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 Byeong Moon Kim's research lab specializes in the design and synthesis of magnetic nanomaterials, particularly transition metal-iron oxide heterodimer nanocrystals, for highly efficient and reusable catalytic applications. The lab focuses on developing sustainable, magnetically separable nanocatalysts for selective organic transformations such as Suzuki coupling, nitroarene reduction, and reductive amination, emphasizing chemoselectivity, recyclability, and mild reaction conditions. A key innovation lies in integrating magnetic Fe₃O₄ components for easy catalyst recovery using external magnets, enabling practical and scalable applications in synthetic chemistry.
Professor Seongjae Cho's research lab specializes in next-generation semiconductor devices and advanced nanomaterials for high-performance, low-power electronics and energy storage. The lab focuses on innovative transistor architectures such as junctionless nanowire FETs, gate-all-around tunneling FETs, and Ge/GaAs heterojunction TFETs, emphasizing their radio-frequency and high-frequency performance through advanced simulation and modeling. It also explores sustainable energy solutions using biowaste-derived nanomaterials, particularly for supercapacitors, aiming to develop eco-friendly and cost-effective energy storage systems. The lab bridges fundamental device physics with practical applications in digital electronics, optoelectronics, and green energy technologies.
Professor Jeong Il Yu's research lab specializes in translational oncology, focusing on improving outcomes for patients with aggressive and advanced-stage cancers, particularly hepatocellular carcinoma (HCC) and inflammatory breast cancer. The lab investigates novel radiotherapy strategies, including proton beam and photon therapy combined with molecular modulators like HDAC inhibitors, to enhance tumor control and survival. A key focus is on developing prognostic models and identifying biomarkers—such as SAR/hNLR and PVTT classification—to guide personalized treatment decisions and overcome resistance to immunotherapy. The lab also explores optimal sequencing of locoregional therapies, such as TACE and radiation, to maximize therapeutic efficacy.
Professor Jieun Kim's research lab specializes in the development of functional biomaterials and antimicrobial peptides for medical applications. The lab focuses on designing smart polymeric systems for colorimetric and fluorescent sensing, particularly using polydiacetylene-based films for diagnostic imaging. A key research direction involves engineering short, potent antimicrobial peptides to combat multidrug-resistant Gram-negative bacteria, with an emphasis on membrane-targeting mechanisms. Additionally, the lab investigates the clinical and microbiological aspects of Clostridioides difficile infections, including pathogen burden and virulence factors in patient gut microbiomes.
Professor Jong-Hee Kim's research lab specializes in materials science and biomedical engineering, focusing on the development of advanced functional materials and their applications in energy, electronics, and health. Key research directions include selective wet etching of III-V semiconductors for high-performance optoelectronic devices, synthesis and characterization of magnetic nanoparticles for biomedical and environmental applications, and the investigation of surface treatments and epitaxial growth for high-quality GaN films in power and light-emitting devices. The lab also explores the synergistic effects of exercise and bioactive compounds on metabolic health, as well as the protective mechanisms of exercise against chemotherapy-induced muscle toxicity, highlighting a strong translational focus on improving human health through materials and physiological interventions.
Professor Donghwa Chung's research lab specializes in food science and bioprocessing, focusing on the development and characterization of functional food ingredients from marine and plant-based sources. Key research directions include the extraction and application of bioactive compounds—such as tyrosinase inhibitors from sea cucumbers and fermented seaweeds—for health-promoting and cosmetic applications. The lab also investigates the physicochemical properties of probiotic and fermented powders, including moisture sorption, glass transition, and flowability, to enhance product stability and processing efficiency. Additionally, advanced processing techniques like electro-coextrusion for macrocapsule fabrication and fluidized-bed granulation are employed to improve the functionality and delivery of bioactive ingredients.
Professor Serk In Park's research lab focuses on the molecular mechanisms underlying prostate cancer progression and metastasis, with a particular emphasis on the role of Src family kinases (SFKs) and tumor microenvironment interactions. The lab investigates how signaling pathways involving SFKs, such as Src and Lyn, contribute to tumor growth, angiogenesis, and metastatic spread—especially to bone. Using preclinical mouse models, including orthotopic and xenograft systems, the lab explores the therapeutic potential of kinase inhibitors like dasatinib and examines how tumor-derived factors such as PTHrP modulate bone marrow-derived immune cells to promote metastasis. The research also extends to other cancers, including meningioma, where FOXM1 is identified as a key regulator of oncogenic signaling.
Professor Woongsup Lee's research lab specializes in intelligent wireless communication systems and energy-efficient network optimization, with a strong focus on applying deep learning and game theory to solve critical challenges in next-generation wireless networks. The lab investigates resource allocation, power control, and spectrum sensing in cognitive radio networks, device-to-device communications, and electric vehicle charging systems, emphasizing real-time performance, fairness, and interference management. A key research direction involves leveraging convolutional and deep neural networks to autonomously learn optimal transmission strategies from data, reducing computational complexity and signaling overhead. The lab also explores cooperative and distributed frameworks that enable scalable and robust operation in dynamic wireless environments.
Professor Jae Geun Kim's research lab specializes in the design and synthesis of advanced nanomaterials for energy and environmental applications, with a strong focus on nanostructured metal oxides and hybrid composites. The lab investigates the relationship between material morphology, electronic structure, and functional performance, particularly in lithium-ion batteries, photocatalysis, and soil environmental systems. Key research directions include the development of one-dimensional nanofibers, doping strategies for enhanced conductivity, and sustainable educational programs integrating environmental science and ecological literacy. The lab combines materials synthesis, electrochemical characterization, and real-world applications to address challenges in energy storage and environmental sustainability.
Professor Byung Chul Lee's research lab specializes in advanced micro- and nanoscale transducer technologies, with a focus on biomedical sensing and ultrasound imaging. The lab develops innovative electrochemical and ultrasonic devices—such as interdigitated microelectrodes for sensitive biosensing and capacitive micromachined ultrasonic transducers (CMUTs) with embedded springs—for high-performance, low-cost medical diagnostics. Key research directions include dual-frequency ultrasound generation, 3D freehand ultrasound reconstruction using low-cost sensors, and minimizing interference in biosensors through intelligent signal and buffer control. The lab bridges microfabrication, acoustics, and biomedical engineering to enable next-generation point-of-care diagnostic tools.
Professor Sanghoo Park's research lab specializes in atmospheric-pressure plasmas, with a focus on weakly ionized gas dynamics, electron diagnostics, and plasma-liquid interactions. The lab investigates fundamental plasma phenomena such as electric wind, electron-neutral bremsstrahlung, and nitrogen fixation, using advanced optical diagnostics and pulsed plasma systems. Key research directions include plasma diagnostics for electron density and temperature, control of reactive species (e.g., NOx, O3) in air discharges, and applications in medicine, agriculture, and food safety. The lab emphasizes experimental and theoretical understanding of collisional, non-equilibrium plasmas under ambient conditions.
Professor Jinmoo Heo's research lab focuses on the psychological and social well-being of older adults, with a central emphasis on how leisure activities—particularly serious leisure and physical activity—contribute to life satisfaction, psychological well-being, and healthy aging. The lab employs mixed-methods approaches, including longitudinal surveys, experience sampling, and in-depth interviews, to explore the mediating roles of social support, loneliness, and flow in shaping well-being outcomes. Key research directions include the impact of structured leisure participation, such as senior sporting events and community-based activities, on emotional health and resilience in later life. The lab also investigates how technology use and social connectedness intersect with well-being among older adults in diverse cultural contexts.
Professor Hyoungsoo Kim's research lab specializes in interfacial phenomena and microfluidics, focusing on the dynamics of droplet evaporation, Marangoni flows, and surface-mediated assembly processes. The lab investigates how surfactants, polymers, and interfacial forces govern the formation of uniform coatings, patterned deposits, and functional nanofilms. By combining experimental visualization, advanced velocimetry (e.g., Tomo-PIV and 3D-PTV), and theoretical modeling, the group explores fundamental mechanisms in multiphase systems for applications in microfluidics, separation technologies, and materials fabrication.
Professor Wonse Park's research lab specializes in the application of deep learning and artificial intelligence in oral and maxillofacial diagnostics, with a focus on improving the accuracy and efficiency of dental implant identification and classification using medical imaging. The lab conducts large-scale, multicenter studies involving panoramic and periapical radiographs to develop and validate AI algorithms that support clinical decision-making. Research also extends to the molecular biology of estrogen receptors in ovarian cancer and the diagnostic challenges of temporomandibular disorders, highlighting a multidisciplinary approach combining AI, radiology, and biomedical research. The lab is committed to translating advanced computational methods into practical clinical tools, including mobile-based emergency diagnostic systems.
Professor Yoo Kyoung Park's research lab focuses on the role of bioactive compounds from natural sources—such as grapes, grape products, and medicinal mushrooms like Chaga—in modulating oxidative stress, inflammation, and cardiovascular health. The lab investigates how dietary components influence biomarkers of chronic disease, particularly hypertension, insulin resistance, and thyroid function, using clinical trials and animal models. A central theme is the translation of antioxidant and anti-inflammatory properties of whole foods into measurable health benefits. The lab also explores the impact of dietary patterns, such as high-fructose or high-fat diets, on metabolic and cardiovascular outcomes in preclinical models.
Professor Ki-Yong Oh's research lab specializes in the development of advanced monitoring systems and physics-informed modeling for sustainable energy technologies. The lab focuses on structural health monitoring of wind turbine components, offshore wind foundation design, and thermal runaway prediction in lithium-ion batteries. By integrating physics-based models with data-driven algorithms such as multiphysics-informed neural networks, the lab aims to enhance the safety, reliability, and efficiency of renewable energy systems and energy storage devices.
Professor Jung-Kyu Lee's research lab specializes in advanced electronic materials and devices, with a primary focus on resistive random-access memory (RRAM) systems based on titanium oxide and related oxides. The lab investigates fundamental mechanisms of resistive switching, current conduction, and low-frequency noise phenomena, particularly in amorphous TiOx-based RRAMs, to understand and optimize device reliability and performance. Additionally, the lab explores innovative 3D localization algorithms for positioning systems and develops novel gas-sensing technologies using metal-oxide materials for environmental monitoring.
Professor Naoto Chatani's research lab specializes in transition-metal-catalyzed C-H activation and functionalization, with a strong focus on regioselective transformations using directing groups. The lab develops innovative catalytic systems—particularly based on rhodium and ruthenium complexes—that enable site-specific functionalization of C-H bonds in complex organic molecules. A key research direction involves the cleavage of C-CN bonds and carbon-carbon triple bonds to form unique organometallic intermediates, facilitating the synthesis of structurally diverse compounds. The lab also emphasizes the design of removable directing groups to streamline synthesis and improve atom economy.
Professor Seungryong Kim's research lab specializes in computer vision and deep learning, with a primary focus on dense correspondence estimation under challenging conditions such as geometric deformations, intra-class variations, and multi-modal imaging. The lab develops innovative neural network architectures—such as fully convolutional self-similarity (FCSS), dense adaptive self-correlation (DASC), and recurrent transformer networks (RTNs)—to achieve robust and precise matching across semantically similar images. Their work emphasizes learning invariant representations through self-similarity and adaptive correlation mechanisms, enabling state-of-the-art performance in tasks like optical flow, stereo matching, and cross-modality correspondence. The lab's research bridges the gap between geometric and semantic understanding in vision systems.
Professor Dong Woo Kim's research lab specializes in advanced functional materials for optoelectronic and smart responsive systems. The lab focuses on developing high-performance organic light-emitting diodes (OLEDs) through innovative light-outcoupling structures using high-refractive-index polymers and nanomaterials, while also exploring mechanophores like spiropyran for real-time stress/strain sensing in polymers. Another key direction involves plasma-assisted deposition techniques to fabricate functional polymer films—such as polydopamine analogs—preserving critical functional groups for applications in adhesion, sensing, and surface engineering. The lab integrates materials chemistry, nanotechnology, and surface science to design multifunctional materials with tailored optical, electrical, and mechanical properties.