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 Junsuk Rho's research lab specializes in nanophotonics, metamaterials, and topological photonics, focusing on the design and application of advanced optical materials for next-generation photonic devices. The lab pioneers data-driven approaches using deep learning to accelerate the discovery and optimization of nanophotonic structures, including metasurfaces and hyperbolic metamaterials. Key research directions include vectorial holography, structural color printing, and intelligent optical sensors for real-time chemical and biological detection. The lab also explores topological properties in photonic systems to enable robust, low-loss light manipulation.
Professor Donghun Kim's research lab focuses on the neuroimmunological mechanisms underlying neuropathic pain and cerebrovascular dysfunction. The lab investigates how glial cell activation, toll-like receptor 2 (TLR2), NADPH oxidase 2 (Nox2), and oxidative stress contribute to spinal cord inflammatory responses following nerve injury. Additionally, the lab explores the role of vascular risk factors and cerebrovascular reactivity in cognitive decline and neurodegenerative diseases such as Alzheimer’s. Their work bridges molecular neuroscience, immunology, and clinical outcomes in neurological and oncological conditions.
Professor Sang Ouk Kim's research lab specializes in the design, synthesis, and application of advanced two-dimensional nanomaterials, particularly MXenes, graphene, and carbon-based nanomaterials, with a focus on their electromagnetic, catalytic, and electronic properties. The lab explores chemical functionalization, doping (especially nitrogen-doping), and hybrid nanostructure engineering to tailor material behavior for energy conversion, environmental sustainability, and high-performance electronics. Key research directions include EMI shielding in 2D MXene films, noble-metal-free hydrogen evolution reaction (HER) catalysts using MoSx–NCNT hybrids, and stable dispersion of graphene in organic solvents via noncovalent functionalization.
Professor Hyeon Suk Shin's research lab specializes in the design and synthesis of advanced two-dimensional nanomaterials for sustainable energy applications. The lab focuses on transition metal dichalcogenides (TMDs) such as MoS₂ and WS₂, as well as graphene-based hybrids, to develop efficient, low-cost electrocatalysts for the hydrogen evolution reaction (HER). Key research directions include engineering multifunctional active sites, controlling nanostructure morphology, and enhancing charge transfer in 2D heterostructures for energy conversion and storage. The lab also investigates optoelectronic properties and surface-enhanced Raman scattering (SERS) in 2D materials, combining materials synthesis with advanced characterization techniques.
Professor Yohan Lee's research lab focuses on population health and health systems research, with a strong emphasis on understanding the epidemiological and socioeconomic determinants of disease burden across populations. The lab investigates the genetic and molecular mechanisms underlying common diseases such as meningioma, while also examining the broader societal and economic impacts of chronic and non-communicable diseases. A key focus is on health disparities, particularly among vulnerable populations such as North Korean refugees, and how health outcomes evolve during migration and social adaptation. The lab integrates clinical, genetic, and population-level data to inform public health policy and health system strengthening.
Professor Hyun-Chang Kim's research lab focuses on epidemiological and population-based studies targeting non-communicable diseases (NCDs), with a strong emphasis on cardiovascular disease, hypertension, liver disease, and dry eye disease (DED). The lab investigates the role of biomarkers—such as serum aminotransferase levels—within normal ranges and their association with long-term health outcomes, including mortality. Utilizing large-scale national health datasets like KNHANES and NHI-Big Data, the lab explores spatial and temporal trends in disease prevalence and management, aiming to identify vulnerable subgroups and inform targeted public health interventions. The research also emphasizes preventive strategies and risk factor modification to reduce the global burden of chronic diseases.
Professor Ju-hyuk Son's research lab focuses on translational oncology, particularly in breast cancer and hepatocellular carcinoma, with an emphasis on identifying novel therapeutic targets and improving treatment efficacy through innovative drug combinations and molecular profiling. The lab investigates mechanisms of drug resistance in aggressive subtypes such as triple-negative breast cancer (TNBC), explores the role of signaling pathways like EGFR and MET, and applies advanced genomic technologies such as low-pass whole-genome sequencing of circulating tumor DNA to predict clinical outcomes. Additionally, the lab is actively involved in developing targeted radiopharmaceutical therapies, including holmium-166-chitosan for liver cancer, highlighting its expertise in molecular imaging and interventional nuclear medicine.
Professor Sang Hoon Ju's research lab specializes in the historical and architectural transformation of governmental and public facilities in Korea during the Japanese colonial era (1910–1945), with a focus on institutional buildings such as schools, hospitals, courts, and administrative offices. The lab investigates the adaptation of traditional Korean architecture—particularly *hanok*—into modern Western-influenced institutional forms through detailed analysis of archival drawings and field surveys. Key research directions include the evolution of spatial planning, material transitions, and the integration of colonial-era modernization policies into local architectural practice.
Professor Jin Mo Goo's research lab specializes in thoracic radiology and medical imaging, focusing on the advanced characterization of pulmonary diseases using CT and PET-CT. The lab investigates imaging biomarkers for lung cancer, particularly ground-glass nodules and tumor texture features, to improve diagnosis, prognosis prediction, and treatment planning in non-small cell lung cancer. Key research directions include the differentiation of benign from malignant pulmonary lesions, especially in regions with high prevalence of granulomatous diseases, and the radiological features of rare thoracic conditions such as tracheal diverticula and BALT lymphoma.
Professor Han-Yeong Woo's research lab specializes in the design and synthesis of advanced organic semiconducting materials for next-generation optoelectronic devices, with a primary focus on organic photovoltaics (OPVs). The lab emphasizes the development of nonfullerene acceptors and high-performance polymer donors with tailored molecular structures to achieve high power conversion efficiencies while ensuring compatibility with eco-friendly, scalable processing techniques. Key research directions include molecular engineering for enhanced charge transport, morphology control in bulk heterojunction solar cells, and the optimization of device performance through systematic structure-property relationships. The lab also explores two-photon absorption materials for bioimaging and sensing applications, demonstrating a broad yet focused approach to functional organic materials.
Professor Young Tae Jang's research lab specializes in the development of advanced fluorescent probes and nanomaterial-based sensing platforms for real-time, subcellular monitoring of biologically relevant molecules. The lab focuses on designing highly selective and sensitive probes for key cellular ions (e.g., Zn²⁺), signaling molecules (e.g., HOCl, ATP), and biomolecules (e.g., glucagon), with applications in live-cell imaging and disease modeling. Their work integrates synthetic chemistry, nanomaterials, and fluorescence spectroscopy to enable precise visualization of dynamic biochemical processes in complex biological environments.
Professor Eunil Won's research lab specializes in precision measurements in heavy flavor and quarkonium physics using electron-positron colliders, particularly focusing on B-meson decays and charmonium/charm resonance spectroscopy. The lab investigates rare decays, anomalous decay rates (such as those related to lepton universality violation), and the discovery of exotic hadronic states, including charmonium-like resonances and tetraquarks. Utilizing large data samples from the Belle and BABAR experiments at KEK and SLAC, the group conducts detailed analyses of final states involving J/ψ, ϒ, D*, and τ leptons to probe new physics beyond the Standard Model. Their work includes precise branching fraction measurements, resonance structure studies, and polarization measurements in semileptonic B decays.
Professor Sung Ho Won's research lab specializes in statistical genetics and bioinformatics, with a focus on identifying genetic factors underlying complex diseases such as hypertension, COPD, and type 2 diabetes, particularly in understudied populations like those of African ancestry. The lab develops advanced statistical and computational methods for genome-wide association studies, pan-genome analysis, and p-value combination techniques to improve the power and robustness of genetic association studies. A key emphasis is on integrating multi-omics data—especially microbiome and extracellular vesicle profiles—to uncover host-microbe interactions in metabolic and respiratory diseases. The lab also pioneers novel family-based and multi-trait analysis methods that enhance genetic discovery while maintaining resilience to population stratification.
Professor Jungyong Lee's research lab specializes in the design and application of advanced nanomaterials for energy conversion, electronic devices, and biomedical technologies. Key research directions include metal-organic frameworks (MOFs) for heterogeneous and hybrid catalysis, 2D materials and graphene-based liquid cells for in situ electron microscopy, oxide-based resistive memory devices for flexible and transparent electronics, and multifunctional magnetic-gold nanocomposites for theranostic cancer therapy. The lab emphasizes in situ characterization techniques to probe dynamic processes at the nanoscale, particularly in energy materials and catalytic systems.
Professor Jae-Weon Kim's research lab focuses on identifying molecular and epigenetic mechanisms underlying cancer, metabolic disorders, and neuropsychiatric conditions. The lab specializes in integrating multi-omics approaches—such as proteomics, epigenetics, and machine learning—with clinical and neuroimaging data to discover biomarkers and therapeutic targets. Key research directions include the role of adipokines in tumor microenvironments, DNA methylation in cervical and endometrial cancers, and predictive modeling of treatment response in ADHD and depression. The lab also investigates the biological links between chronic inflammation, metabolic dysfunction, and mental health disorders.
Professor Bumjoon Kim's research lab specializes in the development of advanced polymer-based materials for next-generation optoelectronic devices, with a primary focus on all-polymer solar cells (all-PSCs). The lab explores molecular design, side-chain engineering, and polymer morphology control to enhance power conversion efficiency, mechanical robustness, and long-term stability. Key research directions include the synthesis of novel conjugated polymers, understanding structure-property relationships, and integrating nanomaterials such as gold nanoparticles into block copolymer templates for functional device integration. The lab's work bridges materials chemistry, polymer physics, and device engineering to enable scalable, flexible, and durable energy solutions.
Professor Dongwoo Cho's research lab specializes in advanced biofabrication technologies, focusing on 3D bioprinting and regenerative medicine. The lab develops innovative bioinks—particularly decellularized extracellular matrix (dECM) based formulations—to create biomimetic microenvironments that support complex tissue morphogenesis and function. Key research directions include the fabrication of patient-specific, multi-cellular, and multi-tissue constructs such as ear cartilage, osteochondral interfaces, and organ-on-a-chip systems using thermoplastic polymers (e.g., PCL) and functional hydrogels. The lab emphasizes structural fidelity, mechanical stability, and biological functionality in engineered tissues through novel printing strategies like sacrificial molding and multi-head deposition systems.
Professor Wangyang Park's research lab specializes in single-cell genomics and tumor microenvironment analysis, focusing on intratumoral heterogeneity, cancer evolution, and therapy resistance in solid tumors. The lab employs single-cell RNA sequencing (scRNA-seq) and high-throughput sequencing to dissect the functional and genetic diversity of cancer cells and their interactions with immune and stromal cells in the tumor microenvironment. Key research directions include understanding mechanisms of drug resistance, identifying clinically actionable variants with low allele fractions, and developing personalized therapeutic strategies based on dynamic transcriptomic changes during disease progression. The lab integrates multi-omics approaches to translate single-cell insights into precision oncology applications.
Professor Jeong Hun Kim's research lab specializes in translational biomedical engineering, focusing on neurovascular biology, retinal disease mechanisms, and advanced drug delivery systems. The lab investigates the blood-retinal and blood-brain barriers, exploring their roles in central nervous system disorders and developing nanomaterial-based strategies for targeted delivery. Key research directions include the use of CRISPR-Cas9 genome editing for in vivo gene therapy, the development of microfluidic models for vascular biology, and the application of gold nanoparticles to overcome biological barriers in the eye and brain. The lab integrates molecular biology, nanotechnology, and in vivo models to address unmet clinical challenges in neurodegenerative and ocular diseases.
Professor Kyungmu Lee's research lab specializes in medical image analysis and computer vision, with a focus on developing deep learning and computational methods for enhancing diagnostic accuracy in medical imaging. Key research directions include automatic image enhancement for retinal and ultrasound images, interactive and weakly supervised segmentation, and 3D surface reconstruction from 2D images using shape-from-shading and shape-from-texture techniques. The lab emphasizes real-world clinical applicability by addressing challenges such as low-quality images, limited annotations, and user interaction efficiency.