探索全球顶尖大学的研究室——研究领域与主要论文一览无余。
Professor Fuyuhiko Tamanoi's research lab specializes in the development and application of functional nanomaterials for biomedical applications, particularly in targeted drug delivery and gene therapy. The lab focuses on engineering mesoporous silica nanoparticles (MSNs) for enhanced tumor targeting, intracellular delivery, and controlled release of therapeutic agents such as chemotherapeutics and siRNA. Key research directions include surface modification of MSNs with targeting ligands (e.g., transferrin, RGD peptides), understanding cellular uptake mechanisms, and manipulating subcellular trafficking—particularly lysosomal exocytosis—to improve therapeutic efficacy. The lab also investigates signaling pathways, such as mTORC1 activation by Rheb, to bridge nanomedicine with molecular cell biology.
Professor Ninshu Ma's research lab specializes in advanced manufacturing processes and numerical simulation of lightweight metallic materials, with a strong focus on friction stir processing, resistance spot welding, and sheet metal forming. The lab develops innovative constitutive models and finite element methods to simulate and optimize forming behaviors, including springback compensation, fracture prediction, and thermal-mechanical coupling in high-strength and duplex stainless steels. Key research directions include microstructure evolution, damage mechanics, and process optimization using customized FEM simulations and experimental validation.
Professor Yukinori Takenaka's research lab focuses on the tumor microenvironment and systemic inflammatory responses in cancer patients, particularly in head and neck squamous cell carcinoma (HNSCC). The lab investigates prognostic biomarkers such as systemic immune-inflammation indices (e.g., NLR, PLR, platelet count) and sarcopenia to predict outcomes and treatment response to immune checkpoint inhibitors. They also explore molecular mechanisms underlying cancer progression, including the role of proteins like galectin-3 in apoptosis regulation. Their work bridges basic cancer biology with clinical oncology, aiming to improve patient stratification and personalized treatment strategies.
Professor Fei Xiao's research lab specializes in data-driven intelligent systems for power systems and advanced materials, focusing on real-time security assessment, power quality disturbance detection, and machine learning applications in materials science. The lab develops probabilistic risk models, multi-objective optimization, and advanced signal processing techniques to enhance power system reliability and situational awareness. It also pioneers interpretable machine learning workflows for predicting material properties, particularly in high-entropy shape memory alloys, enabling accelerated materials discovery. The integration of smart meter data, wavelet transforms, and random matrix theory underscores the lab’s commitment to solving practical challenges in energy systems and materials engineering.
Professor Masato Yoshihara's research lab focuses on the tumor microenvironment in ovarian cancer, particularly the dynamic interactions between cancer cells and stromal components such as mesothelial cells, adipocytes, and fibroblasts. The lab investigates how these cells are reprogrammed during peritoneal metastasis—such as mesothelial-to-mesenchymal transition and adipocyte dedifferentiation—into pro-tumorigenic phenotypes that facilitate cancer dissemination and therapeutic resistance. A key research direction involves exploring therapeutic strategies, including vitamin D and recombinant human thrombomodulin, to reverse these pathological changes and restore normal microenvironmental functions. The lab integrates in vitro models, primary cell cultures, and translational studies to uncover molecular mechanisms driving ovarian cancer progression and to identify novel targets for intervention.
Professor Jongheon Shin's research lab specializes in natural product chemistry, with a focus on the isolation, structural elucidation, and biological evaluation of bioactive compounds from marine and terrestrial sources. The lab investigates novel terpenoids, alkaloids, glycosides, and peptides from sponges, gorgonians, fungi, and actinomycetes, often discovering compounds with unique skeletons and significant pharmacological activities such as cytotoxicity, anti-inflammatory effects, and insulin-sensitizing properties. Their work combines advanced spectroscopic techniques, chemical degradation, and bioassay-guided fractionation to uncover structurally complex natural products with potential therapeutic applications.
Professor Geun Eog Ji's research lab focuses on the microbiome-gut-brain axis, particularly the role of commensal and probiotic bacteria in immune regulation, metabolic health, and inflammatory diseases. The lab investigates the mechanisms of action of beneficial microbes such as *Faecalibacterium prausnitzii* and *Bifidobacterium* species, emphasizing their metabolic interactions, anti-inflammatory properties, and potential as next-generation probiotics. Research also extends to functional foods like ginseng and saponins, exploring their impact on obesity, insulin resistance, and gut microbiota modulation. The lab integrates *in vitro*, animal model, and clinical studies to translate microbial insights into preventive and therapeutic strategies for metabolic and autoimmune disorders.
Professor Do Hyun Kim's research lab specializes in the design and development of advanced nanomaterials for sustainable energy, electronics, and environmental applications. Key research directions include the synthesis of magnetic and carbon-based nanomaterials for catalytic recycling of plastics, such as PET glycolysis using superparamagnetic γ-Fe₂O₃ nanoparticles, and the engineering of carbon dots with stable solid-state luminescence for optoelectronic devices. The lab also focuses on flexible and wearable electronics, demonstrated through ultrathin silicon-based NAND flash memory and flexible phase change memory arrays using novel transfer techniques and selection devices. Additionally, the lab explores hybrid nanocomposites, such as GO-manganese oxide, for enhanced catalytic and thermal properties via ultrasound-assisted synthesis.
Professor Jongduk Baek's research lab specializes in advanced x-ray computed tomography (CT) systems, with a strong focus on noise characterization, image quality optimization, and innovative CT system design. The lab investigates fundamental noise behaviors in cone-beam and fan-beam CT, particularly through noise power spectrum (NPS) analysis, to understand spatially varying noise and its impact on image fidelity. They also explore novel imaging architectures such as multi-source inverse-geometry CT and develop advanced reconstruction techniques for low-dose and metal-artifact-prone imaging, especially in dental and small-animal applications. Their work bridges theoretical analysis, simulation, and experimental validation to enhance image quality and system performance in clinical and research settings.
Professor Masoud Mofarahi's research lab specializes in adsorption-based separation technologies and carbon capture materials, with a strong focus on zeolites and amine-based solvents for CO₂ and gas mixtures (e.g., CO₂/N₂, CH₄/N₂, O₂/N₂). The lab conducts experimental and thermodynamic studies on adsorption isotherms, pressure swing adsorption (PSA) processes, and solvent-based capture systems, emphasizing material characterization, process optimization, and energy efficiency. Key research directions include the development and application of advanced adsorbents like 13X, 5A, and 4A zeolites for sustainable gas separation and carbon dioxide mitigation in flue gases and natural gas streams.
Professor Hakho Lee's research lab specializes in developing advanced magnetic and nanomaterial-based diagnostic technologies for sensitive, rapid, and quantitative detection of rare biological entities such as single cells, pathogens, and biomarkers in complex biological fluids. The lab focuses on innovative microfluidic and NMR-based platforms, integrating magnetic nanoparticles and miniaturized sensors to enable point-of-care diagnostics with high sensitivity and specificity. Key research directions include single-cell detection, pathogen identification, and molecular profiling of cancer cells using magnetic resonance techniques.
Professor Qihang Ding's research lab specializes in the design and application of advanced nanomaterials for biomedical theranostics, with a strong focus on near-infrared (NIR) fluorescence imaging and phototherapy. The lab develops smart, stimuli-responsive nanotheranostic agents—particularly those based on aggregation-induced emission (AIE) fluorophores and NIR-II window emitters—for precise targeting and treatment of infectious diseases (e.g., rabies, bacterial pneumonia) and cancer. Key research directions include blood-brain barrier penetration, tumor and infection microenvironment-responsive therapy, and the integration of nanorobots with phototherapy for real-time guidance and enhanced therapeutic precision.
Professor Uğur Korkut Pata's research lab specializes in environmental economics and sustainable development, focusing on the interplay between energy systems, environmental quality, and economic growth. The lab investigates the impacts of nuclear and renewable energy consumption, R&D expenditures, and financial development on key environmental indicators such as CO2 emissions, ecological footprint, and load capacity factor. A central theme is the empirical testing of environmental Kuznets curve (EKC) and load capacity curve (LCC) hypotheses across diverse countries and time periods. The lab employs advanced econometric methods, including ARDL, panel threshold, and Fourier-based models, to analyze long-term and nonlinear relationships in energy-environment-economy dynamics.
Professor Donghyun You's research lab specializes in computational fluid dynamics and turbulence modeling, with a strong focus on unsteady flows in turbomachinery and boundary layer dynamics. The lab investigates tip-leakage flows, vortical structures, and cavitation mechanisms in axial and centrifugal turbomachines using advanced large-eddy simulation (LES) techniques. Key research directions include the development of dynamic subgrid-scale models, the effects of geometric parameters (e.g., tip-gap size), and the influence of surface properties such as hydrophobicity on flow separation, drag, and pressure fluctuations. The lab also develops innovative numerical methods, including immersed boundary techniques on curvilinear grids, to simulate complex flow-structure interactions with high fidelity.
Professor Seok Jin Kim's research lab specializes in hematologic malignancies, with a primary focus on extranodal natural killer/T-cell lymphoma (ENKTL) and diffuse large B-cell lymphoma (DLBCL). The lab investigates optimal treatment strategies, including chemotherapy, radiotherapy, and immunotherapy, with particular emphasis on the role of surgery and immune checkpoint inhibitors like avelumab in improving survival and quality of life. The lab also explores predictive biomarkers such as CA IX and PD-L1 expression to guide personalized therapy in lymphomas and non-small cell lung cancer.
Professor Sheikh Salman Hassan's research lab specializes in next-generation wireless communication systems, with a focus on non-terrestrial networks (NTNs) and integrated space-air-ground networks for 6G. The lab explores intelligent resource allocation, reconfigurable intelligent surfaces (RIS), and mobile edge computing (MEC) using low-Earth orbit (LEO) satellites, CubeSats, and unmanned aerial vehicles (UAVs) to enhance coverage, energy efficiency, and data rates. Key research directions include optimizing trajectory and offloading for UAVs, improving satellite communication in sub-THz and THz bands, and enabling seamless, high-capacity connectivity for maritime and remote users. The lab emphasizes energy-efficient, scalable, and intelligent solutions for ubiquitous connectivity in dynamic and challenging environments.
Professor Akimitsu Okamoto's research lab specializes in the development of novel fluorescent nucleobase analogs and oligonucleotide probes for highly sensitive and selective nucleic acid detection. The lab focuses on designing base-discriminating fluorescent (BDF) nucleosides, excitonic hybridization-sensitive probes (ECHO), and artificial nucleobases for applications in single nucleotide polymorphism (SNP) typing, insertion polymorphism detection, and DNA-mediated charge transport. Their innovative approach enables enzyme-free, rapid, and error-resistant detection of genetic variations using unique photophysical responses such as fluorescence switching and excimer formation.
Professor Kotaro Sugawara's research lab focuses on translational oncology, particularly in gastrointestinal cancers such as esophageal and gastric carcinoma. The lab investigates novel therapeutic strategies, including oncolytic virus therapy combined with immune checkpoint inhibitors, to enhance antitumor immunity and overcome immunosuppressive microenvironments. A key emphasis is placed on identifying and validating predictive biomarkers—especially inflammatory and nutritional markers like GNRI, CRP-derived indices, and Glasgow Prognostic Score—for survival outcomes and treatment response in patients undergoing surgery or chemoradiotherapy. The lab also explores preoperative pulmonary and nutritional status as critical determinants of postoperative survival, aiming to improve patient selection and outcomes in esophageal cancer.
Professor Hideaki Ishii's research lab specializes in networked control systems, distributed algorithms, and stochastic optimization, with a focus on stabilizing systems under limited communication resources. The lab investigates innovative control strategies—such as dwell-time switching and probabilistic algorithms—for linear and nonlinear systems that lack a single quadratic Lyapunov function, addressing nonconvexity challenges in system design. A significant part of the research is dedicated to distributed computation of PageRank-like metrics, drawing connections to multi-agent consensus problems and enabling scalable, decentralized solutions for large-scale networks. The lab also explores the theoretical foundations of information exchange in control and web ranking systems, emphasizing robustness, convergence, and practical implementation under data rate constraints.
Professor Motomu Tanaka's research lab specializes in the development and characterization of biomimetic membrane systems, focusing on bacterial outer membranes and native cell membranes. The lab investigates the structural and mechanical properties of lipid and lipopolysaccharide monolayers using advanced techniques such as X-ray reflectivity, interfacial rheology, and fluorescence labeling. A key research direction involves understanding ion-induced membrane reorganization—particularly calcium-mediated transitions in LPS layers—and designing functional supported membrane platforms that preserve protein orientation and function. The lab also explores bioadhesion mechanisms, especially enhancing receptor-ligand interactions in polymer-spacer-supported membranes for biomedical applications.