています。特に、酸化チタンやタンタル酸ストラトナイトをはじめとする層状酸化物から得られるナノスケール材料を用い、高誘電率・高耐久性のナノデバイス材料の開発を進めています。磁性・スピン・光機能を統合した次世代エレクトロニクス材料の創出が、研究の核となっています。
石田武志教授の研究室では、有機半導体およびカーボンナノテクノロジーを応用した次世代エレクトロニクスデバイスの開発を主眼としています。特に、単結晶有機半導体を用いた高効率な発光トランジスタや、インクジェット印刷による高品質な単層カーボンナノチューブフィルムの低コスト製造に注力しています。これらの研究は、透明で柔軟な電子デバイスや、電流駆動型有機レーザーの実現に向けた基盤を提供しています。