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 Sun Mi Choi's research lab focuses on interstitial lung diseases, particularly idiopathic pulmonary fibrosis (IPF), with a strong emphasis on understanding disease mechanisms, identifying risk factors, and exploring novel therapeutic interventions. The lab investigates the interplay between fibrosis, cancer, and metabolic factors such as smoking and diabetes, using large-scale population-based databases and preclinical animal models. Key research directions include the role of mesenchymal stem cells in modulating immune responses—especially macrophages and monocytes—in fibrotic lung injury, as well as the potential repurposing of drugs like metformin for anti-fibrotic therapy. The lab also explores non-pharmacological interventions, such as acupuncture, for symptom management in chronic lung disease.
Professor Jinwoo Shin's research lab specializes in advancing the reliability and robustness of deep learning systems, with a strong focus on out-of-distribution detection, class-imbalance mitigation, and representation learning. The lab develops novel regularization techniques, such as self-knowledge distillation and contrastive learning with distributionally shifted augmentations, to improve model generalization and reduce overconfidence. Key research directions include uncertainty estimation, distribution shift detection, and data augmentation strategies that enhance minority class generalization. The lab's work bridges theoretical insights with practical applications in real-world machine learning systems.
Professor Yu Woong-Ryeol's research lab specializes in the design and fabrication of advanced nanomaterials for energy storage, biomedical, and environmental applications. The lab focuses on developing novel 1D nanostructures—particularly through coaxial electrospinning—enabling precise control over composition, morphology, and functionality. Key research directions include piezoelectric nanocomposites for self-powered batteries, hollow and porous carbon nanofibers for high-performance anodes, and shape memory polymers with tunable mechanical and thermal responses. The lab emphasizes the synergy between materials architecture, mechanical properties, and electrochemical performance to address challenges in lithium-ion batteries and next-generation energy devices.
Professor Jongyong Kim's research lab specializes in the synthesis, characterization, and application of two-dimensional transition metal dichalcogenides (2D TMDs), with a focus on monolayer molybdenum disulfide (MoS₂) and tungsten disulfide (WS₂). The lab investigates the optical and electronic properties of these materials at the nanoscale, particularly the role of defects, doping, and layer thickness in tuning their photoluminescence and bandgap behavior. Using advanced spectroscopic and microscopic techniques such as nanoscale confocal imaging, Raman spectroscopy, and scanning transmission electron microscopy, the lab uncovers atomic-scale mechanisms behind defect healing, excitonic transitions, and phase transitions in 2D semiconductors. Their work also extends to novel functional materials, including thermally stable supercooled liquids with stimuli-responsive optical properties, highlighting a multidisciplinary approach to nanomaterials design and optoelectronic applications.
Professor Sanghak Lee's research lab specializes in the development and characterization of advanced Co-Cr-Mo biomedical alloys, focusing on microstructure-property relationships, phase stability, and mechanical performance optimization for orthopedic and dental implant applications. The lab investigates the effects of alloying elements such as nitrogen and carbon, heat treatment processes, and deformation processing on phase transformation, martensite formation, and carbide precipitation. Their work combines tensile testing, XRD analysis, and microstructural observation to enhance the strength, ductility, and biocompatibility of Ni-free Co-Cr-Mo alloys. The lab also explores the clinical relevance of metabolic biomarkers in cardiovascular disease, linking adipokine and omega-3 fatty acid levels to mortality outcomes in acute myocardial infarction patients.
Professor Hye-Sun Park's research lab focuses on the intersection of immunology, redox signaling, and advanced biomedical technologies. The lab investigates molecular mechanisms underlying innate immune responses, particularly the role of NADPH oxidases (Nox) and Toll-like receptor 4 (TLR4) in reactive oxygen species (ROS) generation and downstream signaling pathways such as NF-κB activation. In parallel, the lab develops innovative diagnostic and therapeutic platforms, including in-vehicle augmented reality (AR) systems for driving safety and upconverting nanoparticles (UCNPs) for long-term in vivo lymphatic imaging. The research also extends to plasma-based technologies, such as microplasma jets for nonthermal plasma applications in biomedicine and materials processing.
Professor Sang-Woo Kim's research lab specializes in atmospheric aerosol science, focusing on the measurement, characterization, and modeling of aerosol optical properties and their climatic impacts. The lab conducts long-term observational studies using ground-based networks such as SKYNET and integrates satellite data to assess aerosol variability, trends, and radiative effects across diverse environments. Key research directions include in situ aerosol monitoring, sky radiometer calibration, and the validation of satellite-derived aerosol products like CALIOP and MODIS. The lab also contributes to improving climate model representations of aerosols and cloud condensation nuclei through global observational datasets.
Professor Jae-Min Myoung's research lab specializes in the development and application of advanced 2D and nanostructured materials for next-generation electronic and energy devices. Key research directions include the design of MXene-based sensors for chemical, biological, and physical detection, the engineering of flexible and transparent electrochromic devices using viologen-based gels, and the exploration of novel piezoelectric nanomaterials such as trigonal tellurium nanowires for high-performance nanogenerators. The lab also investigates optoelectronic properties of ZnO nanostructures and innovative fabrication techniques for monolayer particle assemblies.
Professor Jeong Ik Lee's research lab specializes in advanced nuclear energy systems, with a focus on small modular reactors (SMRs) and supercritical carbon dioxide (S-CO2) power cycles. The lab develops inherently safe, long-life reactor designs using innovative fuels such as uranium carbide and advanced control mechanisms like drum-type control rods. Research directions include modular reactor integration, passive safety features, and applications for decentralized and clean energy generation in small communities. The lab aims to contribute to sustainable energy solutions by replacing aging fossil fuel plants with compact, high-efficiency nuclear systems.
Professor Jun Hyuk Lee's research lab specializes in hepatology and viral hepatitis, with a primary focus on chronic hepatitis B (CHB) management and hepatocellular carcinoma (HCC) prevention. The lab investigates the long-term outcomes of antiviral therapy, particularly the impact of residual viral load and treatment strategies on HCC development in cirrhotic and non-cirrhotic patients. Key research directions include optimizing ribavirin dosing in hepatitis C treatment, evaluating ablation versus resection for small HCC, and identifying high-risk populations who may benefit from early antiviral therapy despite low-level viremia. The lab emphasizes clinical translation, aiming to refine treatment protocols to improve survival and reduce HCC incidence.
Professor Young Sik Kim's research lab specializes in theoretical and applied physics, with a strong focus on electromagnetic theory, molecular optics, and advanced materials for optoelectronic applications. The lab investigates radiative and non-radiative energy transfer mechanisms in nanostructured systems, particularly in the context of molecules near spherical surfaces, and develops novel organic semiconductors for high-efficiency light-emitting devices. Additionally, the lab contributes to the design of advanced sequence sets for communication systems, emphasizing low-correlation zones and optimal autocorrelation properties in coding theory. These diverse research directions reflect a deep integration of mathematical physics, materials science, and information theory.
Professor Sang-Hoon Rhee's research lab focuses on innate immune sensing mechanisms, particularly Toll-like receptor (TLR)-mediated signaling in intestinal epithelial and immune cells. The lab investigates how microbial components such as lipopolysaccharide (LPS) and flagellin activate TLR4 and TLR5, leading to downstream inflammatory responses and implications in gastrointestinal diseases. Key research directions include the molecular mechanisms of TLR signaling, polarization of TLR responses in colonic mucosa, and the role of PI3K and STAT1 in mediating inflammatory signaling. The lab integrates primary human tissues, cell models, and animal models to dissect host-microbe interactions in gut homeostasis and inflammation.
Professor Sang Wan Kim's research lab focuses on molecular and cellular mechanisms underlying bone metabolism and mineral homeostasis, with a particular emphasis on the regulation of osteoblast differentiation and activation. The lab investigates how signaling pathways—such as those involving parathyroid hormone (PTH), sclerostin, and PPARγ—control bone formation and remodeling, using advanced lineage tracing and structural biology approaches. Additionally, the lab explores endocrine disorders, including aldosterone-producing adenomas and pituitary adenomas, with a focus on genetic drivers and clinical implications. Their work bridges basic science and clinical translation in metabolic bone disease and endocrinology.
Professor Min Hee Hong's research lab focuses on advanced materials synthesis and their applications in energy and biomedical technologies. The lab specializes in the development of doped mesoporous metal oxide thin films, particularly Al-doped ZnO, for enhanced electrical and structural properties suitable for optoelectronic devices. In parallel, the lab conducts clinical oncology research, particularly in targeted and chemotherapy regimens for advanced or metastatic cancers such as renal cell carcinoma, esophageal squamous cell carcinoma, and salivary gland cancer, with an emphasis on treatment efficacy, safety, and biomarker-driven therapy. The integration of materials science and translational oncology defines the lab’s interdisciplinary approach.
Professor Kyung Won Kwon's research lab specializes in ultrafast vibrational spectroscopy and molecular dynamics simulations to investigate the structural and dynamical behavior of molecules in complex chemical environments. The lab focuses on understanding solvation dynamics, ion-solvent interactions, and structural fluctuations in energy-relevant systems such as lithium-ion battery electrolytes and superconcentrated aqueous electrolytes. By combining femtosecond two-dimensional infrared spectroscopy with advanced theoretical modeling, the lab uncovers the microscopic mechanisms underlying fast ion transport and molecular exchange processes. Their work bridges fundamental molecular dynamics with practical applications in energy storage and conversion technologies.
Professor Tae-Joon Kang's research lab specializes in the development of advanced nanomaterials and plasmonic platforms for biomedical sensing and diagnostics. The lab focuses on surface-enhanced Raman scattering (SERS)-based sensors, integrating nanomaterials such as gold nanowires, nanopopcorn, and metal-organic frameworks (MOFs) for highly sensitive and selective detection of biomarkers, pathogens, and volatile organic compounds. Key research directions include the design of multiplexed and quantitative biosensors for infectious diseases, antimicrobial resistance, cancer biomarkers like telomerase, and food spoilage indicators.
Professor Byung Kwan Park's research lab specializes in diagnostic radiology, with a primary focus on advanced magnetic resonance imaging (MRI) and computed tomography (CT) techniques for accurate detection and characterization of urological malignancies, particularly prostate cancer and renal masses. The lab investigates the utility of diffusion-weighted imaging (DWI), T2-weighted imaging, and delayed contrast-enhanced CT in improving tissue differentiation, local staging, and non-invasive diagnosis. A key research direction involves optimizing 3T MRI protocols using phased-array coils to enhance diagnostic accuracy while maintaining image quality comparable to more invasive methods like endorectal MRI.
Professor Seung-Min Bang's research lab focuses on the molecular mechanisms underlying pancreatic and biliary tract cancers, with a particular emphasis on early carcinogenesis, tumor microenvironment, and metabolic reprogramming. The lab investigates key transcription factors like Oct4 and Nanog in pre-malignant lesions, explores the prognostic role of angiogenic factors such as VEGF-C in cholangiocarcinoma, and examines the impact of repurposed drugs like statins on cancer survival. Using patient-derived models and advanced imaging techniques such as FDG-PET, the lab aims to improve diagnosis, treatment selection, and therapeutic outcomes in gastrointestinal malignancies.
Professor Cheol-ho Kim's research lab specializes in translational biomedical engineering and cancer biology, focusing on the development of innovative regenerative therapies and novel cancer treatments. The lab investigates tumor microenvironment dynamics in head and neck squamous cell carcinoma using single-cell genomics, explores 3D bioprinted scaffolds for tracheal tissue repair, and pioneers non-thermal plasma as a targeted cancer therapy. A central theme is the modulation of cellular responses—such as immune modulation, lysosomal activity, and metastasis—through advanced biomaterials and physical stimuli.
Professor Youngjae Kim's research lab focuses on translational biomedical research with a strong emphasis on molecular mechanisms underlying infectious diseases, gastrointestinal inflammation, and medical imaging. The lab investigates host-microbe interactions, particularly the role of specific bacteria like *Streptococcus mutans* and *S. sobrinus* in early childhood caries, while also exploring nuclear receptors such as ESRRA in regulating intestinal homeostasis and autophagy. Additionally, the lab applies advanced imaging technologies, including deep learning and quantitative CT analysis, to improve diagnostic accuracy in spine and lung nodule segmentation. The integration of molecular biology, immunology, and computational imaging defines the lab’s multidisciplinary approach to precision medicine.