世界の主要大学の研究室を探索 — 研究分野と主要論文を一目で確認できます。
Professor Mu-Hyun Baik's research lab specializes in computational and theoretical chemistry, focusing on the mechanistic understanding of metal-catalyzed and bioinorganic reactions. The lab employs advanced quantum chemical methods, including density functional theory (DFT) and continuum solvation models, to study reaction mechanisms, redox properties, and selectivity in organometallic and bioinorganic systems. Key research directions include the reactivity of metal-oxo and nitrene species, the design of selective catalysts for C–H functionalization, and the electronic origins of regio- and stereoselectivity in complex transformations. The lab emphasizes a tight integration of computation with experimental insights to guide and predict novel reactivity patterns in synthetic and biological contexts.
Professor So Yon Kim's research lab specializes in diagnostic radiology with a focus on advanced medical imaging techniques for early detection and characterization of abdominal and thoracic diseases. The lab investigates the diagnostic accuracy of multidetector row CT, MRI, and PET/CT in oncology, particularly for colorectal liver metastases and pancreatic fat quantification. Research also emphasizes improving the reproducibility and reliability of diffusion-weighted MRI in hepatic tumor assessment and advancing non-invasive imaging of coronary artery anomalies. The lab integrates quantitative imaging biomarkers with clinical outcomes to enhance precision diagnosis and patient management.
Professor Sang-Won Park's research lab focuses on translational biomedical research with a strong emphasis on infectious diseases, particularly emerging and re-emerging infections such as scrub typhus and severe fever with thrombocytopenia syndrome (SFTS), as well as liver injury and regenerative medicine. The lab investigates pathogenesis, diagnostic biomarkers, and therapeutic interventions, including natural compounds like baicalin, and explores advanced biomaterials such as nanotubular titanium for medical applications. Their work bridges clinical medicine, virology, hepatology, and materials science to improve patient outcomes in acute infectious and inflammatory conditions.
Professor Kyungmi Lee's research lab specializes in the development and application of transient and biocompatible electronic materials, with a focus on silicon-based nanomembranes and 2D materials such as MoS₂. The lab investigates the controlled dissolution, biocompatibility, and bioabsorption of these materials in physiological environments, aiming to advance resorbable biomedical implants and eco-friendly electronics. Key research directions include the molecular mechanisms of material degradation, in vitro and in vivo biocompatibility assessments, and the integration of these materials into functional electronic systems. The lab also explores immune modulation in T cells and NK cells, particularly through receptors like CTLA-4 and 2B4, linking immunology with materials science.
Professor Jae Hoon Park's research lab specializes in advanced functional materials and their electronic properties, with a strong focus on quantum materials, half-metallic and magnetic oxides, and defect engineering in complex oxides. The lab investigates novel phenomena such as half-metallicity, spin–orbit coupling, and charge ordering in perovskite and pyrochlore structures, aiming to uncover fundamental mechanisms behind electronic and magnetic behavior. Additionally, the lab explores the role of electron correlation and lattice dynamics in determining material properties, with applications in spintronics, energy-efficient electronics, and quantum devices. Their work bridges theoretical modeling with experimental characterization, particularly in oxide heterostructures and thin films for next-generation technologies.
Professor Hae-Young Lee's research lab focuses on vascular biology, stem cell therapy, and molecular mechanisms underlying cardiovascular diseases and tissue regeneration. Key research directions include arterial aging and its link to hypertension, the role of transcription factors like FOXO3a in vascular remodeling, and the use of mesenchymal stem cells (MSCs) engineered with pluripotency factors (Oct4/Sox2) to enhance regenerative potential. The lab also investigates inflammatory pathways in macrophages and the therapeutic potential of natural compounds such as galangin in modulating immune responses.
Professor Soo-Jin Kim's research lab specializes in the development and application of advanced organic and hybrid electronic devices, with a strong focus on flexible and nonvolatile memory technologies based on organic field-effect transistors and nanomaterials such as gold nanoparticles. The lab also investigates the physiological roles of incretin hormones—particularly glucose-dependent insulinotropic polypeptide (GIP)—in metabolic regulation, exploring their impact on insulin secretion, beta-cell function, and adipocyte metabolism, with implications for type 2 diabetes therapeutics. Additionally, the lab contributes to medical imaging research, particularly in improving the diagnostic accuracy of multidetector computed tomography (MDCT) for gallbladder cancer staging. The integration of materials science, bioelectronics, and translational biomedical research defines the lab’s interdisciplinary approach.
Professor Dohyun Nam's research lab focuses on advancing personalized cancer therapy, particularly for glioblastoma (GBM), by developing patient-derived preclinical models and dissecting the molecular mechanisms driving tumor progression and treatment resistance. The lab investigates key signaling pathways such as MET and Wnt/β-catenin in glioblastoma stem cells (GSCs), with an emphasis on the tumor microenvironment's role in promoting malignancy, including necrosis-induced mesenchymal transition. Innovative platforms, including microfluidic chips for high-throughput drug screening, are developed to overcome translational challenges in precision oncology.
Professor Eue Keun Choi's research lab specializes in cardiovascular and clinical epidemiology, focusing on real-world evidence from national health databases and advanced cardiac electrophysiology. The lab investigates the impact of systemic conditions—such as cancer, oral health, and atrial fibrillation—on cardiovascular outcomes, with a strong emphasis on population-level trends, risk prediction, and the development of AI-driven diagnostic tools for arrhythmias. Key research directions include leveraging claims data for health services research, understanding autonomic nervous system influences on cardiac arrhythmias, and applying deep learning to improve atrial fibrillation detection from wearable device data.
Professor Sung Hee Choi's research lab focuses on the pathophysiological mechanisms linking adipose tissue dysfunction, insulin resistance, and metabolic diseases such as type 2 diabetes mellitus and coronary artery disease. The lab investigates adipokines, including vaspin and fibroblast growth factor 21 (FGF21), as key regulators of glucose and lipid metabolism, with a particular emphasis on their roles in obesity-related metabolic and cardiovascular complications. Using advanced imaging techniques like multidetector row CT and proteomic profiling, the lab explores molecular signatures of visceral adipose tissue in early diabetes and identifies potential biomarkers and therapeutic targets. The research integrates clinical epidemiology with molecular and metabolic phenotyping in population-based cohorts.
Professor Dong Ki Kim's research lab specializes in biomedical data science, computational biology, and intelligent systems for healthcare and environmental applications. The lab focuses on leveraging Mendelian randomization and large-scale genomics to uncover causal relationships in chronic diseases, particularly between atrial fibrillation and kidney function. It also develops AI-driven navigation systems for micro aerial vehicles and ground vehicles using vision-based localization, integrating deep learning and filtering frameworks. Additionally, the lab investigates host-pathogen interactions in infectious diseases, especially avian coccidiosis, using genetic and immunological approaches.
Professor Jin-Young Kwox's research lab specializes in diagnostic and prognostic imaging in thyroid disease, with a primary focus on ultrasound-based risk stratification of thyroid nodules and papillary thyroid microcarcinoma (PTMC). The lab investigates the correlation between ultrasonographic features and molecular markers such as BRAF(V600E) mutation, aiming to improve clinical decision-making through non-invasive imaging predictors. Research also extends to preoperative ultrasound evaluation of extrathyroidal extension and the role of repeat fine-needle aspiration biopsy in nodules with suspicious features despite benign cytology.
Professor Taehui Lee's research lab specializes in stability analysis and control of dynamic systems, with a strong focus on sampled-data systems, neural networks with time-varying delays, and fuzzy-model-based control of chaotic systems. The lab develops advanced Lyapunov-based methods—particularly time-dependent discontinuous and free-matrix-based integral inequalities—to derive less conservative and more computationally efficient stability and performance criteria. Research also extends to biomedical applications, such as understanding autocrine survival mechanisms in cancer cells, particularly involving VEGF and VEGFR1 signaling. The lab emphasizes theoretical innovation combined with practical validation through numerical examples and real-world system modeling.
Professor Sangeun Lee's research lab focuses on dermatological and biomedical applications of natural compounds and smart drug delivery systems. The lab investigates the molecular mechanisms of skin barrier function, pigmentation disorders, and inflammatory skin diseases such as atopic dermatitis, with an emphasis on protease signaling and oxidative stress. A key research direction involves developing stimuli-responsive nanoparticles—particularly ROS- and pH-sensitive systems—for targeted delivery of anti-inflammatory and tyrosinase-inhibiting agents to enhance therapeutic precision. The lab also explores bioactive phytochemicals from plants like *Morus alba* for their potential in treating hyperpigmentation and oxidative damage.
Professor Min Hyuk Park's research lab specializes in the development and fundamental understanding of nanoscale hafnia-based ferroelectric and antiferroelectric thin films for next-generation electronic and energy applications. The lab focuses on phase engineering, strain control, and defect chemistry in HfO₂-based materials to stabilize ferroelectric and antiferroelectric phases critical for non-volatile memory, field-effect transistors, and high-energy-density capacitors. Key research directions include the origin of unexpected ferroelectricity in doped HfO₂, the role of crystallographic texture and processing conditions on phase stability, and the optimization of energy storage performance under extreme conditions. The lab combines advanced in situ characterization, quantitative phase analysis, and theoretical modeling to guide material design.
Professor Dong Joon Kim's research lab focuses on translational biomedical research with a strong emphasis on natural product pharmacology, drug-induced liver injury (DILI), and spinal regenerative medicine. The lab investigates the antiviral and anti-inflammatory mechanisms of bioactive compounds from traditional medicinal plants, particularly bis-benzylisoquinoline alkaloids, and explores their therapeutic potential against viral infections and chronic diseases. Additionally, the lab is actively involved in clinical research on gastrointestinal microbiota modulation in alcohol use disorders and the development of minimally invasive spinal fusion techniques using biomaterials such as PEEK cages and recombinant human bone morphogenetic protein-2 (rhBMP-2).
Professor Ilkwon Oh's research lab specializes in the design and development of advanced 2D and 3D nanomaterials for sustainable energy and environmental applications. Key research directions include electrochemical energy conversion (e.g., water splitting via efficient oxygen evolution reaction catalysts), flexible and durable energy harvesting devices such as triboelectric generators, and stimuli-responsive actuators based on MXene and conductive polymer composites. The lab also focuses on environmental remediation, particularly arsenic removal from water using tailored 3D nanostructured materials. Their work emphasizes scalable, eco-friendly synthesis methods and real-world applications in wearable devices, kinetic art, and biomedical systems.
Professor Young Sam Kim's research lab focuses on child and adolescent mental health, with a primary emphasis on autism spectrum disorder (ASD) prevalence, bullying-related psychosocial outcomes, and the development of culturally valid diagnostic tools. The lab investigates the interplay between behavioral health, social adversity, and neurobiological mechanisms, particularly in school-aged populations. Key research directions include improving early detection of ASD, understanding the longitudinal impact of school bullying on suicidal ideation, and validating psychiatric assessment instruments for Korean youth. The lab integrates epidemiological, clinical, and translational approaches to inform public health interventions and mental health policy.
Professor Taehwan Kim's research lab focuses on the immunological and molecular mechanisms underlying chronic inflammatory diseases, particularly ankylosing spondylitis (AS) and reactive arthritis. The lab investigates the interplay between human leukocyte antigen B27 (HLA-B27), microbial antigens, and host immune responses, aiming to uncover pathogenic pathways driving chronic inflammation and pathological bone formation. Additional research directions include identifying novel biomarkers and therapeutic targets—such as alkaline phosphatase and cartilage turnover markers—for disease activity and progression in AS, as well as exploring the clinical potential of natural compounds like tissue-cultured mountain ginseng in treating related conditions such as erectile dysfunction. The lab integrates translational immunology, molecular tracing techniques, and clinical trials to advance precision medicine approaches in autoimmune and metabolic disorders.
Professor Jong-kyung Jung's research lab focuses on signal transduction pathways regulating cell survival, metabolism, and homeostasis, with a particular emphasis on the roles of kinases such as Akt, STATs, and LKB1 in cellular responses to growth factors, stress, and metabolic cues. The lab investigates molecular mechanisms underlying mitophagy, apoptosis, and energy metabolism, using Drosophila models to dissect conserved signaling networks relevant to human diseases like Parkinson’s disease, cancer, and metabolic disorders. Key areas include post-translational modifications (e.g., phosphorylation, ubiquitination) of signaling proteins and their impact on cellular fate decisions. The lab integrates genetic, biochemical, and cell biological approaches to uncover novel regulators and effectors in key signaling pathways.