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 Jae-Hoon Kim's research lab specializes in cancer biomarker discovery and molecular oncology, with a focus on identifying and validating novel diagnostic and prognostic markers in gynecological cancers, particularly ovarian and cervical cancer. The lab investigates key molecules such as osteopontin, lipocalin2, cyclin-dependent kinase 1, and epithelial cell adhesion molecule (Ep-CAM), exploring their roles in tumor progression, therapy resistance, and patient survival. Utilizing a combination of molecular biology techniques, immunohistochemistry, and clinical correlation studies, the lab aims to translate basic findings into clinically useful biomarkers for early detection and personalized treatment strategies. The research also extends to hypoxia signaling pathways and cancer stem cell markers, highlighting the lab’s commitment to understanding the tumor microenvironment and its impact on disease outcomes.
Professor Sunkim Kim's research lab specializes in antimicrobial peptide discovery and synthetic biology, focusing on the molecular characterization of novel host-defense peptides from aquatic organisms and their applications in developing salt-resistant antibiotics. The lab also explores genome engineering in bacteria, particularly through adaptive laboratory evolution and metabolic reprogramming, to optimize microbial strains for industrial biotechnology. A key research direction involves understanding and manipulating gene networks to enhance the production of valuable metabolites in engineered microbes.
Professor Yun-Soo Bae's research lab focuses on the molecular mechanisms of reactive oxygen species (ROS) signaling in cellular physiology and pathology, particularly in growth factor and cytokine signaling pathways. The lab investigates how ROS, especially hydrogen peroxide (H₂O₂), function as second messengers in signal transduction, with a strong emphasis on the roles of NADPH oxidases (such as Nox1 and Nox2) and their regulatory proteins like Rac GTPase and β-Pix. Key research directions include the regulation of ROS production in immune cells and cancer cells, the interplay between ROS and receptor tyrosine kinases (e.g., EGFR, PDGFR), and the involvement of ROS in diseases such as atherosclerosis and cancer. The lab employs advanced techniques including live-cell imaging, RNA interference, and genetically modified mouse models to dissect redox signaling networks at the molecular level.
Professor Yon Su Kim's research lab specializes in nephrology and immunology, focusing on the pathogenesis and treatment of kidney diseases, particularly membranous nephropathy and transplant outcomes. The lab investigates autoantibodies, such as anti-PLA2R, in autoimmune kidney disorders, explores the role of innate immune cells like NKT cells in ischemia-reperfusion injury, and develops targeted biologic therapies using engineered cytokine antagonists. Additionally, the lab applies machine learning and statistical modeling to predict graft survival and understand metabolic influences—such as metabolic acidosis—on long-term kidney allograft outcomes.
Professor Donghui Kim's research lab specializes in advanced perovskite-based optoelectronic materials, with a primary focus on developing high-efficiency, stable perovskite solar cells for next-generation photovoltaics. The lab explores novel strategies such as defect passivation, anion engineering, and crystal structure control to enhance the optoelectronic properties of both wide- and low-bandgap perovskites. Key research directions include tandem solar cell architectures, especially all-perovskite and perovskite/silicon tandems, as well as fundamental studies on charge transport, defect mitigation, and thin-film growth techniques. The lab also investigates doped metal oxides and oxide heterostructures for improved electron transport and magnetic functionality.
Professor Du-Hyun Jung's research lab focuses on the intricate interplay between innate and adaptive immunity in lung diseases and cancer. The lab investigates immune checkpoint regulation, particularly PD-1/PD-L1 and TIM family molecules, in the tumor microenvironment of lung cancer. It also explores the roles of pattern recognition receptors like TLR2 and transcription factors such as IRF5 and Pellino-1 in macrophage polarization and fibrotic lung diseases. Additionally, the lab examines the functions of regulatory T cells and innate lymphoid cells in immune homeostasis and pathological inflammation.
Professor Han-Joon Kim's research lab specializes in advanced functional oxide materials, particularly hafnia-based ferroelectrics, for next-generation electronic and energy devices. The lab focuses on enhancing ferroelectric properties through atomic-layer deposition and nanostructure engineering, including interfacial layer design and grain size control to stabilize the ferroelectric phase. Additional research directions include the development of implantable drug delivery systems using ultrasound-responsive materials and optimizing flash memory architectures for improved reliability and performance. The lab integrates materials science, device physics, and biomedical applications to address challenges in energy storage, neuromodulation, and smart therapeutics.
Professor Jungho Im's research lab specializes in remote sensing and environmental monitoring, focusing on the development and application of advanced machine learning techniques for Earth observation. The lab emphasizes land surface and coastal water quality monitoring, change detection, evapotranspiration estimation, and crop classification using multi-source satellite data such as Landsat, MODIS, GOCI, and SAR sensors. Key research directions include improving the accuracy of environmental parameter estimation through hybrid modeling, data fusion, and contextual analysis, particularly in urban and coastal regions of South Korea. The lab integrates optical and radar remote sensing with in-situ measurements to support operational environmental monitoring and climate resilience strategies.
Professor Eun Young Kim's research lab focuses on interdisciplinary studies at the intersection of biomedical sciences and consumer behavior. The lab investigates neurodegenerative mechanisms, particularly zinc-induced neuronal toxicity and circadian clock regulation through post-translational modifications such as O-GlcNAcylation and phosphorylation. It also explores clinical applications in gastrointestinal diagnostics, including the use of endoscopic ultrasound-guided fine-needle biopsy for subepithelial tumors. Additionally, the lab examines consumer technology adoption, especially mobile commerce and online shopping behaviors, with an emphasis on perceived value and user experience.
Professor Sang Min Won's research lab specializes in the development of advanced, biocompatible electronic systems for biomedical applications, with a focus on flexible, stretchable, and bioresorbable electronics. The lab pioneers skin-like and implantable sensors, neural interfaces, and multimodal sensing platforms that enable long-term, high-resolution monitoring of physiological and neural signals. Key research directions include wireless powering and communication, ultrathin electrode arrays for brain-computer interfaces, and novel encapsulation materials for transient implants.
Professor Ji-Ho Park's research lab specializes in the design and development of multifunctional nanomaterials for cancer theranostics, focusing on hybrid nanoassemblies that integrate diagnostic imaging, targeted drug delivery, and therapeutic activation. The lab explores innovative nanoparticle architectures—such as magnetic nanoworms, micellar systems, and gold nanorod-based cooperative systems—engineered for enhanced tumor targeting, prolonged circulation, and stimuli-responsive behavior. Key research directions include optimizing nanoparticle shape, surface ligand density, and modular assembly strategies (e.g., barge and tanker designs) to improve in vivo performance and clinical translation potential. The lab emphasizes multimodal imaging (e.g., MRI, fluorescence, NMR) combined with controlled drug release and photothermal therapy for precision oncology applications.
Professor Sung-Hoon Kim's research lab specializes in computational science and software engineering, with a focus on improving software quality and reliability through machine learning and data-driven analysis. The lab develops innovative techniques for latent bug detection using change classification and defect prediction models trained on software repository data, while also addressing challenges in simulation setup and free energy calculations for molecular systems. Their work bridges software engineering and computational chemistry, particularly through tools like CHARMM-GUI for ligand modeling and alchemical free energy simulations. The lab emphasizes practical, scalable solutions for both software development and molecular simulation workflows.
Professor Hyeon Woo Lee's research lab specializes in quantum transport phenomena, spintronics, and plasma-based biomedical applications. The lab investigates fundamental aspects of electron transport in low-dimensional systems, including phase-coherent transport and electron counting statistics in disordered conductors, with a focus on quantum dots and quasi-1D systems. In addition, the lab explores current-induced magnetic switching in two-dimensional van der Waals magnets and develops non-thermal plasma jets for medical applications such as tooth bleaching. The integration of nanoscale spintronics with plasma science and natural product-based cancer therapeutics highlights the lab’s interdisciplinary approach to advanced materials and biomedical technologies.
Professor Taeseup Song's research lab specializes in the design and engineering of advanced nanomaterials for sustainable energy applications, with a primary focus on energy storage and electrocatalysis. The lab develops novel nanostructured materials—such as core-shell nanotubes, high-entropy alloys, and amorphous borophosphates—to address critical challenges in lithium-ion batteries and water electrolysis, including volume expansion, poor conductivity, and sluggish reaction kinetics. By leveraging principles of materials physics, phase engineering, and surface chemistry, the lab aims to create high-performance, durable, and cost-effective electrocatalysts and battery anodes.
Professor Younggon Kim's research lab specializes in medical imaging and molecular genetics, focusing on advancing diagnostic accuracy for liver diseases through innovative MRI techniques and genetic analysis. The lab investigates the application of hepatobiliary and extracellular contrast agents in MRI to improve early detection of hepatocellular carcinoma (HCC), particularly in patients with chronic liver disease. Additionally, the lab explores multi-marker genetic approaches to unravel the polygenic architecture of complex traits, aiming to enhance predictive models for disease susceptibility. Their work bridges radiological imaging and genomics to improve precision diagnosis and patient outcomes.
Professor Gi Ra Lee's research lab specializes in the design, synthesis, and self-assembly of functional colloidal particles and nanostructured materials. The lab focuses on creating anisotropic and patchy colloids, hierarchical superstructures, and stimuli-responsive particles through bottom-up fabrication strategies. Key research directions include colloidal self-assembly driven by particle shape, surface engineering, and interfacial phenomena, with applications in flexible electronics, photonic materials, and advanced catalysts.
Professor Jihyun Hong's research lab focuses on advancing next-generation energy storage technologies, with a strong emphasis on high-capacity cathode and anode materials for lithium-ion and post-lithium batteries. The lab investigates the fundamental mechanisms behind oxygen-redox chemistry in lithium-excess layered oxides, develops innovative prelithiation strategies using molecularly engineered lithium complexes, and explores sustainable organic electrode materials for cost-effective and environmentally friendly batteries. A key focus is improving the initial Coulombic efficiency and cycle stability of silicon-based and graphite-silicon composite anodes through tailored chemical prelithiation techniques.
Professor Ji Man Kim's research lab specializes in the design and synthesis of advanced porous materials, with a focus on mesoporous silica, metal-organic frameworks (MOFs), and microporous organic networks (MONs). The lab explores their structural control, surface engineering, and applications in environmental remediation, catalysis, and energy storage. Key research directions include the development of hybrid materials with tailored porosity and wettability, such as MOF@MON composites and hollow microporous structures, for efficient adsorption and catalytic performance.
Professor Young Eun Kim's research lab focuses on cellular and molecular mechanisms underlying neurodegenerative diseases, kidney podocyte function, and cancer signaling pathways. Key research directions include zinc-induced neuronal cell death, insulin-regulated TRPC channel dynamics in podocytes, the role of compound EGFR mutations in lung adenocarcinoma, and the regulation of protein acetylation and redox signaling in metabolic and renal diseases. The lab integrates advanced techniques such as live-cell imaging, next-generation sequencing, and mass spectrometry to explore post-translational modifications and ion channel signaling in disease contexts.
Professor Sin-hyeon Shin's research lab specializes in high-energy particle physics, focusing on precision measurements and searches for new physics at the Large Hadron Collider (LHC). The lab conducts cutting-edge research on quantum chromodynamics (QCD), Higgs boson properties, jet physics, and the study of strongly interacting matter in heavy-ion collisions. Key experimental efforts include particle-flow reconstruction, jet energy calibration, and the investigation of collective phenomena in high-multiplicity proton-proton collisions, as well as searches for invisible Higgs boson decays. The work leverages data from the CMS experiment at CERN, emphasizing advanced analysis techniques and detector performance optimization.