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 Jeong-Tak Park's research lab focuses on understanding the molecular mechanisms underlying kidney diseases, particularly diabetic nephropathy and acute kidney injury, with an emphasis on cell death pathways such as ferroptosis, pyroptosis, and apoptosis. The lab investigates epigenetic and metabolic reprogramming in renal fibrosis, including the role of developmental signaling pathways like Notch and transcriptional coactivators such as PGC-1α. Additionally, the lab applies machine learning to predict high-risk conditions like late-onset preeclampsia using electronic medical record data. The integration of biomedical research with advanced materials and computational methods defines the lab’s interdisciplinary approach.
Professor Sung-Eun Lee's research lab specializes in bioactive natural products and their applications in neurodegenerative diseases, pest control, and drug metabolism. The lab investigates plant-derived compounds for their inhibitory effects on protein aggregation (e.g., beta-amyloid fibrilization) and mycotoxin activation, aiming to develop natural therapeutics. It also explores essential oil constituents for their fumigant toxicity against agricultural pests and examines self-assembling peptides for biomedical applications in tissue engineering and drug delivery. The lab integrates analytical chemistry, pharmacology, and molecular biology to identify and characterize bioactive molecules with therapeutic and biotechnological potential.
Professor Young-Jin Kim's research lab specializes in the development of advanced 2D and 3D carbon-based nanomaterials for next-generation electronic and biomedical applications. The lab focuses on innovative fabrication techniques such as laser direct writing and ultrafast laser processing to create flexible, conductive, and environmentally friendly materials like graphene and laser-induced graphene (LIG). Key research directions include wearable sensors, sustainable electronics, and tissue engineering scaffolds with tailored electrical, mechanical, and biological properties. The lab emphasizes eco-friendly, maskless, and cost-effective manufacturing processes for scalable applications in healthcare and green technology.
Professor Kyu-Chul Lee's research lab specializes in the development of advanced III-nitride semiconductor nanostructures for next-generation optoelectronic devices. The lab focuses on epitaxial growth of high-quality GaN and related materials on unconventional substrates such as graphene, flexible plastics, and amorphous silica, enabling monolithic integration for flexible and high-performance light-emitting devices. Key research directions include nanowire-based LEDs, photocatalytic nanomaterials, and transparent/flexible optoelectronics with applications in lighting, displays, and environmental remediation.
Professor Seong-Ju Hwang's research lab specializes in the design and synthesis of advanced 2D nanomaterials and atomically dispersed catalysts for sustainable energy applications. The lab focuses on developing highly efficient electrocatalysts and photocatalysts through precise control of atomic-scale structures, such as single-atom, dual-atom, and nanocluster configurations, often integrated with conductive carbon supports or 2D nanosheets. Key research directions include enhancing oxygen reduction and hydrogen evolution reactions, promoting visible-light-driven water splitting, and engineering interfacial charge transfer in heterostructured nanomaterials. The lab combines advanced characterization techniques with theoretical calculations to unravel structure-activity relationships at the atomic level.
Professor Taehoon Kim's research lab specializes in cerebrovascular and cardiovascular disease research, with a primary focus on stroke prevention, atrial fibrillation management, and neurological recovery following stroke. The lab investigates risk stratification tools such as the CHA₂DS₂-VASc score in diverse populations, particularly Asian cohorts, and explores innovative rehabilitation strategies like BCI-FES and action observation training to enhance motor recovery. Additionally, the lab contributes to advanced medical imaging techniques for congenital heart defects, demonstrating a strong translational research approach from clinical observation to therapeutic innovation.
Professor Yun Jeong Hwang's research lab focuses on translational biomedical research and cultural studies, bridging clinical oncology with socio-historical analysis. The lab investigates prognostic biomarkers in hepatocellular carcinoma (HCC), particularly microvascular invasion (MVI) and tumor size, using histologic and imaging-based approaches to improve surgical outcomes. Concurrently, the lab explores the socio-cultural reproduction of gender and Confucian order through literary and historical analysis, especially in Joseon dynasty texts. This dual focus reflects a commitment to both clinical precision and critical social theory in understanding health, identity, and institutional power.
Professor Seok Jin Nam's research lab focuses on translational breast cancer research, with a particular emphasis on understanding the molecular and clinical characteristics of breast cancer in Asian populations, especially younger, pre-menopausal patients. The lab investigates molecular subtypes, treatment response mechanisms—particularly to endocrine and neoadjuvant therapies—and the role of key signaling pathways such as TGF-β in aggressive phenotypes like triple-negative breast cancer. They also explore predictive biomarkers and imaging modalities to improve risk stratification and personalized treatment strategies.
Professor Hun Lee's research lab specializes in advanced nanomaterials and nanostructured devices for energy and photonic applications. The lab focuses on developing scalable, low-cost fabrication methods for functional optical and thermal materials, including radiative coolers, metalenses, and UV metasurfaces. Key research directions involve designing selective emitters and reflectors for passive cooling, creating printable high-index materials for nanophotonic devices, and engineering superhydrophobic and transparent coatings with tailored optical and surface properties. The lab emphasizes practical implementation through innovative lithography and composite material design.
Professor Jae-ho Shin's research lab specializes in the development of advanced functional materials and biosensors for biomedical and environmental applications. Key research directions include the design of superhydrophobic and fluorinated xerogel coatings for anti-biofouling and nitric oxide (NO) delivery, the engineering of microbial systems for sustainable production of platform chemicals, and the creation of ultrasensitive detection platforms using surface-enhanced Raman scattering (SERS) and aptamer-based biosensors. The lab integrates materials chemistry, synthetic biology, and analytical sensing to address challenges in healthcare diagnostics and bioproduction.
Professor Namyong Lee's research lab specializes in biomedical engineering and infectious disease diagnostics, with a focus on developing rapid, point-of-care diagnostic technologies for microbial infections. The lab investigates antimicrobial resistance in pediatric populations, particularly antibiotic-resistant pneumococci, and explores innovative methods for early pathogen detection using molecular and imaging techniques. A key research direction involves applying advanced signal processing and mathematical modeling—such as wavelet-based inverse methods—to improve diagnostic accuracy and reduce turnaround time in clinical microbiology. The lab also examines non-antibiotic interventions in chronic disease management, including virtual reality-based therapies for neurodegenerative conditions like Parkinson’s disease.
Professor Hyun Jung Kim's research lab specializes in environmental materials science and sustainable resource recovery, focusing on the behavior of nanomaterials in environmental systems and the development of advanced materials for energy and environmental applications. Key research directions include the design of pseudocapacitive materials for high-performance energy storage, the transport and fate of nanoparticles and pathogens in porous media, and the application of biotechnological approaches for recycling critical metals from electronic waste. The lab integrates fundamental colloid and surface science with practical environmental engineering solutions.
Professor Sang Hoon Lee's research lab focuses on stem cell biology and molecular mechanisms underlying neurodevelopment and neurodegenerative diseases, particularly Parkinson’s disease. The lab investigates the differentiation of human embryonic stem cells into midbrain dopamine neurons, exploring the roles of key factors such as vitamin C, transcriptional regulators, and DNA replication machinery in neuronal fate determination. A central theme is understanding how epigenetic modifications—like 5-hydroxymethylcytosine and histone methylation—control the development of dopamine neurons, with translational applications in regenerative medicine and disease modeling. The lab also examines fundamental mechanisms of DNA replication, including the roles of PCNA, Activator 1, and DNA polymerases in genomic stability and cell proliferation.
Professor Ki-Hun Jeong's research lab specializes in the development of advanced nanophotonic and plasmonic devices for biomedical sensing and optical applications. The lab focuses on creating bio-inspired optical systems—such as artificial compound eyes and tunable micro-lenses—using innovative microfabrication techniques like elastomer micromolding and photopolymer dispensing. A key research direction involves enhancing surface-enhanced Raman scattering (SERS) for highly sensitive, label-free detection of biomolecules in complex biological fluids like tears, enabling point-of-care diagnostics. The lab also explores THz photoconductive antennas with optical nanoantennas to boost terahertz wave generation for next-generation spectroscopy and imaging.
Professor Sung Bae Jo's research lab specializes in intelligent systems and data-driven decision making, focusing on the integration of soft computing techniques—such as fuzzy logic, neural networks, and genetic algorithms—with machine learning for real-world applications. The lab's main research directions include developing advanced ensemble methods for classification using fuzzy integral-based fusion, applying deep learning and autoencoders to energy demand prediction, and enhancing content-based image retrieval through human emotion and preference modeling. The lab also investigates feature selection and classifier performance in high-dimensional biological data, particularly in cancer diagnosis using microarray data.
Professor Biljin You's research lab specializes in the design, synthesis, and application of advanced nanomaterials for sustainable energy and environmental solutions. Key research directions include the development of graphene-based nanocomposites—particularly TiO₂-reduced graphene oxide and Ag-TiO₂-graphene systems—engineered for enhanced photocatalytic and electrocatalytic performance. The lab also focuses on innovative fabrication techniques such as hydrothermal synthesis, layer-by-layer assembly, and stress-driven self-assembly to create functional micro- and nanostructures with tailored properties. Additionally, the group explores surface engineering and structural hierarchy to improve material performance in energy conversion and storage applications.
Professor Jong Won Ha's research lab specializes in echocardiographic assessment of cardiac function, particularly focusing on diastolic dysfunction, exercise-induced hemodynamic changes, and pulmonary hypertension in patients with preserved ejection fraction. The lab investigates the role of tissue Doppler echocardiography in detecting early myocardial abnormalities in diabetes and post-myocardial infarction patients, emphasizing left ventricular filling pressures and longitudinal function. A key research direction involves understanding the pathophysiology and prognostic implications of exercise-induced pulmonary hypertension and elevated E/E' ratios in clinical outcomes.
Professor Sung Hyuk Choi's research lab focuses on translational cardiovascular and neurological research, with a strong emphasis on the pathophysiological roles of trace metals like zinc in neurodegenerative diseases and the molecular mechanisms underlying cancer progression, particularly in colorectal cancer involving the APC/β-catenin and Hippo signaling pathways. The lab also investigates clinical outcomes in critical cardiovascular interventions, including extracorporeal membrane oxygenation (ECMO), intra-aortic balloon pump (IABP) use in cardiogenic shock, and percutaneous coronary intervention (PCI) for chronic total occlusions (CTO). Their work bridges basic science discoveries with clinical applications to improve patient outcomes in heart failure, stroke, and cancer.
Professor Chang Min Park's research lab specializes in medical image analysis and artificial intelligence, with a focus on improving diagnostic accuracy and efficiency in thoracic radiology. The lab develops deep learning algorithms for automated detection and classification of pulmonary diseases, including tuberculosis, lung cancer, and tracheobronchial tumors, using chest radiographs and CT scans. A key research direction involves understanding the impact of image reconstruction techniques on radiomic features, ensuring robustness and reproducibility in quantitative imaging biomarkers. The lab also investigates subtle pulmonary findings such as ground-glass opacities and celiac axis stenosis to support early diagnosis and intervention.
Professor Jinah Jang's research lab specializes in advanced 3D bioprinting and biofabrication technologies for engineering functional tissues and organs. The lab focuses on developing patient-specific, biologically relevant tissue constructs using decellularized extracellular matrix (dECM)-based bioinks to mimic native tissue microenvironments. A key research direction involves enhancing the printability and mechanical properties of dECM bioinks through innovative crosslinking strategies, such as light-activated polymerization, to enable precise fabrication of complex, scalable, and physiologically relevant 3D architectures. The lab also explores in vivo priming strategies to improve stem cell survival and function for regenerative therapies, particularly in cardiac repair.