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 Lee Hyeon-gyu's research lab specializes in theoretical and applied studies at the intersection of nuclear physics, quantum field theory, and biomedical engineering. The lab investigates topological structures in dense nuclear matter and their implications for neutron star physics, particularly focusing on symmetry energy, hadron properties, and compact star interiors using effective field theories. In parallel, the lab explores cognitive neuroscience through adaptive training programs and visual perception, while also advancing drug delivery technologies via innovative microneedle systems for transmucosal anesthesia. These diverse yet interconnected research directions reflect a strong emphasis on fundamental symmetries, emergent phenomena, and translational applications in health and astrophysics.
Professor Sung-hwan Choi's research lab specializes in biomaterials and dental applications, focusing on the development and evaluation of advanced materials for orthodontic and prosthodontic use. Key research directions include the enhancement of poly(methyl methacrylate) (PMMA) through nanocomposite reinforcement with nanodiamonds or zirconia for improved mechanical and antimicrobial properties, as well as the integration of bioactive and protein-repellent monomers like MPC and SB to reduce biofilm formation. The lab also investigates biocompatible photoinitiators for 3D-printed dental resins and explores the psychosocial impact of dermatological conditions such as vitiligo in adolescent populations, reflecting a multidisciplinary approach combining materials science, dentistry, and health psychology.
Professor Jae-Ho Chung's research lab specializes in quantum magnetism and strongly correlated electron systems, with a focus on neutron scattering techniques to probe magnetic excitations, lattice dynamics, and electronic correlations in low-dimensional and frustrated quantum materials. The lab investigates complex magnetic ground states in spinels, layered oxides, and diluted magnetic semiconductors, emphasizing the interplay between magnetism, lattice distortions, and electronic structure. Key themes include incommensurate spin order, spin-Peierls transitions, orbital degrees of freedom, and long-range interlayer exchange coupling in artificial superlattices.
Professor Ja Kyung Kim's research lab specializes in liver disease and hepatocellular carcinoma (HCC) research, with a strong focus on noninvasive diagnostic methods, interventional therapies, and regenerative approaches for chronic liver disease. The lab investigates elastography-based techniques such as liver stiffness measurement (LSM) and spleen-platelet ratio (LSPS) to improve risk stratification and reduce unnecessary endoscopies in patients with liver cirrhosis. It also explores innovative local ablative therapies, including holmium-166/chitosan complex injection for small HCC, and evaluates the clinical and pathological impact of autologous bone marrow cell infusion in advanced liver cirrhosis. Additionally, the lab investigates viral factors, particularly HBV genotypes and mutations, in relation to HCC development in endemic populations.
Professor Yuntae Jin's research lab focuses on gastrointestinal diseases, particularly inflammatory bowel disease (IBD) and ulcerative colitis, with an emphasis on understanding disease mechanisms, identifying genetic and immunological factors, and evaluating therapeutic interventions. The lab investigates patient-specific responses to biologic therapies such as infliximab, explores optimal bowel preparation methods for colonoscopy, and examines treatment regimens for gastric cancer and complications like terlipressin-induced hyponatremia. Their work integrates clinical research with translational insights, particularly in Asian populations, to improve diagnostic and therapeutic outcomes.
Professor Joongheon Kim's research lab specializes in next-generation wireless communication systems, with a focus on enhancing network efficiency, scalability, and quality of service in high-density and high-data-rate environments. Key research directions include device-to-device (D2D) caching for video streaming, millimeter-wave beamforming for low-latency communication, 60 GHz wireless systems for high-speed video backhaul, and intelligent optimization of urban air mobility (UAM) networks using deep reinforcement learning. The lab also explores energy-efficient RFID networking and quantum-inspired algorithms for solving complex wireless scheduling problems.
Professor Jin Oh Choi's research lab specializes in cardiovascular imaging and heart failure, with a focus on echocardiographic strain analysis, particularly peak systolic longitudinal strain (PSLS) using 2D speckle tracking, to assess myocardial function in patients with coronary artery disease, cardiomyopathy, and end-stage renal disease. The lab investigates the prognostic value of cardiac imaging parameters—such as left ventricular strain and late gadolinium enhancement on cardiovascular MRI—combined with neurohormonal markers like NT-proBNP and natriuretic peptides in predicting long-term outcomes in heart failure patients. The research also emphasizes the importance of gender- and age-specific echocardiographic reference values and the impact of hemodynamic changes, such as those during hemodialysis, on cardiac function. The lab integrates advanced imaging techniques with clinical outcomes to improve risk stratification and guide personalized therapy in heart failure and structural heart disease.
Professor Ghang LEE's research lab specializes in Building Information Modeling (BIM) and digital transformation within the architecture, engineering, and construction (AEC) industry. The lab focuses on critical success factors for BIM adoption, BIM software and service selection, and the optimization of design coordination processes in mixed 2D/BIM environments. It also conducts advanced research on IFC-based data modeling, including schema-free model extraction and high-performance IFC database systems using object-relational databases.
Professor Kim Jongsik's research lab specializes in advanced materials chemistry and catalysis, with a strong focus on understanding surface and interfacial phenomena in metal oxides and phosphates using solid-state NMR and computational methods. The lab investigates environmentally relevant processes such as phosphate adsorption on iron oxyhydroxides and plasma-catalyzed C–H bond activation for sustainable energy applications. Key research directions include the design of functional nanomaterials for energy storage and environmental remediation, particularly in lithium-ion battery cathodes and oxidative desulfurization catalysts. The integration of experimental NMR techniques with periodic DFT calculations enables atomic-level insights into electronic structures and surface reactivity.
Professor Hyung-Joon Shin's research lab specializes in advanced materials synthesis and nanoscale characterization, focusing on single-crystalline metals, 2D materials like graphene, and functional nanomaterials for next-generation electronic and optoelectronic devices. The lab explores the atomic-scale interactions in molecular systems on 2D substrates, develops novel heteroatom-doped organic semiconductors, and investigates ferroelectric nanostructures with tailored functionalities. Using advanced techniques such as scanning tunneling microscopy and pulsed laser deposition, the lab aims to bridge fundamental materials behavior with practical device applications.
Professor Seung Chul Hong's research lab specializes in neuroscience and neurosurgical interventions, with a focus on epilepsy surgery, cerebral metabolism in epilepsy, and the surgical management of brain tumors and vascular lesions. The lab investigates electrophysiological biomarkers such as high-frequency oscillations to improve seizure focus localization and employs advanced neuroimaging techniques like FDG-PET and MRI to evaluate post-surgical outcomes. The team also explores molecular mechanisms of neuronal injury, particularly calcium-mediated proteolysis in ischemic brain injury, and applies this knowledge to develop targeted therapeutic strategies.
Professor Jennifer Hyunjong Shin's research lab focuses on bioengineering and regenerative medicine, with a central emphasis on understanding and manipulating the mechanical and cellular microenvironments to guide tissue repair and regeneration. The lab investigates actin cytoskeleton dynamics and actin-binding proteins to decipher their roles in cellular mechanics and network organization, while also exploring chondrocyte dedifferentiation in cartilage tissue engineering. Additionally, the lab develops low-cost, microfluidic platforms for biological applications such as C. elegans sorting and applies physical cues—like topography and electrical stimulation—to enhance skeletal myoblast differentiation and muscle tissue engineering. These interdisciplinary efforts bridge cell biology, biophysics, and biomaterials science to advance regenerative therapies.
Professor Soryeong Lee's research lab specializes in cardiovascular epidemiology and real-world outcomes research, with a primary focus on atrial fibrillation (AF) and anticoagulation therapy in Asian populations. The lab investigates the comparative effectiveness and safety of oral anticoagulants—including warfarin and non-vitamin K antagonist oral anticoagulants (NOACs)—in clinical practice, with particular attention to dosing patterns, treatment adherence, and off-label use. Additionally, the lab explores modifiable risk factors for AF, such as lipid profiles, blood pressure variability, and unhealthy lifestyle behaviors, using large-scale national health databases to inform precision prevention strategies.
Professor Kwanyong Seo's research lab specializes in advanced nanomaterials and their applications in sustainable energy technologies. The lab focuses on designing and fabricating novel nanostructures—such as silicon and cobalt silicide nanowires, silver nanowire electrodes, and hybrid carbon-polymer composites—for next-generation photovoltaics, transparent electronics, and stretchable energy devices. Key research directions include the optical and magnetic properties of low-dimensional materials, monolithic integration of photovoltaic and battery functions, and scalable fabrication techniques for high-performance transparent and flexible energy devices. The lab combines experimental synthesis with advanced characterization and simulation to bridge fundamental science with practical applications in clean energy and wearable electronics.
Professor Hee Jin Kim's research lab focuses on regenerative medicine and neurodegenerative diseases, particularly Alzheimer’s disease, with an emphasis on stem cell therapy using human umbilical cord blood-derived mesenchymal stem cells (hUCB-MSCs). The lab conducts clinical and preclinical studies to evaluate the safety, feasibility, and potential disease-modifying effects of stem cell transplantation in neurological disorders. Additionally, the lab explores biomarkers and pathophysiological mechanisms in hematological conditions and endocrine-related oxidative stress, reflecting a multidisciplinary approach to translational medicine.
Professor Jeongseok Hwang's research lab specializes in the optical and electronic characterization of quantum materials, with a focus on high-temperature superconductors, carbon nanomaterials, and metal-organic frameworks. The lab employs advanced spectroscopic techniques such as polarized Raman, reflectance, and optical conductivity measurements to probe electronic structure, superconducting gap properties, and charge dynamics. A key research direction involves using Eliashberg theory and maximum-entropy methods to extract bosonic excitation spectra from optical self-energy data, providing insights into electron-boson coupling mechanisms. The lab also investigates the synthesis and optoelectronic properties of conjugated polymers and 2D MOFs, emphasizing structure-property relationships in functional materials.
Professor Kang-Tae Lee's research lab specializes in the development and application of lanthanide-doped upconverting nanoparticles (UCNPs) for advanced biomedical technologies. The lab focuses on leveraging the unique photostability and deep-tissue penetration of near-infrared excitation to enable long-term, real-time imaging and tracking in living cells. Key research directions include the design of multifunctional nanoprobes for bioimaging, oncotherapy, and optogenetics, as well as fundamental studies on molecular conformations and excited-state dynamics in aromatic amino acids using advanced spectroscopic techniques.
Professor Soo Chul Hong's research lab focuses on maternal-fetal medicine and gynecologic oncology, with key research directions including the impact of hormonal and nutritional factors—such as estrogen, leptin, and folic acid—on pregnancy outcomes and metabolic health. The lab investigates the role of biomarkers like homocysteine and folate in adverse pregnancy complications, including pre-eclampsia and preterm birth, and explores the diagnostic and prognostic significance of CD44v6 in gynecologic malignancies. Additionally, the lab contributes to the understanding of rare placental pathologies, such as large subchorionic cysts with intracystic hemorrhage, and the teratogenic effects of viral infections like varicella-zoster virus during pregnancy.
Professor Sekyung Lee's research lab focuses on understanding the molecular and clinical aspects of breast cancer, with a particular emphasis on Asian and younger patient populations. The lab investigates tumor heterogeneity, especially in hormone receptor status, HER2 and luminal subtypes, and explores the impact of treatment-related factors such as chemotherapy-induced alopecia and neoadjuvant chemotherapy on patient outcomes. Using integrated genomics, transcriptomics, and clinical pathology, the lab aims to identify biomarkers and improve prognostic models for personalized breast cancer care.
Professor Seseon Shin's research lab specializes in microfluidic technologies and label-free particle separation for biomedical applications. The lab focuses on developing innovative, cost-effective methods to isolate and analyze biological cells—particularly platelets, red blood cells, and malaria-infected red blood cells—using physical principles such as acoustic waves, viscoelastic flows, and magnetic fields. Key research directions include the study of erythrocyte deformability in health and disease, the mitigation of the coffee-ring effect in droplet-based particle deposition, and the design of microfluidic devices for clinical diagnostics without reliance on complex labeling techniques. The lab integrates microfluidics, biophysics, and biomedical engineering to address challenges in point-of-care diagnostics and personalized medicine.