首尔大学、KAIST、延世大学等韩国QS前10名大学的研究室信息。
Professor Byoung Seok Ye's research lab specializes in the neuroimaging and biomarker-based investigation of neurodegenerative diseases, particularly Alzheimer’s disease (AD) and small vessel disease (SVD). The lab focuses on understanding the longitudinal progression of mild cognitive impairment (MCI), with particular emphasis on the interplay between amyloid pathology, cerebrovascular burden, and metabolic factors such as uric acid and body mass index (BMI). Using multimodal imaging (PET, MRI) and cerebrospinal fluid biomarkers, the lab aims to identify early prognostic indicators and distinct neurodegenerative phenotypes in at-risk populations.
Professor Sung-Ji Park's research lab specializes in cardiovascular imaging and risk stratification, with a focus on echocardiography, cardiac magnetic resonance (CMR), and biomarkers in predicting perioperative and long-term cardiovascular outcomes. The lab investigates subclinical cardiac changes in aortic stenosis and hypertension, particularly using advanced imaging techniques to detect early structural and functional deterioration. Key research directions include identifying clinical predictors of postpartum chronic hypertension in women with hypertensive disorders of pregnancy and evaluating the prognostic value of parameters such as E/e' ratio in atrial fibrillation. The lab aims to refine risk assessment tools and guide personalized management in both noncardiac surgical and maternal cardiovascular settings.
Professor Jae-Weon Jeong's research lab specializes in indoor environmental quality and energy-efficient building systems, with a focus on advanced HVAC technologies. The lab investigates innovative cooling and ventilation strategies such as dedicated outdoor air systems (DOAS) combined with radiant cooling panels to enhance energy efficiency and thermal comfort. Research also emphasizes real-world performance evaluation of these systems through pilot installations and field studies in commercial buildings. The lab's work bridges theoretical modeling with practical applications to support sustainable building design.
Professor Byung Chul Jee's research lab focuses on reproductive medicine and gynecological endocrinology, with a particular emphasis on improving clinical outcomes in fertility treatment and managing gynecological disorders. The lab investigates biomarkers for ovarian endometriomas, evaluates the efficacy and safety of fertility medications, and examines factors influencing the use and effectiveness of intrauterine devices. Their work contributes to evidence-based clinical decision-making in reproductive health.
Professor Jae Kyu Song's research lab specializes in the design and development of advanced nanomaterials for sustainable energy applications, with a primary focus on photocatalysis and photoelectrochemistry. The lab explores innovative heterostructured semiconductors, such as Z-scheme systems and core-shell architectures, to enhance charge separation and improve efficiency in solar energy conversion. Key research directions include photocatalytic degradation of pollutants, hydrogen production via water splitting, and novel light-emitting phenomena in nanomaterials. The lab emphasizes rational material engineering using techniques like pulsed-laser ablation and hydrothermal synthesis to create high-performance, noble-metal-free photocatalysts.
Professor Sang-Chol Lee's research lab focuses on cardiovascular and cerebrovascular diseases, with a particular emphasis on early detection, risk stratification, and pathophysiological mechanisms of silent and asymptomatic conditions. The lab investigates silent cerebral infarction, hypertrophic cardiomyopathy (especially apical variant HCM), and left ventricular global longitudinal strain (LV-GLS) as key prognostic markers. It also explores pharmacological interventions, such as iron supplementation to mitigate ACE inhibitor-induced cough, reflecting a translational approach combining clinical imaging, biomarkers, and therapeutic innovation.
Professor Jinkwon Kim's research lab specializes in clinical and translational cardiovascular and cerebrovascular research, focusing on identifying novel biomarkers and hemodynamic parameters that predict outcomes in acute stroke and cardiovascular disease. The lab investigates the prognostic value of routine laboratory markers—such as red blood cell distribution width (RDW), brachial-ankle pulse wave velocity (baPWV), and serum alkaline phosphatase—and hemodynamic parameters like interarm blood pressure differences in predicting mortality, functional outcomes, and long-term prognosis after acute ischemic stroke. The lab also explores the impact of medical therapies, such as high-intensity statin use, on post-stroke outcomes, emphasizing the integration of clinical data with predictive modeling and robust algorithm development for risk stratification. Their work bridges basic biomarker science with real-world clinical application to improve patient outcomes in cerebrovascular and cardiovascular diseases.
Professor Duk-Young Jung's research lab specializes in the design, synthesis, and characterization of advanced functional materials, with a focus on metal-organic frameworks (MOFs), perovskite semiconductors, and layered double hydroxides (LDHs). The lab explores innovative strategies to enhance material stability, tune optical and magnetic properties, and enable applications in optoelectronics, photovoltaics, and biomedical engineering. Key research directions include the integration of perovskites within MOF matrices for hybrid optoelectronic devices, controlled crystal growth and anisotropic expansion of LDHs, and the development of bio-inspired materials such as polydopamine-based phototransistors. The lab also applies computational and finite element methods to understand structure-property relationships and biomechanical performance in medical implants.
Professor Yookyung Kim's research lab specializes in psychometric and statistical methodologies applied to mental health assessment, particularly focusing on age-related measurement bias in depression and personality disorder inventories using item response theory (IRT). The lab also investigates the functional and physicochemical properties of plant-based foods, such as soy products and whole grain breads, with an emphasis on texture, quality indicators, and bioactive components like dietary fiber and cholesterol-lowering agents. Additionally, the lab employs advanced spectroscopic techniques, such as FT-IR and PLS modeling, to analyze food composition without extensive sample preparation. Overall, the lab bridges psychological measurement with food science and analytical chemistry to improve health outcomes through better assessment tools and functional food development.
Professor Ji Soo Choi's research lab specializes in critical care medicine and respiratory diseases, with a focus on identifying predictive biomarkers and clinical risk factors for disease progression and mortality in critically ill patients. The lab investigates respiratory failure, pulmonary fibrosis, and sepsis, emphasizing early diagnosis and personalized management strategies based on physiological parameters and biochemical markers. Key research directions include the prognostic significance of physiological ratios (e.g., PaO2/FiO2, bilirubin-to-albumin, mPA/Ao), sex-specific differences in comorbid conditions like depression in COPD, and the role of early-secreted proteins such as WRS in sepsis. The lab’s work aims to improve clinical decision-making and patient outcomes in intensive care settings.
Professor Kitae Park's research lab specializes in advanced semiconductor memory technologies, with a primary focus on 3D vertical NAND (V-NAND) flash memory development. The lab pioneers innovative structures and architectures—such as barrier-engineered materials, gate-all-around designs, and novel programming schemes—to enhance scalability, reliability, and performance in high-density flash memory. Research also extends to next-generation memory solutions, including 3-bit/cell NAND flash and polymer-siRNA conjugates for targeted drug delivery, reflecting a multidisciplinary approach combining nanoelectronics and biomedical applications. The lab emphasizes overcoming critical challenges like cell-to-cell interference, threshold voltage instability, and power efficiency in advanced process nodes.
Professor Kyu Ha Huh's research lab specializes in clinical and translational neuroscience, with a focus on understanding the neural mechanisms underlying epilepsy and cognitive function. The lab investigates brain network dynamics using intracranial EEG and neuropsychological assessments, particularly in patients with intractable epilepsy. It also explores immunological biomarkers in organ transplantation, especially angiotensin II receptor autoantibodies and their role in transplant rejection. The lab integrates neurophysiological, cognitive, and immunological approaches to improve patient outcomes in neurological and transplant medicine.
Professor Junho Chung's research lab specializes in translational immunology and targeted cancer therapy, focusing on the molecular mechanisms of immune responses and receptor signaling in disease. The lab investigates stereotypic antibody responses in viral infections, such as SARS-CoV-2, and explores therapeutic targets like gremlin-1, VCAM-1, and HER2 mutants in cancer. Utilizing advanced techniques such as phage display and structural immunology, the lab develops novel biologics—including chimeric antibodies and inhibitors—for precision medicine applications. Current work emphasizes understanding receptor-ligand interactions and designing therapeutics with improved specificity and reduced off-target effects.
Professor Junho Chung's research lab specializes in advanced materials and biomedical technologies, focusing on nanomaterials for energy and environmental applications, as well as therapeutic and diagnostic solutions for infectious diseases and cancer. The lab investigates the fundamental behaviors of polymers and doped metal oxides under nanoscale confinement, exploring their unique optical, catalytic, and transport properties. It also develops novel biologics and vaccines by targeting viral immune evasion mechanisms and optimizing antibody-based therapeutics.
Professor Hyangkyu Lee's research lab focuses on cellular signaling mechanisms involving caveolin proteins, particularly caveolin-1 and caveolin-2, with a central emphasis on tyrosine phosphorylation and its role in cancer progression, cell migration, and metabolic regulation. The lab investigates the interplay between tyrosine kinases (e.g., c-Src), phosphatases (e.g., PTP1B), and post-translational modifications such as palmitoylation and phosphorylation in regulating caveolin function and subcellular localization. Additionally, the lab explores the metabolic effects of pharmacological agents like statins and polyphenols (e.g., Oligonol), linking cellular signaling to hepatic glucose metabolism and adipogenesis.
Professor Kyeounghak Kim's research lab specializes in the design and mechanistic understanding of advanced functional materials for sustainable energy and environmental applications. The lab focuses on heterogeneous catalysis, particularly the development of ceria-based and perovskite-type oxides for CO oxidation, dry reforming of methane, and nitrous oxide reduction. By integrating advanced theoretical calculations—especially density functional theory (DFT)—with precise synthesis and characterization techniques, the lab uncovers structure-activity relationships at the atomic level. A key research direction involves engineering surface and electronic structures through doping, shell thickness control, and oxygen vacancy engineering to enhance catalytic activity and stability.
Professor Younghwan Yang's research lab specializes in nanophotonics and metamaterials, focusing on the design, fabrication, and application of tunable metasurfaces for advanced wavefront control. The lab explores innovative metasurface architectures for high-efficiency metalenses, dynamic holography, and compact photonic devices, with an emphasis on materials engineering—particularly hydrogenated amorphous silicon—to optimize optical performance. Key research directions include nanofabrication techniques for subwavelength structures, integration of metasurfaces with functional optical components, and enhancing device efficiency through tailored material properties.
Professor Jong Yeog Son's research lab specializes in advanced oxide-based nanomaterials and functional thin films for next-generation electronic and spintronic devices. The lab focuses on the development and characterization of resistive random-access memory (RRAM), multiferroic materials, and ferroelectric nanostructures, with an emphasis on atomic-scale switching mechanisms and high-density data storage applications. Key research directions include the epitaxial growth of perovskite oxides, nanoscale characterization using advanced microscopy techniques (e.g., CAFM, KFM), and the integration of 2D materials and nanotubes with ferroelectric and resistive oxides for novel memory and logic devices.
Professor EunMi Choi's research lab specializes in high-power microwave sources and advanced electromagnetic materials. The lab focuses on gyrotron development for fusion energy applications, particularly optimizing efficiency and output power in high-frequency, high-power microwave generation using advanced cavity and collector designs. It also explores novel 2D MXene-based nanomaterials for electromagnetic interference shielding and high electrical conductivity, with a strong emphasis on experimental validation and materials engineering. The lab integrates fundamental research in mathematical sequences, such as tribonacci numbers, with applied physics and engineering innovations.
Professor Seung Soo Oh's research lab specializes in the development of advanced nucleic acid-based biosensors and targeted delivery systems, with a focus on aptamer technology and microfluidic platforms. The lab pioneers innovative strategies for generating high-affinity aptamers and self-reporting systems that enable label-free, fluorescence-based detection of biomolecules with high sensitivity and specificity. By integrating principles from synthetic biology, nanotechnology, and microfluidics, the lab designs smart molecular tools for diagnostics and therapeutics, including aptamer-polymer hybrids for controlled drug delivery. Their work emphasizes rapid, efficient, and reproducible selection methods, such as VDC-MSELEX and microfluidic phage display, to accelerate the discovery of functional biomolecules.