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 Wookyung Moon's research lab specializes in advancing cancer diagnostics and theranostics through innovative biomedical engineering and medical imaging technologies. The lab focuses on developing biomimetic microenvironments to study tumor microarchitecture and cancer progression, while also pioneering multifunctional nanomaterials for simultaneous imaging and drug delivery. A key emphasis is placed on improving early detection of aggressive breast cancers using multimodal imaging techniques such as MRI, ultrasound, and elastography, particularly in high-risk populations. The lab also investigates challenging head and neck pathologies, including tuberculosis, to enhance diagnostic accuracy and differentiate from malignancies using advanced radiological imaging.
Professor Keon Jae Lee's research lab specializes in advanced piezoelectric and nanocomposite materials for flexible, stretchable, and self-powered electronic systems. The lab focuses on developing high-performance energy harvesters, wearable biosensors, and smart acoustic sensors using novel materials such as PZT, PMN-PT, BaTiO3, and carbon-based nanomaterials. Key research directions include energy harvesting from human motion, real-time physiological monitoring, and integration with artificial intelligence for next-generation wearable and implantable medical devices.
Professor Jiwoong Suk's research lab specializes in the development and application of two-dimensional nanomaterials, particularly graphene and graphene oxide, with a focus on their mechanical, electrical, and interfacial properties. The lab investigates scalable fabrication techniques such as CVD growth, transfer methodologies (including dry and wet transfer), and post-processing strategies to optimize material performance for electronic, acoustic, and environmental applications. Key research directions include enhancing the electrical conductivity of graphene-based devices, engineering ultrathin membranes for sensing and separation, and designing eco-friendly nanocomposites for water purification. The lab integrates advanced characterization techniques like conductive atomic force microscopy and finite element modeling to probe nanoscale phenomena with high precision.
Professor Sang Kyu Kwak's research lab specializes in the design and development of advanced functional materials for energy conversion and storage, with a strong focus on next-generation batteries and sustainable energy technologies. Key research directions include the rational design of hole-transport materials and solid-state electrolytes for perovskite solar cells, the mechanistic understanding of ion storage in hard carbon anodes for sodium- and potassium-ion batteries, and the creation of smart, stimuli-responsive materials for targeted drug delivery using metal-organic frameworks. The lab integrates experimental synthesis with advanced theoretical and computational modeling to establish structure-property relationships and guide material optimization.
Professor Yoon Jung-Hwan's research lab specializes in translational hepatology and immunotherapy, focusing on improving outcomes for patients with hepatocellular carcinoma (HCC) through innovative cellular therapies and biomarker discovery. The lab investigates the role of immune modulation using cytokine-induced killer (CIK) cells to enhance recurrence-free and overall survival after curative treatment for HCC. It also explores the gut-liver axis, examining circulating microbial dysbiosis and its potential as a diagnostic biomarker in cirrhosis and HCC. Additionally, the lab investigates molecular mechanisms underlying biliary tract carcinogenesis, particularly the role of oxysterols and COX-2 signaling in cholangiocarcinoma progression.
Professor Jin Yong-Xun Kim's research lab focuses on host-microbe interactions, particularly the mechanisms by which probiotic bacteria modulate host immunity and health. The lab investigates the functional properties of lactic acid bacteria, including their probiotic potential, biofilm formation, and roles in infection resistance and host defense. A central theme is the molecular regulation of bacterial persistence and virulence through toxin-antitoxin systems and RNase-mediated gene regulation. The lab also explores the impact of microbial components—such as exosomes from bovine colostrum—on host cell physiology, especially in bone metabolism and intestinal barrier function.
Professor Jong-Sung Kwon's research lab specializes in climate system modeling and seasonal climate prediction, with a focus on enhancing forecast accuracy through advanced multi-model ensemble (MME) techniques. The lab develops statistical and machine learning-based methods to correct model biases and select optimal predictors from a wide range of climate model outputs. Their work emphasizes improving seasonal climate predictions in regions with low individual model skill, particularly through error correction and data-driven model selection. The lab's research bridges climate science, statistics, and computational modeling to support climate resilience and decision-making.
Professor Sung Joon Kim's research lab focuses on cellular signaling mechanisms underlying stress responses and disease pathogenesis, with a particular emphasis on ion channels, stress-activated kinases, and their roles in inflammation, cancer, and neurodegenerative conditions. The lab investigates TRPV1 and TASK-2 channels in keratinocytes and B cells, exploring their involvement in UV-induced damage, matrix degradation, and hypoxic adaptation. Additionally, the lab employs chemical genetics and molecular screening to identify novel substrates of stress-response kinases such as Hog1 and p38 MAPK, revealing new regulatory pathways in cell cycle control and protein synthesis. The integration of molecular, cellular, and translational approaches defines the lab’s interdisciplinary research direction.
Professor Jong Kyu Kim's research lab specializes in optoelectronics and advanced semiconductor materials, with a primary focus on enhancing the efficiency and performance of nitride-based light-emitting diodes (LEDs) and solid-state lighting. The lab investigates critical challenges such as efficiency droop in GaN LEDs, p-type GaN ohmic contact engineering, and phosphor conversion efficiency through innovative device architecture and surface treatments. Additionally, the lab explores electrocatalysts for renewable hydrogen production, particularly through tuning Ni-based thin films for efficient hydrogen evolution in alkaline electrolysis.
Professor Wook Jo's research lab specializes in the development and fundamental understanding of lead-free piezoceramics, with a focus on designing materials that can replace traditional PZT-based piezoelectrics. The lab investigates the structure-property relationships in complex perovskite systems, particularly (Bi1/2Na1/2)TiO3-based solid solutions, to achieve large piezoelectric and electrostrictive responses. Key research directions include phase transition engineering, morphotropic phase boundary optimization, and the role of relaxor behavior in enhancing strain and energy conversion efficiency.
Professor Inkyu Park's research lab specializes in the development of advanced flexible, stretchable, and wearable electronic devices, with a strong focus on strain and pressure sensors for biomedical and human-machine interface applications. The lab pioneers innovative nanocomposite materials—such as silver nanowires, carbon nanotubes, and metal oxide nanostructures embedded in elastomers like PDMS and silicone rubber—to achieve high sensitivity, super-stretchability, and mechanical compliance matching human skin. By integrating novel sensing mechanisms like percolation networks, micro-crack dynamics, and piezocapacitive effects in 3D microstructured dielectrics, the lab enables real-time, stable, and accurate sensing for health monitoring and soft robotics. The integration of machine learning with sensor arrays further enhances the performance and reliability of environmental and gas sensing systems.
Professor Bo Young Jeong's research lab specializes in biomedical engineering and cardiology, focusing on the development of self-powered implantable medical devices and the epidemiological and clinical management of atrial fibrillation (AF). The lab integrates advanced energy harvesting technologies—particularly piezoelectric systems—with wireless communication for sustainable, minimally invasive healthcare solutions. It also conducts large-scale clinical and population-based studies to identify modifiable risk factors for AF and to evaluate long-term outcomes of interventions such as catheter ablation.
Professor Kyoung-Wook Kang's research lab specializes in molecular and translational oncology, focusing on the regulation of cellular defense mechanisms against oxidative stress and the development of targeted imaging and therapeutic agents for cancer. The lab investigates transcription factors such as Nrf2 and C/EBPβ in antioxidant gene regulation, explores mechanisms of drug resistance in breast cancer—particularly through epithelial-mesenchymal transition—and develops novel nanoplatforms, including radiolabeled gold nanoparticles, for precise tumor imaging and targeting. The lab also evaluates preclinical models of liver cirrhosis to identify potential therapeutic agents, highlighting a strong translational focus from molecular mechanisms to clinical applications.
Professor Soo Lim's research lab focuses on the intersection of aging, metabolic health, and chronic disease prevention, with a particular emphasis on sarcopenia, obesity, and metabolic syndrome in the elderly. The lab investigates the pathophysiological mechanisms linking muscle wasting and excess adiposity to insulin resistance, cardiovascular risk, and frailty, using both clinical cohort studies and preclinical models. A key research direction involves evaluating the impact of environmental factors—such as herbicide exposure—on mitochondrial dysfunction and metabolic disease. The lab also develops and tests technology-driven, patient-centered interventions, including u-healthcare systems and clinical decision support tools, to improve diabetes management in older adults.
Professor Kyung-mook Choi's research lab focuses on the pathophysiological interplay between sarcopenia, obesity, and metabolic diseases, particularly in aging populations. The lab investigates the shared mechanisms—such as insulin resistance, chronic inflammation, and mitochondrial dysfunction—linking sarcopenic obesity with conditions like non-alcoholic fatty liver disease (NAFLD). Using longitudinal and cross-sectional studies with advanced imaging (e.g., CT-based liver attenuation index), the lab aims to clarify the progression and clinical implications of sarcopenic obesity. Their work contributes to the development of early diagnostic criteria and targeted interventions for metabolic and musculoskeletal health in older adults.
Professor Sangyong Jon's research lab specializes in the design and development of advanced nanomaterials for targeted theranostics and drug delivery, with a strong focus on cancer and inflammatory diseases. The lab integrates nanotechnology, bioconjugation, and molecular targeting to create smart nanoparticles that enable simultaneous diagnosis (e.g., via MRI) and therapy (e.g., drug delivery or immunostimulation). Key innovations include aptamer-conjugated nanoparticles, PEGylated natural compound-based nanotherapeutics, and multifunctional platforms for imaging and immune modulation. The lab’s work emphasizes improving the solubility, stability, and bioavailability of bioactive molecules while ensuring high specificity and efficacy in preclinical models.
Professor Yong-Mook Kang's research lab specializes in the development of advanced functional materials for next-generation energy storage devices, with a primary focus on sodium-ion and lithium-ion batteries. The lab investigates novel anode and cathode materials—such as transition metal chalcogenides, doped sulfides, and silicon-based composites—aimed at enhancing energy density, cycle stability, and rate capability. Key research directions include understanding electrochemical reaction mechanisms, designing nanostructured materials, and engineering solid-electrolyte interphases to suppress dendrite formation and structural degradation.
Professor Byeong-Joo Lee's research lab specializes in computational materials science, focusing on the atomic-scale understanding and design of advanced structural and functional materials. Key research directions include the development and application of interatomic potentials—particularly modified embedded-atom method (MEAM) potentials—for predicting the thermomechanical and defect properties of high-entropy alloys (HEAs), transition metals, and oxide systems. The lab integrates atomistic simulations with machine learning to accelerate materials discovery, especially in optimizing HEA compositions for enhanced mechanical performance. They also conduct thermodynamic optimization of complex oxide systems relevant to superconductors and ceramics.
Professor Hee Tae Jung's research lab specializes in the design, synthesis, and application of two-dimensional (2D) nanomaterials, with a strong focus on MXenes, graphene, and black phosphorus. The lab investigates the fundamental mechanisms of gas sensing in 2D materials, particularly the roles of surface charge transfer, Schottky barrier modulation, and interfacial interactions. Advanced characterization techniques, including cryo-electron microscopy and in situ imaging, are employed to study etching dynamics, structural evolution, and defect engineering in 2D materials at the atomic scale. The ultimate goal is to develop high-performance, selective, and responsive chemical sensors for environmental and health monitoring applications.
Professor Dong Hoon Choi's research lab focuses on translational biomedical engineering and regenerative medicine, with a strong emphasis on developing innovative biomaterials and cell-based therapies for cardiovascular and soft tissue repair. The lab investigates therapeutic strategies involving stem cell transplantation, growth factor delivery, and bioactive hydrogels to enhance tissue regeneration and prevent disease progression in conditions such as coronary restenosis, myocardial infarction, and periodontal disease. A key innovation lies in the design of functionalized, adhesive hydrogel patches for improved clinical applicability in drug delivery and tissue engineering. The lab also explores the role of molecular mediators like MMPs, VEGF, and aldosterone in vascular and inflammatory pathologies, aiming to bridge molecular mechanisms with clinical interventions.