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 Kang Hee Ku's research lab specializes in the design and synthesis of functional colloidal particles with precise control over their shape, morphology, and surface properties. The lab focuses on utilizing block copolymers and interfacial engineering to create smart, stimuli-responsive particles such as patchy, Janus, and porous particles that exhibit tunable behavior under light, pH, or solvent stimuli. Key research directions include emulsion-mediated particle fabrication, interfacial assembly, and the development of dynamic materials for advanced applications in drug delivery, catalysis, and responsive materials.
Professor Young Joon Lee's research lab focuses on biomedical imaging, molecular diagnostics, and advanced medical technologies, with a strong emphasis on improving cancer detection and treatment through innovative imaging techniques and molecular analysis. The lab investigates the application of advanced imaging modalities such as CT, MRI, and ultrasound in oncology, particularly in prostate and gastric cancers, while also exploring novel diagnostic tools like deep learning algorithms and sentinel node biopsies. Research spans from preclinical studies to clinical translation, aiming to enhance diagnostic accuracy and surgical outcomes.
Professor Dyjung's research lab focuses on aging-related health promotion, with a primary emphasis on fall prevention, fear of falling, and successful aging among community-dwelling older adults. The lab investigates psychosocial and physical factors influencing older adults’ mobility, quality of life, and independence, while also exploring innovative interventions such as exercise programs, hip protectors, and emerging technologies like the metaverse in nursing education. A key strength lies in evidence-based guideline development and the evaluation of effective, scalable interventions in long-term care and community settings.
Professor Chung-Yeon Hwang's research lab specializes in microbial ecology and environmental microbiology, with a focus on the isolation, characterization, and molecular identification of novel bacterial species from diverse and extreme environments such as marine ecosystems, polar regions, and contaminated sites. The lab employs polyphasic taxonomic approaches, combining phenotypic, chemotaxonomic, and 16S rRNA gene sequence analyses to explore microbial diversity and function. A key research direction involves developing molecular detection methods, such as BIO-PCR assays, for pathogenic and environmentally relevant bacteria, particularly in agricultural and aquatic systems.
Professor Yeojun Yoon's research lab focuses on host-microbe interactions, particularly the role of the microbiota in human health and disease. The lab investigates the gut, respiratory, and salivary microbiomes in relation to metabolic disorders, infectious diseases, and tissue homeostasis. Using advanced sequencing technologies and organoid models, the lab explores microbial community dynamics, host-microbe crosstalk, and translational applications in conditions such as nonalcoholic fatty liver disease, tuberculosis, and severe fever with thrombocytopenia syndrome. The research integrates microbiome analysis with functional and systems-level approaches to uncover pathophysiological mechanisms and potential therapeutic targets.
Professor Sok Sohyune's research lab specializes in integrative and traditional medicine interventions, particularly acupuncture and acupressure therapies, for improving health outcomes in aging populations and specific clinical conditions. The lab focuses on evidence-based evaluation of acupuncture and auricular therapies for insomnia, dysmenorrhea, stroke rehabilitation, and psychosocial factors such as life satisfaction and quality of life in older adults. Research directions emphasize non-pharmacological interventions tailored to geriatric and adolescent populations, with a strong emphasis on randomized controlled trials and health promotion behaviors.
Professor Sin-Hyuk Kang's research lab focuses on neuro-oncology, particularly the molecular mechanisms underlying brain metastasis and glioblastoma pathogenesis. The lab investigates key signaling pathways such as STAT3 in tumor progression, angiogenesis, and therapy resistance, with a strong emphasis on translational approaches using patient-derived glioma stem cells. Innovative therapeutic strategies, including repurposing CNS-penetrant drugs like penflurido, are explored to overcome drug resistance and improve outcomes in aggressive brain tumors. The lab also contributes to neurosurgical safety protocols, emphasizing endoscopic visualization in spinal interventions to minimize complications.
Professor Kun Ha Kim's research lab specializes in cerebrovascular and neurological disorders, with a focus on advanced neuroimaging techniques to improve the diagnosis and understanding of cerebrovascular diseases such as moyamoya disease (MMD) and intracranial atherosclerotic disease (ICAD). The lab investigates vascular pathology using high-resolution vessel wall imaging, diffusion-weighted MRI, and perfusion imaging to assess collateral circulation and predict treatment outcomes in acute stroke. They also explore the role of autoimmune and metabolic factors, such as thyroid autoantibodies, in the pathogenesis of MMD, and examine imaging biomarkers for thyroid nodules to improve cancer detection. Their work bridges clinical neurology, radiology, and molecular imaging to enhance patient stratification and therapeutic decision-making.
Professor Bongjin Kim's research lab specializes in cutting-edge electronic systems and semiconductor technologies, with a strong focus on advanced analog and mixed-signal integrated circuits, including time-to-digital converters, voltage-controlled oscillators, and adaptive phase-locked loops. The lab also explores materials engineering for oxide semiconductor devices, particularly nitrogen-doped indium zinc tin oxide thin-film transistors, aiming to enhance performance and reduce fabrication temperatures. Additionally, the lab investigates governance mechanisms in corporate and regulatory systems, applying systems thinking to understand the interplay between institutional design, deregulation, and organizational performance. This interdisciplinary approach bridges microelectronics innovation with socio-technical systems research.
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 also addresses complex transformations through hybrid discrete-continuous optimization frameworks, advancing the modeling of affine and non-rigid deformations in real-world scenarios.
Professor Suk Jun Kwon's research lab specializes in advanced materials science with a focus on perovskite optoelectronics, nanomaterials for energy storage, and functional nanomaterials for secure authentication. The lab investigates facet-dependent surface passivation in perovskite films to enhance stability and efficiency in solar cells, develops nanostructured carbon materials for high-capacity alkali-metal ion batteries, and pioneers novel physical unclonable functions using molecular self-assembly for hardware security. Their work bridges fundamental surface science with practical applications in renewable energy and cybersecurity.
Professor Dahui Kim's research lab specializes in sustainable materials and bio-based technologies, focusing on electrochemical conversion of CO2 into valuable fuels, marine antifouling coatings using natural polysaccharides like carrageenan, and bioactive compounds from marine algae for health applications. The lab develops innovative, eco-friendly solutions for energy, environmental protection, and biomedical challenges using renewable resources and advanced materials engineering. Key research directions include electrocatalysis for carbon utilization, biopolymer-based functional coatings, and bioactive natural products for metabolic health.
Professor Soyoung Kim's research lab focuses on the biological and translational mechanisms underlying neurodegenerative diseases, cancer immunosurveillance, and metabolic liver disorders. The lab investigates natural compounds such as curcumin and ginsenosides for their neuroprotective and immunomodulatory effects, particularly in neural progenitor cells and natural killer cell function. Additionally, the lab explores the pathophysiology of implant-related sinusitis and metabolic dysfunction-associated steatotic liver disease (MASLD), emphasizing the role of lipid metabolism in tumor microenvironment remodeling and immune suppression. These studies integrate molecular biology, immunology, and clinical translational research to identify novel therapeutic targets.
Professor Byeong Gwan Kim's research lab focuses on gastrointestinal and metabolic diseases, with a strong emphasis on Helicobacter pylori infection, hepatocellular carcinoma (HCC), metabolic syndrome, and nonalcoholic fatty liver disease (NAFLD). The lab investigates host-microbiota interactions, particularly the impact of antibiotic and probiotic therapies on gut microbiota composition, and develops predictive models for disease recurrence and prognosis. Key research directions include identifying biomarkers for early detection and risk stratification in liver and metabolic diseases, as well as exploring the pathophysiological links between sarcopenia, metabolic syndrome, and liver fibrosis.
Professor Sung Mok Kim's research lab specializes in medical imaging technologies and advanced mechatronic systems. The lab focuses on optimizing low-dose and radiation-efficient CT imaging techniques for cardiovascular disease detection, particularly coronary artery calcium scoring and myocardial ischemia assessment using dual-energy CT. In parallel, the lab develops innovative parallel kinematic mechanisms with specialized motion characteristics—such as Schönflies motion and 4-DOF translational-rotational mobility—for applications in robotics, haptics, and surgical assistance. The integration of imaging physics with mechanical design enables the lab to address clinical challenges through both diagnostic imaging innovation and precision engineering solutions.
Professor Soo-Young Kwon's research lab specializes in clinical and translational studies focusing on head and neck pathology, with a strong emphasis on cancer biology, inflammatory diseases, and rare congenital disorders. The lab investigates molecular mechanisms underlying diseases such as squamous cell carcinoma, Kikuchi disease, and salivary gland agenesis, using histopathological, immunohistochemical, and molecular techniques. Key research directions include the role of extracellular matrix proteins like laminin 332 in tumor progression, the impact of spinal pathology on neurological outcomes, and the detection of occult metastasis in lymph nodes. The lab integrates clinical imaging, biomarker analysis, and in vitro models to advance diagnostic and therapeutic strategies.
Professor Young-Jin Kim's research lab specializes in the development of advanced functional materials and smart sensing technologies for sustainable electronics and biomedical applications. Key research directions include the design of stimuli-responsive nanomaterials for environmental and health monitoring, such as colorimetric sensors for heavy metals and self-cleaning acoustic sensors for wearable human-machine interfaces. The lab also pioneers eco-friendly, laser-based fabrication techniques—like laser-induced graphene (LIG)—for creating flexible, conductive, and patternable materials from natural substrates. Additionally, the group explores intelligent energy systems, including dynamic modeling of variable-speed heat pumps for grid integration and energy efficiency in smart buildings.
Professor Jun-Hyuk Jang's research lab specializes in speech and audio signal processing, with a focus on robust voice activity detection (VAD), speech enhancement, and non-invasive sleep stage classification. The lab develops advanced statistical models—such as complex Laplacian, Gamma, and generalized gamma distributions—for analyzing speech and image transform coefficients, particularly in the DCT and DFT domains. A key innovation is the use of warped transforms (e.g., WDCT) to better model perceptually relevant frequency characteristics under noisy conditions. The lab also pioneers multi-modal, non-contact sensing techniques using radar and audio for clinical-grade sleep monitoring, especially for patients with sleep disorders.
Professor Woo-Ki Kim's research lab focuses on the molecular mechanisms linking dietary lipids, mitochondrial metabolism, and immune regulation, particularly in innate and adaptive immune cells. The lab investigates how specific fatty acids—such as n-3 polyunsaturated fatty acids (PUFAs), medium-chain triglycerides (MCTs), and bioactive lipids from natural sources like turmeric, rice bran oil, and neohesperidin—modulate immune cell function through lipid raft organization, mitochondrial respiration, and metabolic reprogramming. A central theme is the role of membrane microdomains and mitochondrial energy metabolism in controlling pro- and anti-inflammatory responses, with translational applications in developing functional foods and nutraceuticals for immune-related diseases. The lab integrates in vitro cell models, in vivo disease models, and advanced metabolic phenotyping techniques such as oxygen consumption rate (OCR) analysis to dissect lipid-immune crosstalk.
Professor Joonmyoung Choi's research lab specializes in the design and simulation of smart functional materials for sustainable energy and advanced electronics. The lab focuses on photo-responsive polymers, self-powered energy harvesters, and next-generation battery technologies, with an emphasis on molecular-level understanding and performance optimization. Key research directions include stimuli-responsive materials for flexible displays, nanogenerators based on carbon nanotube yarns, and gel polymer electrolytes for safe, high-performance wearable batteries.