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 Hyesung Park's research lab specializes in the development and application of two-dimensional nanomaterials, particularly graphene and transition metal dichalcogenides, for next-generation optoelectronic and energy conversion devices. The lab focuses on advancing flexible and high-efficiency organic photovoltaics by engineering transparent electrodes, optimizing charge transport layers, and integrating nanomaterials like ZnO nanowires and quantum dots with graphene. Key research directions include phase engineering of 2D materials, such as stabilizing the metallic 1T phase of MoS₂, and enhancing the performance and reliability of graphene-based devices through surface modification and doping strategies. The lab also investigates fundamental challenges in graphene-based gas sensors, aiming to achieve high sensitivity and uniformity through controlled synthesis protocols.
Professor Youngsuk Nam's research lab specializes in the design and characterization of functional micro- and nanostructured surfaces for advanced heat transfer and fluid dynamics applications. The lab focuses on superhydrophobic and superhydrophilic surfaces, with key research directions including droplet dynamics, bubble nucleation and departure, capillary wicking in microstructures, and the durability of functional surfaces under dynamic liquid impacts. Their work combines experimental high-speed imaging, precise microfabrication techniques, and numerical modeling to develop next-generation thermal management systems for electronics and energy applications.
Professor Junho Song's research lab specializes in computational mechanics, structural reliability, and risk-informed decision making under uncertainty. The lab focuses on developing advanced probabilistic methods and machine learning techniques for performance assessment of civil and mechanical systems subjected to extreme events such as earthquakes and natural hazards. Key research directions include nonlinear dynamic analysis, reliability-based design, and innovative simulation methods like Subset Simulation and Hamiltonian Monte Carlo for efficient uncertainty quantification. The lab also pioneers data-driven approaches, integrating deep learning with engineering mechanics to improve predictive accuracy in structural health monitoring and medical image analysis.
Professor Eun Ji Nam's research lab focuses on molecular oncology and minimally invasive gynecological surgery, with a strong emphasis on microRNA regulation in ovarian cancer pathogenesis and recurrence. The lab investigates the role of non-coding RNAs in cancer stem cell properties and tumor progression, while also developing advanced electrochemical biosensors for early detection of cancer biomarkers. Additionally, the lab explores innovative robotic surgical techniques, particularly single-port transumbilical hysterectomy, for gynecological malignancies. These interdisciplinary efforts integrate molecular biology, nanotechnology, and surgical innovation to improve diagnosis, prognosis, and treatment outcomes in ovarian and gynecological cancers.
Professor Dong Pyo Kim's research lab specializes in advanced microfluidic technologies and functional materials for sustainable chemical synthesis and catalysis. The lab focuses on developing continuous-flow microreactors and innovative nanomaterials—such as metal-doped MOFs@COFs and patterned superhydrophobic coatings—for applications in green chemistry, site-selective synthesis, and environmental protection. Key research directions include in-situ generation and safe handling of hazardous reagents (e.g., diazomethane, isocyanides), photocatalytic systems, and stimuli-responsive microspheres for precision synthesis. The lab integrates materials design with microfluidic engineering to enable efficient, scalable, and safer chemical processes.
Professor Jun-Cheol Park's research lab specializes in clinical oncology and neurovascular medicine, with a focus on gastric cancer epidemiology and the complications of endovascular procedures. The lab investigates age-related clinicopathological features and prognostic factors in gastric cancer across all stages, aiming to improve patient stratification and outcomes. Additionally, the lab explores rare neurological complications such as contrast-induced encephalopathy following cerebral angiography, contributing to safer interventional radiology practices. Their work bridges clinical research with translational medicine to enhance diagnostic accuracy and therapeutic strategies.
Professor Tae-joong Kim's research lab specializes in minimally invasive gynecologic surgery, with a focus on advancing surgical techniques such as single-port access (SPA) laparoscopy and vaginal natural orifice transluminal endoscopic surgery (vNOTES). The lab investigates surgical outcomes, feasibility, safety, and learning curves associated with these advanced approaches, particularly in benign gynecologic conditions. Additionally, the lab integrates molecular diagnostics, such as gene expression profiling, to improve preoperative prediction of disease progression, including lymph node metastasis in cervical cancer. The research emphasizes clinical translation, combining surgical innovation with molecular biomarkers for personalized patient care.
Professor Seungwoo Park's research lab specializes in cardiovascular imaging and heart failure, with a focus on advanced echocardiographic and cardiac MRI techniques to assess myocardial function. The lab investigates novel biomarkers such as peak systolic longitudinal strain and tissue tracking for early detection of cardiac dysfunction in conditions like functional mitral regurgitation, aortic stenosis, and hypertensive heart disease. Key research directions include optimizing medical therapy in heart failure, evaluating the timing of surgical interventions such as aortic valve replacement, and identifying predictors of adverse outcomes in high-risk populations including those with end-stage renal disease or hypertensive disorders of pregnancy. The lab integrates non-invasive imaging with clinical outcomes to improve risk stratification and personalized treatment strategies.
Professor Jeong Ji-heon's research lab specializes in developing advanced nanotherapeutic systems for cancer treatment, with a focus on targeted, stimuli-responsive drug delivery. The lab integrates nanomaterials, immunotherapy, and tumor microenvironment modulation to enhance therapeutic precision and efficacy in aggressive cancers such as colorectal cancer, triple-negative breast cancer, and neurodegenerative disorders linked to drug abuse. Key research directions include designing multifunctional gold nanoparticles and ROS-responsive nanocarriers for chemo-photothermal therapy, dual-targeted delivery to overcome drug resistance, and exploring the molecular mechanisms of neurotoxicity in methamphetamine use. The lab also pioneers innovative 3D cell culture platforms to better model tumor physiology and improve preclinical drug testing.
Professor Yunmi Song's research lab specializes in population-based epidemiological studies focusing on the interplay between lifestyle factors, obesity, and chronic disease outcomes in Asian populations. Key research directions include the association of body mass index (BMI) with stroke subtypes, cancer risk in postmenopausal women, and the impact of smoking reduction on cardiovascular disease. The lab leverages large-scale cohort studies and twin-family registries, such as 'Healthy Twin,' to disentangle genetic and environmental contributions to complex diseases. Their work emphasizes quantitative trait analysis and long-term health outcomes in middle-aged adults, particularly in Korean populations.
Professor Jeong Jin-sang's research lab specializes in cerebrovascular and headache disorders, with a focus on neuroimaging-based investigations of functional and structural brain changes in conditions such as chronic migraine, reversible cerebral vasoconstriction syndrome (RCVS), and intracerebral hemorrhages. The lab employs advanced MRI techniques, including resting-state fMRI and group-independent component analysis, to explore functional connectivity and blood-brain barrier integrity. A key research direction involves refining diagnostic classifications for complex intracranial hemorrhages based on arterial territory, enhancing precision in clinical management.
Professor Ha-Wook Jung's research lab specializes in the design and engineering of soft, stretchable, and biocompatible electronic systems that intimately interface with the human body. The lab pioneers advanced 3D architectures in advanced materials—particularly device-grade silicon—using geometric transformation techniques like compressive buckling to create complex, functional structures inspired by biological systems. Key research directions include developing battery-free, wireless, and in-sensor intelligent systems for continuous physiological monitoring, as well as creating low-modulus, tissue-mimetic materials for next-generation biomedical implants and wearable sensors. The lab integrates materials science, mechanics, and bioelectronics to enable next-generation health technologies with clinical relevance.
Professor In-Hwan Lee's research lab specializes in advanced semiconductor materials and optoelectronic devices, with a strong focus on gallium nitride (GaN) epitaxial layers, doping effects, and stress engineering. The lab investigates fundamental optical and electronic properties of doped III-nitride semiconductors, particularly Si-doped GaN, to understand band-gap narrowing, stress relaxation, and yellow luminescence. Additionally, the lab develops novel functional materials such as SnO₂ nanoparticles for optoelectronic applications and hybrid SERS substrates combining GaN and silver nanostructures for ultrasensitive molecular detection. Their work bridges materials synthesis, characterization, and practical device integration in energy and sensing technologies.
Professor Jin-Woo Kim's research lab specializes in the development of advanced biomedical technologies that integrate artificial intelligence, nanomaterials, and medical imaging for diagnostic and therapeutic applications. The lab focuses on leveraging convolutional neural networks and Bayesian deep learning for automated and accurate cephalometric analysis in orthodontics, while also exploring the photothermal antimicrobial potential of carbon nanotubes for next-generation nanotherapies. Additionally, the lab investigates molecular mechanisms of liver carcinogenesis and the design of functional nanomaterials for precision medicine. These interdisciplinary efforts aim to bridge computational intelligence with clinical diagnostics and nanomedicine.
Professor Jongsu Kim's research lab focuses on molecular mechanisms of DNA damage response and repair, particularly the role of cohesin and other repair factors in maintaining genomic stability. The lab also investigates cellular responses to chemotherapeutic agents like cisplatin, exploring both caspase-dependent and -independent cell death pathways in cancer cells. In addition, the lab develops advanced power electronics for electric vehicles, specializing in high-efficiency, compact on-board battery chargers using resonant converter technologies. A growing area of interest involves the use of stable vitamin C derivatives to maintain stem cell pluripotency and function in regenerative medicine.
Professor Whal Lee's research lab specializes in medical imaging, with a focus on advanced cross-sectional and vascular imaging techniques for early diagnosis and assessment of vascular diseases, tumors, and musculoskeletal disorders. The lab investigates the diagnostic value of CT, ultrasound, and perfusion imaging in conditions such as carotid atherosclerosis, meningiomas, and varicose veins, emphasizing accurate characterization and response monitoring. Key research directions include optimizing imaging protocols, improving tumor and plaque detection, and correlating imaging findings with clinical outcomes.
Professor Hanul Min's research lab specializes in the development and optimization of perovskite solar cells through advanced materials engineering and solution-processing techniques. The lab focuses on stabilizing the photoactive α-phase of formamidinium lead halide perovskites, minimizing lattice strain and trap states via strategic cation doping, and improving device stability and efficiency under operational conditions. Key research directions include understanding precursor solution chemistry, controlling crystallization dynamics, and eliminating detrimental additives such as DMSO and volatile chloride sources to enhance film quality and long-term performance.
Professor Tae-Hyung Kim's research lab specializes in advanced materials and nanotechnology for biomedical and environmental applications. The lab focuses on developing nanotheranostic systems for personalized medicine, particularly in cancer and lung diseases such as idiopathic pulmonary fibrosis and acute lung injury, leveraging biomarker targeting and responsive drug delivery. Additionally, the lab is actively engaged in sustainable materials innovation, including CO2 emission reduction in construction materials like concrete, and explores novel functional materials such as metal halide perovskite/TiOx heterostructures for efficient photocatalysis and laser technologies. The integration of nanomedicine, environmental sustainability, and functional materials defines the lab’s multidisciplinary research direction.
Professor Sunny Joo's research lab focuses on the molecular mechanisms underlying neurodegenerative diseases, particularly Alzheimer’s disease and amyotrophic lateral sclerosis, with a strong emphasis on genetic risk factors such as the APOE epsilon 4 allele and their interactions with amyloid-beta pathology. The lab investigates the role of oxidative stress and mitochondrial dysfunction in disease progression, exploring therapeutic strategies involving antioxidants like edaravone and dietary polyphenols. Additionally, the lab contributes to the understanding of rare clinical conditions, such as adrenal pseudocysts and biliary neoplasms, through detailed case analyses and diagnostic insights. Overall, the lab bridges neuropathology, molecular genetics, and translational therapeutics to identify novel targets and interventions for neurodegenerative and systemic disorders.
Professor Su-Young Kim's research lab specializes in supramolecular chemistry and functional materials, with a focus on host-guest systems involving cucurbiturils and macrocyclic ligands. The lab explores the self-assembly of complex architectures such as rotaxanes and pseudorotaxanes through noncovalent interactions, aiming to develop advanced molecular machines and stimuli-responsive materials. Additionally, the lab applies mathematical modeling and optimization techniques to industrial processes, particularly in semiconductor manufacturing and satellite communication systems.