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 Hyun-Yong Choi's research lab specializes in ultrafast quantum dynamics and light-matter interactions in low-dimensional quantum materials, with a focus on two-dimensional transition metal dichalcogenides, topological insulators, and graphene-based heterostructures. The lab employs advanced ultrafast spectroscopy techniques—particularly pump-probe and terahertz spectroscopy—to explore coherent quantum phenomena such as exciton quantum beats, optical Stark effects, and interband dynamics. A central theme is the control and manipulation of coherent responses in quantum materials, aiming to develop ultrafast optical switches and nonlinear terahertz optoelectronic devices. The lab also investigates the interplay between surface and bulk electronic states in topological materials, revealing time-resolved competition between scattering and conductivity mechanisms.
Professor Jaemoon Ko's research lab focuses on the tumor microenvironment, immune cell crosstalk, and molecular pathogenesis in lung and gastrointestinal malignancies. Key research directions include the regulation of immune checkpoint molecules like PD-L1 by oncogenic drivers such as EML4-ALK, the plasticity of innate lymphoid cells in tumor progression, and the prognostic significance of tissue-resident immune cells like CD103+ T cells in non-small cell lung cancer. The lab also develops diagnostic algorithms for accurate subtyping of small biopsies and investigates the role of metabolic mutations in glioblastoma. These studies aim to improve precision oncology through integrated pathological and immunological insights.
Professor Yoon, Tai Hyun's research lab specializes in ultrafast optical spectroscopy, quantum optics, and precision metrology, with a focus on exploring light-matter interactions at the quantum level. The lab investigates phenomena such as laser-induced birefringence, wave-particle duality, and two-photon transitions in cold atoms and rare-earth doped systems, leveraging advanced laser techniques like femtosecond frequency combs and dual-comb spectroscopy. Key research directions include high-resolution spectroscopy, quantum coherence control, and the development of novel optical measurement methods for nanometrology and frequency stabilization. The lab also pioneers experimental approaches to test foundational principles of quantum mechanics, such as Bohr's complementarity, using parametric down-conversion and coherent control schemes.
Professor Hyun Jin Kim's research lab specializes in the design and application of advanced nanomaterials and biomolecular systems for biomedical and sustainable chemical applications. Key research directions include the development of stimuli-responsive nanoarchitectures for targeted siRNA delivery, light-driven redox catalysis using enzyme-cofactor systems and carbon nanodots, and the engineering of synthetic polymers for efficient mRNA delivery in genome editing. The lab also explores the emerging photocatalytic properties of biological cofactors like NAD⁺, expanding their functional roles beyond cellular metabolism.
Professor Young-Suk Kim's research lab focuses on food science and bioactive compounds, with a strong emphasis on the characterization of volatile and bioactive constituents in traditional fermented foods such as soy sauce, doenjang, and pitaya. The lab investigates the relationship between sensory and nutritional quality, antioxidant activity, and health-promoting properties of plant-based extracts, particularly from underutilized or by-product components like fruit peels. Research also extends to understanding the role of specific metabolites in fermentation processes and their implications for food quality and human health. The lab employs advanced analytical techniques such as SPME, SAFE, and HPLC to identify and quantify key flavor and bioactive compounds.
Professor Sung Ho Kang's research lab specializes in advanced photonic materials and integrated systems, with a focus on metamaterial-based perfect absorbers, plasmonic nanostructures, and their applications in infrared sensing, imaging, and Internet of Things (IoT)-connected devices. The lab explores ultranarrow band mid-infrared absorbers for high-resolution spectroscopy, develops intelligent vehicular systems with voice-based virtual assistants, and investigates the integration of microfabricated photonic devices with cloud and IoT technologies. Research also extends to optimizing internal corporate processes—particularly new product development—as a mediating factor in linking market orientation to firm performance, reflecting a multidisciplinary approach combining engineering, materials science, and business innovation.
Professor Bong Kyu Choi's research lab focuses on the molecular mechanisms underlying bacterial pathogenesis and host-microbe interactions, particularly in periodontal and neurodegenerative diseases. The lab investigates the role of bacterial virulence factors—such as extracellular vesicles, quorum-sensing molecules like AI-2, and misfolded proteins like α-synuclein—in driving chronic inflammation, bone loss, and neurotoxicity. Key research directions include the pathogenesis of periodontitis, the contribution of spirochetes and biofilms to disease progression, and the systemic effects of periodontal pathogens on bone metabolism and neurodegeneration. The lab employs molecular microbiology, host-pathogen interaction studies, and advanced molecular techniques to explore microbial diversity and pathogenicity in complex host environments.
Professor Doug-Young Ryu's research lab focuses on the molecular mechanisms underlying disease pathogenesis, with a strong emphasis on toxicology, liver diseases, and host-pathogen interactions. The lab investigates the biological impacts of nanomaterials—particularly silver nanoparticles—on oxidative stress, genotoxicity, and apoptosis, while also exploring the roles of endoplasmic reticulum stress and autophagy in nonalcoholic fatty liver disease. Additionally, the lab develops novel subunit vaccines against porcine respiratory pathogens and studies the genomics and evolutionary adaptations of bat species, including Myotis rufoniger. The research integrates molecular biology, genomics, and translational models to understand disease mechanisms and develop preventive strategies.
Professor Inho Kim's research lab specializes in hematology and bone marrow transplantation, with a focus on understanding the pathophysiology and clinical outcomes of hematologic malignancies. Key research directions include chemotherapy-induced peripheral neuropathy, oral mucositis in stem cell transplant patients, and the role of imaging and biomarkers in lymphoma and bone marrow failure. The lab also investigates genetic factors, such as vitamin D receptor polymorphisms, that influence outcomes in hematopoietic stem cell transplantation.
Professor Yun Ho Lee's research lab specializes in the development and mechanistic study of transition metal complexes, particularly iron and nickel, for sustainable chemical transformations. The lab focuses on the fundamental chemistry of low-valent and open-shell metal centers, exploring their reactivity toward small molecules such as CO₂, CO, N₂, and H₂. Key research directions include the design of pincer-ligated metal complexes for catalytic CO₂ fixation, C–O bond activation, and the simulation of biological metalloenzyme sites like those in carbon monoxide dehydrogenase (CODH). The lab combines synthetic chemistry, X-ray crystallography, and spectroscopic techniques to uncover unique reactivity patterns and to develop green chemical processes for environmental and energy applications.
Professor Gil Ho Yoon's research lab specializes in advanced topology optimization methods for multiphysics and structural-acoustic systems, focusing on innovative formulations that overcome numerical challenges in complex coupled problems. The lab develops robust optimization frameworks—particularly the Element Connectivity Parameterization (ECP) method—that enable efficient design of elastic, thermal, and acoustic-structure interaction systems without relying on traditional density-based approaches. Their work emphasizes seamless integration with commercial finite element software, enabling practical application in nonlinear and multiphysics environments. The lab also pioneers monolithic and gradient-based formulations to improve computational efficiency and accuracy in fluid-structure and vibro-acoustic interactions.
Professor Young A Kim's research lab focuses on molecular oncology and cancer biology, with a particular emphasis on thyroid cancer pathogenesis, tumor microenvironment, and signaling pathways driving tumor progression. The lab investigates genomic and transcriptomic alterations in aggressive thyroid cancers such as anaplastic thyroid cancer (ATC) and advanced differentiated thyroid cancers, identifying key drivers like TERT, AKT1, and CDKN2A, as well as immune checkpoint molecules such as PD-L1. The lab also explores epigenetic and mitotic regulation mechanisms, including the role of histone modifications and the chromosomal passenger complex in cancer cell division. Additionally, the lab contributes to translational research by evaluating prognostic biomarkers and therapeutic targets in breast cancer and composite materials for impact resistance, reflecting a multidisciplinary approach to cancer and biomedical materials research.
Professor Sung-Il Kang's research lab specializes in sustainable materials and environmental biotechnology, focusing on the development of advanced biochar and metal–organic frameworks (MOFs) for environmental remediation and energy applications. The lab investigates microbial interactions in urban environments, particularly the skin microbiome and its response to urban infrastructure, while also exploring enzymatic and chemical strategies for efficient biomass conversion. A key emphasis is placed on optimizing low-temperature processes such as hydrothermal carbonization and pyrolysis for renewable fuel production, alongside designing highly selective and stable MOFs for removing radioactive contaminants and antibiotics from water.
Professor Sungeui Yoon's research lab specializes in high-performance geometric computing, focusing on scalable algorithms for interactive visualization, rendering, and simulation of massive 3D models. The lab develops innovative data structures—such as clustered hierarchical progressive meshes (CHPM) and cache-oblivious layouts—to optimize memory access patterns and accelerate geometric processing on modern hardware. Key research directions include view-dependent rendering, collision detection, and bounding volume hierarchy (BVH) construction for dynamic and large-scale scenes, with an emphasis on out-of-core computation and runtime efficiency. The lab's work bridges theoretical algorithm design with practical systems for real-time graphics and visualization.
Professor Seungjun Chung's research lab specializes in the development of flexible, stretchable, and wearable electronic systems with a focus on advanced materials and scalable fabrication techniques. The lab pioneers innovations in soft thermoelectric generators, inkjet-printed conductive electrodes, and 2D transition-metal dichalcogenides (TMDs) for next-generation electronics. Key research directions include interface engineering of 2D materials, intrinsically stretchable interconnects, and low-temperature, large-area processing for transparent and flexible devices. The lab integrates materials science, nanotechnology, and microfabrication to enable high-performance, conformal electronics for real-world applications.
Professor Chanyoung Park's research lab specializes in developing advanced machine learning and reinforcement learning techniques for complex, real-world systems, with a strong focus on multi-agent and graph-based modeling. The lab explores unsupervised and self-supervised representation learning for attributed and multiplex networks, as well as innovative applications in urban air mobility, UAV-based mobile access networks, and intelligent recommendation systems. By integrating principles from deep learning, metric learning, and quantum computing, the lab aims to build scalable, robust, and collaborative AI systems for dynamic environments. Their work emphasizes global graph structure modeling, user-item relationship representation, and efficient multi-UAV coordination through advanced MARL frameworks.
Professor Wookgeun Seo's research lab specializes in cerebrovascular disease, with a focus on stroke mechanisms, biomarker discovery, and advanced medical imaging. The lab investigates the pathophysiology of moyamoya disease, cerebral microbleeds, and atherosclerosis in ischemic stroke, integrating metabolomics, vascular imaging, and machine learning for improved diagnosis and prognosis. Key research directions include identifying novel biomarkers for cardioembolic stroke, evaluating the impact of antiplatelet therapy, and developing AI-driven tools for facial palsy assessment. The lab emphasizes translational research, bridging clinical data with cutting-edge technologies to enhance stroke prevention and patient outcomes.
Professor Sung Hwan Seo's research lab focuses on the intersection of metabolic diseases and their systemic complications, with a primary emphasis on diabetes mellitus and its links to cardiovascular disease, cancer, and endocrine disorders. The lab investigates the role of glycemic variability, glucocorticoid-induced hyperglycemia, and metabolic syndrome in disease progression, while also exploring protective factors such as bilirubin in cardiovascular outcomes. A key research direction involves unraveling the biological mechanisms connecting insulin resistance, hyperinsulinemia, and increased cancer risk. The lab integrates epidemiological data with clinical and biochemical analyses to identify modifiable risk factors and improve preventive strategies.
Professor Seung Goo Lee's research lab specializes in advanced functional materials and flexible electronics, with a focus on smart surfaces, wearable sensors, and electronic skin (e-skin) technologies. The lab develops stimuli-responsive materials—such as elastomeric smart windows, tunable wettability surfaces, and transparent superhydrophobic coatings—through innovative fabrication techniques like replica molding, surface wrinkling, and layer-by-layer assembly. A central theme is the integration of mechanical tunability, optical control, and multifunctionality (e.g., self-cleaning, antireflection, thermochromism) for next-generation wearable and interactive devices. The lab also pioneers stretchable, multimodal e-skin systems capable of sensing touch, texture, and material properties with human-like sensitivity.
Professor Gun-Jin Yoon's research lab specializes in advanced materials and structural mechanics, focusing on the development of intelligent material models, smart sensing materials, and multifunctional polymeric systems. The lab explores constitutive modeling of complex material behavior using machine learning techniques, such as neural networks and diffusion models, for microstructure reconstruction and mechanical response prediction. Key research directions include mechanoluminescent sensors, vitrimeric polymers with self-healing capabilities, and micromechanical modeling of nanocomposites with interfacial effects. The lab also advances structural health monitoring through innovative damage detection algorithms and sensor integration strategies.