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 Hyunwoo Park's research lab specializes in advanced wireless communication systems, with a strong focus on millimeter-wave and terahertz band communications, beamforming, and beam tracking for high-mobility environments. The lab develops intelligent, learning-based solutions—particularly deep reinforcement learning and semi-supervised learning—to address challenges in signal robustness, hardware impairments, and dynamic channel conditions. Key research directions include adaptive beamwidth control, near-field beam tracking, and real-time trajectory planning for autonomous systems using reinforcement learning. The lab also explores low-power, multi-band RF front-end designs for next-generation wireless applications.
Professor Changhyun Yoo's research lab specializes in atmospheric dynamics and climate variability, with a primary focus on the role of the Madden–Julian Oscillation (MJO) in modulating weather and climate across the globe. The lab investigates MJO-driven atmospheric teleconnections, particularly their impacts on high-latitude regions such as the Arctic and Antarctica, including mechanisms of poleward Rossby wave propagation and surface temperature anomalies. Using a combination of observational analysis, reanalysis data, and idealized and comprehensive climate model simulations, the lab explores how tropical convection and stratospheric variability influence extratropical climate variability and long-term warming trends. A key theme is understanding the interdecadal changes in MJO characteristics and their contribution to polar amplification and regional climate change.
Professor Cheulhee Jung's research lab specializes in DNA nanotechnology and molecular programming, focusing on the design of programmable DNA-based devices for diagnostics and synthetic biology. Key research directions include the development of autonomous DNA walkers for signal amplification and computation, the engineering of pH- and toehold-responsive molecular circuits, and the creation of isothermal amplification methods for sensitive nucleic acid detection. The lab also explores fundamental mechanisms of early molecular replication, linking synthetic DNA systems to origins of life hypotheses. These interdisciplinary efforts bridge chemistry, nanotechnology, and systems biology to create smart, responsive molecular systems with practical applications in biosensing and diagnostics.
Professor Seok Jong Chung's research lab focuses on understanding the neurobiological mechanisms underlying cognitive and motor progression in Parkinson's disease (PD). The lab investigates neuroimaging and neurocognitive markers—such as basal ganglia perivascular spaces, cortical atrophy, and cognitive reserve—that predict dementia conversion and motor disability in early-stage PD. Using advanced neuroimaging techniques and longitudinal analyses, the lab aims to identify individualized prognostic profiles to improve early diagnosis and personalized management of PD. Their work emphasizes the role of brain reserve and neurodegenerative patterns in shaping clinical outcomes.
Professor Byoung-Kyong Min's research lab specializes in non-invasive neuromodulation and functional brain mapping, focusing on the application of low-intensity pulsed focused ultrasound (FUS) to selectively modulate neurotransmitter systems and neural activity in the brain. The lab investigates the neurophysiological mechanisms underlying epilepsy, consciousness, and cognitive performance, with particular emphasis on the thalamus and its role as a neural hub. Using multimodal approaches including microdialysis, EEG, and wavelet analysis, the lab explores how brain network organization—especially the rich-club architecture—supports cognitive functions and contributes to neurological disorders.
Professor Heesung Yoon's research lab specializes in advanced functional materials and their applications in energy and environmental systems. Key research directions include the development of protonic ceramic materials for fuel cells, hydrogen separation membranes, and the fundamental understanding of ion and electron transport mechanisms in oxide materials. The lab also focuses on modeling and simulation of complex physical phenomena, such as magnetic hysteresis and groundwater dynamics, using advanced computational techniques including artificial intelligence and finite element methods.
Professor Myung-Gyu Kim's research lab focuses on the immunological and inflammatory mechanisms underlying acute and chronic kidney diseases, with a particular emphasis on macrophage polarization, T regulatory cell function, and the role of aging in kidney injury progression. The lab investigates therapeutic strategies targeting immune modulation—such as IL-2/anti-IL-2 complex and PPAR-γ agonists—to mitigate renal fibrosis and nephrotoxicity in models of ischemia-reperfusion and cisplatin-induced injury. Additionally, the lab explores the gut-kidney axis, examining how microbial dysbiosis influences systemic inflammation and kidney disease pathogenesis. These studies aim to identify novel immunomodulatory targets for preventing acute kidney injury progression to chronic kidney disease.
Professor Song-Bae Kim's research lab specializes in environmental materials and water treatment technologies, focusing on the development of advanced functional materials for the removal of heavy metals and nutrients from water. The lab investigates bacterial transport and fate in porous media, integrating mathematical modeling with experimental validation to understand and predict microbial behavior in subsurface environments. A key research direction involves designing and applying nanomaterials—such as polymer-based nanofibers and iron oxide-chitosan composites—for efficient adsorption of contaminants like copper and phosphate from industrial and natural waters. The lab emphasizes sustainable solutions through material regeneration and reuse, demonstrating practical applications in fixed-bed column systems.
Professor Junshik Hong's research lab specializes in hematology and oncology, with a focus on blood disorders and hematologic malignancies. The lab investigates the epidemiology, clinical outcomes, and treatment patterns of conditions such as venous thromboembolism, myeloproliferative neoplasms, and hematopoietic stem cell transplantation. Key research directions include disease transformation in myeloproliferative neoplasms, infection risks post-transplant, and prognostic factors in lymphoma, particularly anemia in diffuse large B-cell lymphoma. The lab leverages nationwide health insurance claims data to analyze real-world clinical patterns and outcomes in South Korean populations.
Professor Ee-Kyung Kim's research lab specializes in neonatal and perinatal medicine, with a primary focus on understanding and improving outcomes in preterm infants. The lab investigates the pathogenesis and biomarkers of critical neonatal conditions such as bronchopulmonary dysplasia (BPD), intraventricular hemorrhage (IVH), and neonatal sepsis, with particular attention to inflammatory and oxidative stress pathways. Research also explores the impact of prenatal and perinatal factors—such as oligohydramnios and prematurity—on long-term neurodevelopmental and pulmonary outcomes. The lab employs longitudinal and retrospective clinical studies to identify modifiable risk factors and evaluate potential therapeutic interventions, including immunomodulatory agents like colostrum.
Professor Hyun Woong Lee's research lab specializes in hepatology and viral hepatitis, with a strong focus on antiviral therapies, liver fibrosis, and the development of novel treatments for hepatitis B and C. The lab investigates host and viral factors influencing treatment response, evaluates the role of repurposed drugs like statins and immunomodulators (e.g., Tα1), and explores natural compounds from medicinal herbs as potential anti-hepatitis C agents. The research also extends to liver cancer, particularly the use of selective internal radiation therapy (SIRT) in unresectable hepatocellular carcinoma.
Professor Jungho Kim's research lab specializes in the theoretical and experimental investigation of semiconductor optoelectronic devices, with a primary focus on quantum dot (QD) lasers and semiconductor optical amplifiers (SOAs). The lab explores key optical properties such as optical gain, refractive index dynamics, linewidth enhancement factor, and ultrafast gain saturation, particularly under high-speed modulation and p-doping conditions. Advanced numerical modeling, including rate equations and quantum-mechanical density matrix theory, is combined with experimental validation to optimize device performance for high-bandwidth optical communication systems. The lab also extends its work into novel photonic phenomena such as electromagnetically induced transparency and fracture mechanics in materials using advanced computational methods.
Professor Hae Soon Kim's research lab specializes in pediatric nutrition and metabolic health, focusing on the role of vitamin D in childhood adiposity and metabolic syndrome. The lab investigates the interplay between nutritional status, obesity, and long-term health outcomes in youth, particularly in the context of global health challenges such as the COVID-19 pandemic. Their work leverages large-scale national health surveys to identify trends and inform public health strategies. The lab emphasizes preventive health approaches through optimal micronutrient intake in growing children.
Professor Sang Ah Lee's research lab investigates the cognitive and neural mechanisms underlying spatial navigation, with a focus on how humans and animals use environmental geometry to reorient. The lab explores the role of surface layouts, boundaries, and spatial geometry in navigation across species, from children to rodents and birds, integrating behavioral experiments with neurophysiological recordings. A central theme is distinguishing geometric computation from image-matching processes in spatial reorientation, with recent work identifying boundary-related neural activity in the human hippocampal formation. The lab also examines the developmental, evolutionary, and genetic foundations of spatial cognition.
Professor Seung Yeol Lee's research lab specializes in orthopedic surgery and surgical outcomes, with a focus on postoperative complications such as deep vein thrombosis (DVT) and muscle spasticity in patients with cerebral palsy. The lab investigates risk factors and diagnostic accuracy in orthopedic procedures, particularly in high-risk populations like elderly and female patients undergoing knee arthroplasty. Additionally, the lab explores the integration of automation and advanced technologies in construction and surgical processes to improve safety, efficiency, and consistency in medical and civil engineering environments.
Professor Moon Nyeo Park's research lab focuses on the molecular mechanisms of cancer and liver diseases, with a particular emphasis on mitochondrial dysfunction, oxidative stress, and the regulatory roles of microRNAs and exosomes in the tumor microenvironment. The lab investigates natural product-derived compounds—especially herbal formulations like BK002—for their multi-targeted anti-cancer and hepatoprotective effects, aiming to overcome drug resistance in aggressive cancers such as glioblastoma and castration-resistant prostate cancer. By integrating systems biology and translational research, the lab explores how natural compounds modulate key signaling pathways, miRNA expression, and redox homeostasis to suppress tumor progression and metastasis.
Professor Sang-Yeop Chung's research lab specializes in advanced cement-based materials, with a strong focus on sustainable construction materials and lightweight concrete systems. The lab investigates the microstructural characteristics, pore distribution, and mechanical properties of foamed and lightweight aggregate concretes, emphasizing the role of supplementary materials such as recycled glass, nanosilica, and fly ash. Using advanced imaging techniques like micro-computed tomography and automated air void analysis, the lab aims to optimize material performance for thermal insulation, durability, and energy efficiency in building applications.
Professor Jung-Joon Sung's research lab specializes in neuroimmunology and neurodegenerative diseases, with a primary focus on motor neuron disorders such as amyotrophic lateral sclerosis (ALS) and inflammatory demyelinating polyneuropathies like Guillain-Barré syndrome (GBS) and chronic inflammatory demyelinating polyneuropathy (CIDP). The lab investigates the pathophysiology of these conditions using advanced electrophysiological and imaging techniques, with particular emphasis on identifying early prognostic biomarkers and optimizing treatment timing. Recent work includes deep learning-based radiological phenotyping and quantitative vocal analysis to detect subclinical disease progression.
Professor Jung-Joon Sung's research lab focuses on the pathophysiological mechanisms underlying neurodegenerative diseases, particularly amyotrophic lateral sclerosis (ALS) and neuromyelitis optica (NMO). The lab investigates metabolic alterations such as hypolipidemia and homocysteine toxicity in motor neuron degeneration, explores the role of hypoxia and oxidative stress in disease progression, and develops non-invasive diagnostic tools like capnography and electrophysiological markers (e.g., SIMUNIX) for early detection and management. The lab also evaluates therapeutic strategies, including non-invasive ventilation and disease-modifying treatments, to improve patient outcomes.
Professor Jongsoo Lee's research lab specializes in advanced simulation-driven design optimization, with a focus on multidisciplinary engineering systems involving structural mechanics, materials behavior, and nuclear energy applications. The lab develops and applies meta-modeling techniques—such as Kriging and surrogate modeling—combined with evolutionary algorithms like genetic and micro-genetic algorithms to solve complex, constrained optimization problems in aerospace, automotive, and nuclear engineering. Research emphasizes improving computational efficiency, constraint feasibility, and reliability in design under uncertainty, particularly for high-performance materials and components under extreme conditions. The lab also integrates statistical and probabilistic methods to model material fatigue, viscoplasticity, and system-level performance in safety-critical applications.