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 Jangwon Seo's research lab specializes in the development of high-performance, stable, and low-cost perovskite solar cells through innovative materials engineering and scalable fabrication processes. The lab focuses on optimizing perovskite absorbers—particularly formamidinium-based and tin-based perovskites—by controlling film morphology, reducing oxidation, and enhancing charge transport. Key research directions include solvent engineering, interfacial modification with functional layers (e.g., LiF, PCBM), and the design of tailored hole-transport materials with tunable energy levels. The lab is also pioneering roll-to-roll manufacturing techniques for scalable, eco-friendly, and high-throughput production of perovskite solar cells.
Professor Lee Tae-Woo's research lab specializes in next-generation optoelectronic materials and devices, focusing on perovskite-based light-emitting diodes (PeLEDs) and bio-inspired electronic systems. The lab pioneers high-efficiency, low-cost perovskite semiconductors with enhanced stability and efficiency through nanostructure engineering, such as quantum dot confinement and hybrid heterostructures. Additionally, the lab develops flexible, biomimetic electronic systems that emulate biological sensory nerves and synapses, enabling low-power, high-performance neuromorphic computing and tactile sensing. Their work bridges materials science, nanotechnology, and bioelectronics to create sustainable and intelligent electronic systems.
Professor Jong-Beom Baek's research lab specializes in the design, synthesis, and application of advanced two-dimensional nanomaterials and nanostructured electrocatalysts for sustainable energy conversion and storage. The lab focuses on developing noble-metal-free and cost-effective electrocatalysts—particularly graphene-based materials—tuned for high-performance hydrogen evolution and oxygen reduction reactions. Key research directions include edge-functionalized graphene, metal-free electrocatalysts, and hybrid nanocomposites with enhanced conductivity and stability.
Professor Sung Hoon Kim's research lab specializes in interdisciplinary biomedical and materials science research, focusing on the molecular mechanisms of neurodegenerative diseases such as Alzheimer’s and Down syndrome, with particular emphasis on endosomal trafficking and APP processing. The lab also explores the anticancer properties of natural compounds like isothiocyanates and campesterol, investigating their roles in cell cycle regulation and anti-angiogenesis. In parallel, the lab develops advanced functional materials, including metal halide perovskite-based nanocomposites for ultrasensitive humidity sensing and microwave components using innovative transmission line structures. These diverse research directions converge on the design of smart, responsive materials and the translation of molecular insights into practical biomedical and electronic applications.
Professor Byung-Soo Kim's research lab specializes in developing advanced nanomaterials and immunomodulatory strategies for treating inflammatory and degenerative diseases, particularly rheumatoid arthritis, myocardial infarction, and cancer. The lab focuses on engineering multifunctional nanoparticles—such as MFC-MSNs and exosome-mimetic nanovesicles—to scavenge reactive oxygen species (ROS), regulate macrophage polarization from pro-inflammatory M1 to anti-inflammatory M2 phenotypes, and enhance stem cell survival in harsh microenvironments. A central theme is the manipulation of the tumor and tissue microenvironments through nanotherapeutics to promote endogenous repair and immune activation.
Professor Jin Soo Kim's research lab specializes in molecular and genetic engineering, with a focus on developing advanced genome-editing technologies and synthetic biology tools. The lab pioneers innovative methods for targeted gene disruption, including the use of Cas9 ribonucleoprotein complexes in model organisms like *C. elegans*, and explores the rational design of artificial DNA-binding proteins such as zinc finger fusions for precise genome targeting. Their work also extends to protein engineering and recombinant fusion systems, exemplified by studies on ribonuclease S and protease-sensitive linkers for controlled protein activation. The lab integrates structural biology, biochemistry, and biotechnology to advance applications in functional genomics and therapeutic development.
Professor Jeong-il Lee's research lab specializes in liver disease pathophysiology, with a focus on the mechanisms underlying liver fibrosis, hepatocellular carcinoma, and cholangiocarcinoma. The lab investigates key molecular pathways such as TGFβ and PDGF in fibrogenesis, explores the role of stromal cells like hepatic myofibroblasts and interstitial cells of Cajal in disease progression, and evaluates clinical outcomes of liver cancer treatments in relation to biomarkers like microvascular invasion. The research integrates clinical data with cellular and molecular analyses to identify therapeutic targets for chronic liver diseases and liver cancers.
Professor Jaehyung Park's research lab specializes in cancer nanomedicine, focusing on the development of stimuli-responsive and targeted nanotherapeutics for effective cancer treatment. The lab explores innovative strategies such as sonodynamic therapy, ROS-responsive drug delivery, and tumor microenvironment-targeting nanomaterials to enhance therapeutic precision and reduce systemic toxicity. Key research directions include designing functional nanocomposites—like Au-TiO₂ and hyaluronic acid-based nanoparticles—for improved tumor targeting, controlled drug release, and activation by ultrasound or enzymatic stimuli. The lab also investigates the interplay between cancer metabolism and nanotherapeutic efficacy, aiming to translate basic discoveries into clinical applications.
Professor Jin Young Kim's research lab specializes in next-generation optoelectronic materials and devices, with a primary focus on high-efficiency, low-cost solar cells. The lab pioneers advancements in perovskite solar cells, tandem architectures combining perovskite and silicon, and solution-processed organic and hybrid photovoltaics. Key research directions include bandgap engineering, interface modification using transparent oxide layers and 2D perovskite passivation, and the development of novel semiconducting polymers and colloidal quantum dots for enhanced light harvesting and device stability. The lab emphasizes scalable, solution-based fabrication techniques to enable practical applications in renewable energy.
Professor Byungsuk Kim's research lab specializes in developing advanced nanomaterials and immunomodulatory strategies for treating inflammatory and degenerative diseases, particularly rheumatoid arthritis, myocardial infarction, and cancer. The lab focuses on engineering multifunctional nanoparticles—such as MFC-MSNs and exosome-mimetic nanovesicles—that simultaneously scavenge reactive oxygen species (ROS), alleviate hypoxia, and reprogram immune cells (e.g., macrophages) toward anti-inflammatory phenotypes. A central theme is the modulation of the tumor and tissue microenvironments to enhance endogenous repair and immune surveillance. The lab also explores biomaterial scaffolds and stem cell therapies to improve tissue regeneration in cardiovascular and musculoskeletal disorders.
Professor Byung-Soo Kim's research lab specializes in biomedical engineering and regenerative medicine, focusing on tissue engineering, nanomedicine, and immunomodulation. The lab develops advanced nanomaterials—such as multifunctional mesoporous silica and exosome-mimetic nanovesicles—to target the tumor microenvironment and rheumatoid arthritis synovium by modulating oxidative stress, hypoxia, and macrophage polarization. Key research directions include engineering functional smooth muscle tissues using biodegradable scaffolds and stem/progenitor cells, and designing smart biomaterials that enhance vascular graft patency and structural stability. The lab also explores innovative guidance systems for precision medical interventions, such as in missile guidance, reflecting a multidisciplinary approach to biomedical challenges.
Professor Jang, Ho Won's research lab specializes in advanced functional materials and nanodevices, with a strong focus on carbon-based quantum dots (GQDs and CQDs), halide perovskites, and 2D materials such as graphene. The lab explores their synthesis, characterization, and applications in next-generation sensing, energy storage, and electronic devices—particularly in highly sensitive and flexible gas sensors, resistive memory (RRAM), and optoelectronic systems. Key research directions include the development of low-voltage, high-performance devices enabled by unique ionic and electronic properties of perovskites and nanostructured materials.
Professor Young Ho Kim's research lab focuses on the design, synthesis, and functional characterization of advanced polymeric materials, particularly hyperbranched and aromatic polymers with unique structural and physical properties. The lab explores the structure-property relationships of these materials, emphasizing their solubility, miscibility, and thermal behavior, with applications in high-performance materials and biomedical engineering. Additionally, the lab investigates nuclear signaling pathways, particularly the role of homeodomain-interacting protein kinases (HIPKs) in transcriptional regulation and post-translational modifications such as SUMOylation.
Professor Dong-Hyun Kim's research lab specializes in the gut microbiota-gut-brain axis, focusing on how microbial metabolites and host-microbe interactions influence metabolic diseases, psychiatric disorders, and the bioavailability of herbal compounds like ginsenosides. The lab investigates the role of probiotics and ginseng-derived metabolites in modulating inflammation, obesity, and stress-related conditions through microbial transformation and immune regulation. A central theme is the individual variability in gut microbial metabolism of bioactive compounds, particularly ginsenosides, and its implications for personalized medicine.
Professor Do Hyung Kim's research lab focuses on the molecular mechanisms underlying autophagy regulation, with a central emphasis on the ULK1 kinase complex and its interplay with mTORC1 signaling. The lab investigates how nutrient and energy stress signals are transduced through key kinases like ULK1, AMPK, and mTORC1 to control autophagosome formation and cellular homeostasis. A major research direction involves dissecting the dynamic phosphorylation events—such as ATG14 and BECN1 phosphorylation by ULK1—that regulate the VPS34 complex and autophagy initiation. The lab also explores the role of ATG8-family proteins in fine-tuning ULK1 activity, revealing distinct regulatory functions of LC3 and GABARAP subfamilies in autophagy progression.
Professor Young Tae Kim's research lab specializes in biomedical engineering and translational life sciences, focusing on developing advanced in vitro models for human diseases, particularly in respiratory and neurological systems. The lab integrates bioengineering platforms—such as 3D organoid cultures, microfluidic devices, and spatial transcriptomics—with cutting-edge imaging and omics technologies to study viral pathogenesis, tumor heterogeneity, and neural regeneration. A key emphasis is on creating physiologically relevant models to accelerate drug discovery and precision medicine. The lab also explores beneficial microbes and biomaterials for therapeutic applications.
Professor Jeong Min Lee's research lab specializes in medical imaging and molecular diagnostics, focusing on improving the accuracy of cancer diagnosis and treatment through advanced imaging techniques such as gadoxetic acid-enhanced MRI, multi-row detector CT, and functional MRI. The lab investigates the differentiation of liver and pancreatic tumors, including hepatocellular carcinoma and intraductal papillary mucinous neoplasms, using high-resolution imaging protocols. Additionally, the lab explores molecular detection methods, particularly using locked nucleic acid probes for sensitive and specific microRNA detection, enabling early cancer diagnosis at the molecular level.
Professor Sung-Wan Kim's research lab specializes in the design and development of smart, biodegradable polymers and biomaterials for biomedical applications. The lab focuses on stimuli-responsive hydrogels, particularly thermosensitive and in situ gelling systems based on block copolymers like PEG-PLGA-PEG, for controlled drug delivery and tissue engineering. A key research direction involves engineering polymer surfaces and gene delivery vectors with enhanced biocompatibility, bioactivity, and low cytotoxicity through precise molecular architecture and functionalization strategies. The lab also investigates structure-property relationships in polymeric systems, emphasizing molecular weight, hydrophilic-hydrophobic balance, and spacer effects on performance.
Professor Il-Doo Kim's research lab specializes in the design and fabrication of advanced nanomaterials for energy and environmental applications, with a strong focus on electrospun nanofibers for gas sensing, energy storage, and multifunctional devices. The lab pioneers innovative strategies to enhance sensitivity, selectivity, and stability in semiconductor metal oxide-based sensors through nanostructuring, heterojunction engineering, and hybrid material integration. Key research directions include developing flexible and transparent electrochromic supercapacitors, MOF-derived catalysts for selective gas detection, and functional nanofibers for non-invasive medical diagnostics using exhaled breath analysis.
Professor Eunkyung Kim's research lab specializes in medical imaging and diagnostic radiology, with a strong focus on improving the accuracy of cancer detection through advanced ultrasound and artificial intelligence. The lab investigates thyroid and breast cancer using sonographic classification, fine-needle aspiration biomarkers (such as thyroglobulin), and AI-driven diagnostic tools to enhance early detection and reduce diagnostic uncertainty. Key research directions include optimizing BI-RADS classification systems, evaluating the role of inflammatory cytokines in autoimmune joint destruction, and developing machine learning algorithms to support radiologists in interpreting mammograms and thyroid nodules.