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 Du-Jin Ryu's research lab specializes in financial economics and market microstructure, with a focus on asset pricing, investor behavior, and the impact of information asymmetry in financial markets. The lab investigates the role of institutional and retail investor trading behavior, the information content of derivatives markets, and the pricing implications of ESG disclosures and green finance. Recent work also explores blockchain applications in supply chains and the dynamics of volatility and spillovers in sustainable finance instruments such as green bonds and ESG-linked equities. The lab combines advanced econometric methods with high-frequency transaction data to analyze market efficiency and transparency.
Professor Hyun-Seok Kim's research lab focuses on plant physiological ecology, with a strong emphasis on transpiration dynamics, tree adaptation to arid environments, and the integration of field measurements with ecological modeling. The lab specializes in global-scale data synthesis through initiatives like SAPFLUXNET, advancing our understanding of vegetation–atmosphere interactions and ecosystem resilience. It also explores plant identification using computer vision and molecular mechanisms underlying drug response in model organisms, reflecting a multidisciplinary approach bridging ecology, environmental science, and bioinformatics. The lab’s work spans from molecular genetics to landscape-scale ecological patterns, with applications in climate resilience and sustainable resource management.
Professor Kyu Tae Lee's research lab specializes in gastrointestinal and pancreatic malignancies, with a focus on early detection, biomarker discovery, and molecular mechanisms underlying tumor progression. The lab investigates tumor markers such as CA 19-9 and inflammatory mediators like COX-2 and iNOS to improve diagnostic accuracy and understand the biological behavior of pancreatic and biliary tract cancers. Additionally, the lab explores interventional radiology techniques, such as percutaneous cholecystostomy, for managing acute complications in high-risk patients.
Professor Ji Eun Nam's research lab focuses on molecular oncology and minimally invasive gynecological surgery, with a strong emphasis on microRNA regulation in ovarian cancer and cancer stem cells. The lab investigates biomarkers such as p16 and Ki-67 for cervical intraepithelial neoplasia and high-risk HPV, and explores advanced imaging techniques like 64-slice CT coronary angiography for plaque characterization. Additionally, the lab develops innovative electrochemical biosensors for ultrasensitive protein detection using DNA aptamers and nanoparticle amplification strategies.
Professor Kyungwan Kim's research lab specializes in advanced materials and dynamic structural characterization, focusing on the synthesis and properties of novel nanomaterials, including graphene-based systems and silicon nanostructures, as well as the real-time structural dynamics of soft matter and biomolecules. The lab employs cutting-edge ultrafast x-ray scattering and spectroscopic techniques to probe transient states in liquids, amorphous phases, and biological macromolecules under extreme conditions. Key research directions include the formation and evolution of hydrogen-bonded networks in supercooled water, defect engineering in 2D materials, and the development of optoelectronic and memory devices based on conjugated organic semiconductors. The lab also pioneers scalable synthesis methods for high-performance nanomaterials with tailored electronic and structural properties.
Professor Eun Ju Jo's research lab focuses on the pathogenesis, diagnosis, and biomarker discovery in chronic liver diseases, particularly hepatitis B virus (HBV)-related and non-alcoholic fatty liver disease (NAFLD)-associated liver cirrhosis and hepatocellular carcinoma (HCC). The lab employs advanced molecular and metagenomic techniques to explore microbial dysbiosis in the circulation as potential diagnostic indicators, while also investigating epigenetic regulation of cancer-related genes such as fibulin-3 in tumor progression. A key research direction involves validating noninvasive biomarkers—like the fatty liver index and liver stiffness— for early detection and risk stratification in liver disease. The lab’s work bridges clinical hepatology with molecular diagnostics, aiming to support national and global goals for viral hepatitis elimination and improved liver disease management.
Professor Sang-Hoon Kim's research lab focuses on molecular and cellular mechanisms underlying critical biological processes, including cell cycle regulation, sensory transduction, and intercellular communication via extracellular vesicles. The lab investigates key regulatory proteins such as Mad2 and TRPA1 in cellular checkpoints and sensory signaling, while also exploring the functional roles of milk-derived exosomes in cellular physiology. Additionally, the lab engages in applied research in plant pathology, particularly in identifying and characterizing disease resistance mechanisms in pepper crops. These diverse research directions reflect a strong emphasis on molecular mechanisms with translational implications in human health and agricultural biotechnology.
Professor Jun Hyuk Moon's research lab specializes in the design and fabrication of advanced functional materials, particularly focusing on three-dimensional photonic crystals, hierarchical porous structures, and nanostructured materials for energy and environmental applications. The lab pioneers innovative lithographic and templating techniques—such as multi-beam interference lithography and colloidal templating—to create defect-free, ordered micro- and mesostructures with precise control over morphology and optical properties. Key research directions include the development of photonic crystals for optical sensing, dye-sensitized solar cells with enhanced light scattering, and electrochemical catalysts for selective methane conversion to methanol. The lab also explores stimuli-responsive materials like hydrogels and polymer-dispersed liquid crystals for tunable photonic devices.
Professor Chungkil Park's research lab specializes in mathematical physics and applied nonlinear analysis, focusing on the stability of functional equations in Banach algebras, soliton solutions in nonlinear partial differential equations, and fluid dynamics involving nanofluids, micropolar fluids, and MHD flows. The lab also explores advanced applications in biomedical engineering and blockchain-integrated healthcare systems, particularly in data security and smart monitoring. Current work emphasizes analytical and numerical solutions to complex fluid flow problems under porous, radiative, and convective conditions, alongside the development of exact solutions for integrable systems.
Professor Moo Hyun Oh's research lab specializes in the design, synthesis, and functional transformation of metal-organic frameworks (MOFs) and coordination polymers with tailored structures and properties. The lab focuses on advanced MOF architectures such as core-shell, hollow, and heterostructured MOFs through controlled growth, etching, and ion-exchange strategies. Key research directions include the development of multifunctional nanomaterials for catalysis, energy applications, and environmental remediation via precise control of morphology, composition, and porosity.
Professor Chang Wook Jeong's research lab specializes in urological interventions and genitourinary oncology, with a strong focus on improving surgical outcomes and personalized treatment strategies. The lab develops and validates predictive scoring systems—such as the S-ReSC score—for percutaneous nephrolithotomy and creates nomograms using CT data to enhance stone disease management. It also investigates medical therapies for chronic prostatitis and employs advanced imaging techniques to improve prostate volume assessment. Additionally, the lab contributes to translational research through the SUPER-GUC platform, integrating clinical outcomes, quality of life, and biomarker discovery in genitourinary cancers.
Professor Jaehyeong Kim's research lab focuses on inflammatory lung diseases, with a particular emphasis on the pathophysiological roles of immune cells and proteolytic enzymes such as matrix metalloproteinase-9 (MMP-9) in conditions like ventilator-induced lung injury and bacterial pneumonia. The lab investigates molecular mechanisms underlying neutrophilic inflammation, macrophage function, and tissue remodeling, often using rodent models and clinical samples. Additional research interests include the impact of environmental and therapeutic interventions—such as gamma irradiation and PARP1 modulation—on disease progression and tissue injury. The lab also explores complications from medical and cosmetic procedures, including non-thrombotic pulmonary embolism due to dermal fillers.
Professor Junho Lee's research lab focuses on molecular and cellular mechanisms underlying neurodegenerative diseases, mitochondrial dysfunction, and plant flowering regulation. The lab investigates the role of amyloid-beta in mitochondrial toxicity and neuronal apoptosis, explores the regulation of flowering time through transcription factors like SOC1 and their interaction with environmental and hormonal signals, and develops advanced functional materials such as thermoelectric polymers for energy applications. The integration of molecular biology, neuroscience, and materials science defines the interdisciplinary nature of the lab's research.
Professor Kyung Han Lee's research lab specializes in molecular imaging and nuclear medicine, with a focus on understanding metabolic reprogramming in cancer and inflammatory diseases using PET tracers such as ¹⁸F-FDG. The lab investigates how physiological and pharmacological factors—like anesthesia, fasting, pH changes, and growth factor signaling—affect glucose metabolism in tumor and immune cells. A key research direction involves applying imaging techniques to monitor treatment response, including apoptosis imaging in ischemic conditions and metabolic changes following vaccination. The lab also explores the role of key metabolic enzymes like hexokinase in regulating tumor glycolysis and therapeutic resistance.
Professor Sae Hoon Kim's research lab specializes in shoulder surgery and orthopedic biomechanics, with a primary focus on rotator cuff repair outcomes. The lab investigates anatomical and functional results following rotator cuff surgery, examining factors such as age, preoperative stiffness, repair tension, implant type (e.g., bioabsorbable vs. metal anchors), and postoperative pain management. Their work combines clinical outcomes with advanced imaging techniques like computed tomographic arthrography (CTA) to assess tendon healing and structural integrity. The lab emphasizes evidence-based approaches through randomized trials, cohort studies, and case series to optimize surgical techniques and patient recovery.
Professor Sun-Young Lee's research lab focuses on the molecular and cellular mechanisms underlying cancer progression, angiogenesis, and tumor microenvironment regulation. Key research directions include the extracellular regulation of growth factors such as VEGF by metalloproteinases, the role of cancer-associated genes like FAM83A in therapy resistance, and the biomechanical interactions between vascular cells and their microenvironment. The lab integrates advanced imaging techniques, including atomic force microscopy and functionalized force imaging, to study receptor-ligand dynamics and cellular mechanics at the nanoscale.
Professor Gwang-Jo Kim's research lab specializes in cybersecurity and privacy-preserving technologies, with a strong focus on cryptographic protocols, secure authentication, and privacy-enhancing systems. The lab explores advanced topics such as fair non-repudiation protocols, secure Internet voting systems using blind signatures and mix-nets, and the design of cryptographically robust S-boxes for block ciphers like DES. Additionally, the lab investigates the application of deep learning in intrusion detection systems, emphasizing feature learning and model robustness against sophisticated cyber threats.
Professor Youngmi Lee's research lab specializes in the development of advanced electrochemical sensors and nanomaterials for biomedical and energy applications. Key research directions include the design of miniaturized amperometric microsensors for real-time detection of biologically relevant gases such as nitric oxide and carbon monoxide, as well as the synthesis and characterization of novel nanostructured catalysts—particularly Pd/Au core-shell nanoparticles—for the oxygen reduction reaction (ORR). The lab integrates advanced microscopy techniques, such as scanning electrochemical/optical microscopy (SECM/OM), with tailored electrode modifications to enhance sensitivity, selectivity, and stability in complex biological environments. Their work bridges materials science, electrochemistry, and bioanalytical chemistry to address challenges in medical diagnostics and sustainable energy technologies.
Professor Woo Il Kwon's research lab specializes in clinical and translational oncology, with a primary focus on gastrointestinal malignancies such as pancreatic and gallbladder cancer. The lab investigates neoadjuvant treatment strategies, surgical outcomes, and prognostic factors in borderline resectable and locally advanced pancreatic cancer, as well as tumor characteristics and recurrence patterns in intraductal papillary mucinous neoplasms (IPMNs) and gallbladder polyps. The lab also contributes to control theory applications in engineering, particularly in stabilizing time-varying and differential-difference systems, demonstrating a unique interdisciplinary approach. Their work bridges clinical oncology with systems engineering to improve patient outcomes through evidence-based treatment protocols and mathematical modeling.
Professor Hyung Bo Shim's research lab specializes in advanced control theory with a focus on robust and nonlinear control systems. The lab investigates disturbance rejection techniques such as the Disturbance Observer (DOB) framework, particularly extending its applicability to non-minimum phase and nonlinear systems. Key research directions include observer design for state estimation under disturbances, stability analysis using singular perturbation and Lyapunov methods, and control of multi-agent systems with heterogeneous and rank-deficient coupling. The lab also applies control theory to biological systems, such as HIV infection dynamics, demonstrating the interdisciplinary impact of control engineering.