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 Beakcheol Jang's research lab specializes in wireless networking, machine learning, and intelligent data processing, with a focus on developing energy-efficient communication protocols, advanced indoor positioning systems, and deep learning-based text and signal classification techniques. The lab explores practical applications of reinforcement learning, such as Q-learning optimization, and leverages neural networks—including CNNs and LSTMs—for natural language processing and big data analytics. A key research direction involves enhancing the accuracy and efficiency of wireless systems, particularly in challenging environments like indoor spaces and sensor networks.
Professor Yong-Hee Kim's research lab specializes in the development of advanced drug delivery systems for treating metabolic disorders, cancer, and inflammatory diseases. The lab focuses on designing smart, biocompatible nanocarriers—such as peptide-based polyplexes, microneedle patches, and hybrid nanoparticles—that enable targeted, efficient, and stimuli-responsive delivery of therapeutic agents. Key research directions include gene delivery using self-assembled oligopeptoplexes, targeted delivery of HO-1 modulators to adipose tissue and leukemia microenvironments, and the application of 3D-printed microneedles for precise transcutaneous drug administration. The lab integrates principles of biomaterials, molecular targeting, and nanomedicine to overcome biological barriers and improve therapeutic outcomes.
Sakaki教授の研究室は、遷移金属を用いた新規反応機構の理論的解明を柱としており、特にシリコン含有分子の酸化的付加や還元的消失反応における遷移状態の詳細な理論的解析を得意としています。Pt、Rh、Zrを用いた触媒系におけるハイドロシル化反応の機構解明や、PAlP型ピンサー配位子を有するレニウム錯体の合成・反応性評価も行われており、反応機構の理解を深めるための高精度計算手法(MP4、CCSD(T)、DFT)の応用が特徴です。また、太陽電池応用の銅錯体の開発など、実用応用への展開も視野に入れた研究が進められています。
Professor Moo Whan Shin's research lab specializes in advanced semiconductor devices and energy storage systems, with a strong focus on gallium nitride (GaN)-based high-power electronics and lithium-air batteries. The lab investigates microwave GaN HEMTs for high-power and high-temperature applications, leveraging advanced simulation and characterization techniques to optimize device performance. In parallel, the lab explores novel nanomaterials for energy conversion and storage, particularly cobalt-based porous carbon composites for efficient air cathodes in lithium-air batteries. The integration of materials engineering with device physics enables the development of next-generation electronic and electrochemical systems.
Professor Seok Hyun Eom's research lab focuses on plant metabolism, particularly the biosynthesis and regulation of bioactive phytochemicals such as flavonoids, isoflavonoids, and phenolic compounds in economically important crops and medicinal plants. The lab investigates how environmental factors—especially light quality and abiotic stresses like salinity—affect the accumulation of these health-promoting metabolites. Key research directions include metabolic profiling, gene expression analysis, and biotechnological applications for enhancing the nutritional and pharmaceutical value of plants in agriculture and food industries.
Taroh Kinoshita教授の研究室は、グリコスルホスファチジルイノシトール(GPI)アンカーを介した膜タンパク質の機能とそのバイオジェネシスに焦点を当てた研究を推進しています。特に、GPIアンカーの構造・修飾、ならびにその関与する補因子(DAFやCR1など)の細胞膜上での役割解明が中心です。また、GPIアンカー欠損に起因する疾患(例:PNH)の病態解明や、GPI修飾の制御機構の解明にも貢献しています。
石垣祐介教授の研究室では、π-結合系分子を基盤とした赤方性・電気色変化性・機械色変化性を示す新規有機分子の設計とその機能解明を主眼としています。特に、四価カチオン化・還元による構造・色・発光の制御が可能なキノジメタン誘導体やスパルファイアリング型有機半導体を対象に、電子移動と分子構造のダイナミクスの関係を解明しています。また、赤外領域に吸収を示す多電子プロセスを示す分子系の開発も進んでいます。
Professor Sung Soo Ahn's research lab specializes in diagnostic and prognostic radiology, with a focus on advanced medical imaging techniques for accurate tumor characterization and personalized treatment planning. The lab investigates the application of dynamic contrast-enhanced MRI, radiomics, and machine learning to improve the diagnosis and prognosis of glioblastoma and hepatocellular carcinoma. A key emphasis is placed on integrating molecular biomarkers—such as MGMT methylation status and genetic alterations in gliomas—into radiological interpretation to support precision oncology.
Professor Dong Kun Lee's research lab focuses on environmental and public health issues in urban settings, with a strong emphasis on urban green infrastructure, forest fire risk assessment, and the socio-ecological impacts of urbanization. The lab investigates the role of urban trees and green spaces in mitigating environmental stressors such as stormwater runoff, urban heat, and air quality degradation, while also examining mental health outcomes linked to urban living conditions. Additionally, the lab applies advanced geospatial technologies and machine learning to model environmental hazards, such as forest fire susceptibility, in ecologically sensitive regions like Gangwon-do, Korea. Their interdisciplinary work bridges environmental science, urban planning, and public health to develop data-driven solutions for sustainable urban development.
Professor Jinsung Park's research lab specializes in interdisciplinary studies at the intersection of nanoscale characterization, molecular interactions, and nonlinear dynamics. The lab focuses on developing advanced scanning probe microscopy techniques—particularly Kelvin probe force microscopy (KPFM)—to investigate surface potential and electronic properties at the single-molecule and nanomaterial level. Key research directions include the detection of biomolecular interactions with high sensitivity, the analysis of charge states in doped nanomaterials such as polyaniline, and the experimental observation of complex spatiotemporal patterns in reaction-diffusion systems, including spiral waves mediated by line defects. The lab also contributes to theoretical mathematical physics, particularly in spectral invariants and adiabatic limits of differential operators.
竹沢賢治教授の研究室は、流体・構造連成問題を対象とした先進的な数値解析手法の開発を柱としています。特に、動く境界や変形する構造を扱うための「空間時間スムーズ化法(ST)」や「変形空間領域/安定化空間時間(DSD/SST)」法を基盤とし、医療分野の患者特異的血流解析から、宇宙用パラシュートやトラックのタイヤ周辺の熱流体解析まで、多様な応用を展開しています。高精度で安定した計算を実現するための特殊なメッシュ生成技術や、スライド界面における境界層の高分解能保持手法も独自に開発しています。
Professor Je-Yoel Cho's research lab specializes in translational glycobiology and regenerative medicine, focusing on the role of glycoproteins and glycosylation modifications in cancer biomarker discovery and therapeutic development. The lab investigates disease-associated glycoproteins—particularly fucosylated and N-glycosylated forms—in serum from cancer patients, aiming to identify novel diagnostic and prognostic markers. Additionally, the lab develops advanced cell-based and nanotechnology-driven therapeutic strategies, including CAR-T cell engineering and injectable microgel systems for vascular regeneration, integrating stem/progenitor cells with growth factors for tissue repair. Their work bridges glycobiology, molecular oncology, and biomedical engineering to advance precision medicine.
Professor Soon-Il An's research lab specializes in tropical climate dynamics, with a primary focus on the El Niño–Southern Oscillation (ENSO) phenomenon. The lab investigates the nonlinear behavior, feedback mechanisms, and interdecadal variability of ENSO using theoretical modeling, observational analysis, and ocean-atmosphere coupling dynamics. Key research directions include the role of thermocline and zonal advective feedbacks, the impact of tropical instability waves on ENSO, and the mechanisms behind ENSO's frequency and amplitude changes over time.
Professor Ik-Kyung Jang's research lab specializes in cardiovascular thrombosis and interventional cardiology, focusing on the pathophysiology of acute coronary syndromes, thrombus composition, and the efficacy of antithrombotic therapies. The lab employs advanced intravascular imaging techniques such as optical coherence tomography (OCT) to characterize vulnerable atherosclerotic plaques in vivo, particularly in patients with acute myocardial infarction (AMI) or unstable angina (ACS). A key research direction involves evaluating the resistance of different thrombus components—such as platelet-rich and erythrocyte-rich clots—to thrombolytic therapy, as well as testing novel anticoagulants like argatroban in animal models. The lab also investigates immune-mediated thrombosis, notably heparin-induced thrombocytopenia (HIT), aiming to improve diagnostic accuracy and therapeutic strategies for thrombotic complications of anticoagulant therapy.
Professor Hyeok-Hee Lee's research lab focuses on cardiovascular and metabolic health, with a strong emphasis on the prevention and management of cardiometabolic diseases in aging populations. Her work explores the interplay between cardiovascular risk factors, diabetes, liver disease, and cancer survivorship, particularly examining how lifestyle changes, such as physical activity and smoking cessation, influence long-term cardiovascular outcomes. The lab also investigates the clinical implications of conditions like thrombocytopenia and hepatic fibrosis in patients with chronic diseases, aiming to identify early markers and improve patient prognosis.
Professor Sukchan Lee's research lab specializes in plant virology and molecular plant pathology, focusing on the interactions between plant viruses and their hosts, particularly geminiviruses such as beet curly top virus (BCTV) and tomato yellow leaf curl virus (TYLCV). The lab investigates viral replication, symptom development, host range variation, and the cellular and molecular mechanisms underlying viral pathogenesis, including phloem disruption and callus-like tissue formation. Recent work also extends into the intersection of virology and neurotoxicology, exploring the role of environmental metals like aluminum in chemotherapy-induced neuropathy. The lab employs integrative approaches combining virology, molecular biology, bioinformatics, and machine learning to decode viral genomes and predict disease symptoms.
Professor Ho Yun Lee's research lab specializes in thoracic radiology and pulmonary imaging, with a focus on the quantitative analysis of CT features to improve the diagnosis and prognosis of lung diseases, particularly lung adenocarcinoma. The lab investigates the radiologic-pathologic correlation of ground-glass opacities, subsolid nodules, and imaging biomarkers for early-stage lung cancer, aiming to refine surgical decision-making and predict survival outcomes. Research also extends to hilar cholangiocarcinoma and interstitial lung diseases, emphasizing multimodal imaging interpretation and radiologic predictors of treatment response and fibrosis progression.
Professor Baehyun Min's research lab specializes in advanced reservoir engineering and computational methods for enhanced oil recovery (EOR) and geological carbon storage. The lab focuses on developing innovative simulation techniques, machine learning integration, and data assimilation strategies to improve reservoir characterization, history matching, and uncertainty quantification in complex, channelized reservoirs. Key research directions include CO2-based EOR processes such as CWAG and WAG, coupled with carbon capture and storage (CCS), as well as the application of artificial intelligence and sparse representation methods to enhance geological plausibility and predictive accuracy.
Professor Sun Choi's research lab specializes in computational and systems biology-driven drug discovery, with a focus on molecular dynamics simulations, allosteric modulation in GPCRs, and epigenetic drug targeting. The lab develops advanced in silico methods—such as induced-fit docking and network analysis of protein dynamics—to elucidate mechanisms of protein-ligand interactions and signal transduction. Their work bridges computational modeling with translational applications, including nanotheranostics for cancer and novel inhibitors for DNMTs and capsaicin analogues. The lab emphasizes the integration of big data, artificial intelligence, and structural bioinformatics to accelerate rational drug design.
Kimura教授の研究室は、心血管疾患、特にステント治療後の長期的リスク、特に血栓症や再血管形成のリスクに注目しています。特にシロリムス・イオン化ステント後の非常遅い血栓症や長期的な血管再閉塞のメカニズムを、臨床試験データを基に解明しています。6か月を超えたチエンピリジンの継続投与の臨床的意義についても、長期的リスクと利益のバランスを検証しており、次世代ステントの開発に貢献しています。