探索全球顶尖大学的研究室——研究领域与主要论文一览无余。
Professor Jong-eun Kim's research lab specializes in advanced dental materials and digital dentistry, focusing on optimizing 3D printing technologies for dental applications. The lab investigates the mechanical, biological, and optical properties of 3D-printed resin materials, with particular emphasis on post-curing processes, washing protocols, and biocompatibility. Additionally, the lab explores the application of deep learning in dental image analysis for implant identification using periapical radiographs. These interdisciplinary efforts aim to enhance the safety, durability, and clinical performance of 3D-printed dental prostheses.
Professor Kim, Sang-Koog's research lab specializes in spintronics and nanomagnetic dynamics, focusing on the fundamental and applied aspects of magnetization dynamics in patterned magnetic nanostructures. The lab investigates vortex core switching, spin wave manipulation, and magnonic crystals for low-power information processing, with an emphasis on controlling magnetic states using spin-polarized currents and high-frequency fields. Their work bridges micromagnetic simulations with advanced experimental techniques such as time-resolved X-ray microscopy and magnetic circular dichroism with standing waves.
Professor Jeong-Sun Park's research lab specializes in diagnostic and interventional thyroid radiology, with a focus on ultrasound-guided diagnosis, risk stratification, and minimally invasive treatments for thyroid nodules and thyroid cancer. The lab is dedicated to advancing ultrasound-based management strategies and radiofrequency ablation techniques, emphasizing evidence-based guidelines and clinical safety. Their work integrates clinical imaging, expert consensus, and multicenter research to improve personalized patient care.
Professor Seung-Bong Han's research lab specializes in clinical and translational research focusing on cardiovascular disease, particularly in the context of percutaneous coronary intervention (PCI) and metabolic syndrome. The lab investigates patient-specific outcomes in conditions such as acute myocardial infarction, diabetes mellitus (DM) comorbidity, and angle closure glaucoma, emphasizing anatomical and physiological subtyping to guide personalized treatment strategies. Additionally, the lab explores hormonal and metabolic influences on body composition and graft outcomes in transplantation, using large-scale national health databases and advanced imaging techniques.
Professor Haksoo Seo's research lab focuses on plant molecular biology and signal transduction, with a central emphasis on the regulation of plant development and stress responses through phytohormones, ubiquitin-mediated protein degradation, and photoreceptor signaling. The lab investigates key molecular mechanisms involving E3 ubiquitin ligases such as COP1 and GW2, which control seed size and photomorphogenesis by targeting specific proteins for degradation. Additionally, the lab explores metabolic engineering and enzyme fusion strategies to enhance the biosynthesis of important metabolites like trehalose and methyl jasmonate. Their work bridges fundamental plant biology with applications in crop improvement and biotechnology.
Professor In Kyu Park's research lab specializes in thoracic surgery and oncology, with a focus on surgical management and prognostic evaluation of thoracic malignancies, including non-small cell lung cancer (NSCLC) and thymic disorders such as myasthenia gravis. The lab investigates surgical outcomes, long-term survival predictors, and innovative techniques such as 3D surface modeling for surgical planning. It also explores nutritional support strategies following esophagectomy and the radiological-clinical features of early-stage lung adenocarcinoma.
Professor Jun Ho Choi's research lab focuses on advancing minimally invasive surgical techniques in thyroid surgery, particularly endoscopic and robotic approaches such as the bilateral axillo-breast approach (BABA), with an emphasis on optimizing surgical outcomes, cosmetic results, and patient safety. The lab also explores innovative applications of laser technology for scar management in thyroid surgery and investigates novel materials for energy storage, including flexible graphene stacks for sodium-ion batteries. These diverse research directions reflect a strong commitment to improving both surgical precision and biomedical materials innovation.
Professor Jang-Won Lee's research lab specializes in network optimization and resource allocation in wireless and data networks, with a focus on developing distributed, scalable algorithms for efficient and fair utilization of network resources. The lab investigates cross-layer design problems that integrate rate control, power allocation, and medium access control under realistic system constraints, including non-concave utility functions, quality-of-service tradeoffs, and physical-layer adaptation. A central theme is the application of network utility maximization (NUM) frameworks to achieve optimal system performance while maintaining stability and convergence in dynamic, heterogeneous environments.
Professor Taeyoon Yoon's research lab specializes in nanotoxicology and environmental health sciences, focusing on the quantitative prediction of nanomaterial toxicity through advanced computational and experimental approaches. The lab develops structure-activity relationship (SAR) models, particularly nano-QSAR, to predict the cytotoxicity of engineered nanomaterials such as carbon nanotubes and metal oxide nanoparticles under varying physicochemical and biological conditions. A key emphasis is placed on improving data quality and completeness in nanotoxicology through meta-analysis, data gap-filling, and standardized descriptor encoding using quasi-SMILES. The lab also investigates nanomaterial interactions with biological systems, including cellular uptake mechanisms and surface chemistry effects on toxicity, using techniques like flow cytometry, ICP-MS, and in situ spectroscopy.
Professor Dong Hyun Kim's research lab specializes in biomedical and biotechnological applications of natural compounds and gut microbiota interactions, with a focus on understanding the molecular mechanisms of tyrosinase inhibition by flavonoids and the role of gut dysbiosis in chronic inflammatory diseases. The lab also explores advanced computational and imaging technologies, including deep learning for medical image segmentation, to improve diagnostic accuracy in orthopedic conditions such as vertebral compression fractures. Additionally, the lab investigates the intersection of artificial intelligence and healthcare, particularly in optimizing machine learning applications for biomedical data analysis and system monitoring. These interdisciplinary efforts aim to bridge natural product chemistry, microbiome science, and digital health technologies for improved disease prevention and treatment strategies.
Professor Kangtaek Lee's research lab specializes in the design and synthesis of advanced nanomaterials for optoelectronic and sensing applications. Key research directions include the development of stimuli-responsive photonic crystals for real-time environmental sensing, plasmon-enhanced biosensors for DNA detection, and high-efficiency quantum dot-based phosphors for next-generation lighting. The lab emphasizes innovative core-shell nanostructures and silica encapsulation strategies to achieve high photoluminescence quantum yields and enhanced stability.
Professor Kwang Hyung Lee's research lab specializes in the development of two-dimensional (2D) semiconductor-based electronic and optoelectronic devices, with a focus on molybdenum disulfide (MoS₂) and organic-inorganic hybrid heterostructures. The lab explores high-performance field-effect transistors, nonvolatile ferroelectric memory devices, and flexible thin-film transistors, emphasizing low-voltage operation, high mobility, and excellent retention characteristics. Key research directions include interface engineering, energy bandgap tuning via layer control, and the integration of 2D materials with ferroelectric polymers such as P(VDF-TrFE) for next-generation memory and sensing applications.
Professor Changhwan Choi's research lab specializes in the development of bioinspired and sustainable electronic devices for next-generation neuromorphic computing. The lab focuses on designing novel synaptic devices using eco-friendly, biocompatible, and semiconductor industry-compatible materials such as HfO₂, MXenes, graphene quantum dots, and cellulose-based nanocomposites. Key research directions include resistive switching mechanisms, ferroelectric thin-film transistors, and ion-migration-based synaptic emulation to enable multi-state conductance modulation for artificial neural networks. The lab emphasizes green electronics, integrating materials science with neuromorphic engineering for energy-efficient and biologically inspired computing systems.
Professor Young-won Lim's research lab specializes in environmental microbiology, focusing on fungal and bacterial communities in terrestrial and marine ecosystems, particularly in intertidal and forest environments. The lab employs high-throughput sequencing techniques such as pyrosequencing and ITS-NGS to explore microbial diversity, community structure, and functional roles in ecological processes like decomposition, pollutant degradation, and symbiotic interactions. A key research direction involves understanding microbial interactions—especially with ectomycorrhizal fungi like Tricholoma matsutake—and their impact on soil health and ecosystem functioning. The lab also investigates the ecological and biotechnological potential of microbial isolates, including halotolerant fungi and bacteria associated with fungi.
Professor Hong Changhee's research lab specializes in advanced semiconductor materials and optoelectronic devices, with a strong focus on gallium nitride (GaN)-based technologies for high-efficiency light-emitting diodes (LEDs) and graphene-based heterostructures. The lab investigates nanostructured materials such as ZnO and reduced graphene oxide to enhance device performance through improved current spreading, thermal management, and light extraction. Key research directions include the development of ohmic contacts for p-GaN, low-temperature growth of functional nanostructures, and innovative approaches to device engineering for next-generation UV and visible LEDs. The lab also explores biomedical applications of nanomaterials, as evidenced by studies on seminal plasma allergy and immunotherapy.
Professor Sunmi Kim's research lab specializes in metabolic and cardiovascular health, focusing on the epidemiology and pathophysiology of obesity-related disorders such as type 2 diabetes, metabolic syndrome, and hypertension. The lab investigates novel adipokines—such as visfatin, lipocalin-2, and RBP4—and their roles in insulin resistance, inflammation, and cardiometabolic risk. Through large-scale population studies and clinical intervention trials, the lab explores the impact of lifestyle interventions, particularly exercise training, on biomarkers and disease progression in Korean populations. The research also extends to zoonotic and aquatic pathologies, including parasitic infections in marine fish, reflecting a multidisciplinary approach to health and disease.
Professor Yoonsu Park's research lab specializes in transition metal-catalyzed C–H functionalization, with a primary focus on the development of sustainable and selective methods for C–N bond formation. The lab explores innovative catalytic systems—particularly based on late transition metals like Rh(III) and Ir(III)—to enable direct amidation of inert C–H bonds using novel, safe, and efficient amidating agents such as 1,4,2-dioxazol-5-ones. A key direction involves mechanistic studies combining experimental and computational approaches to understand reaction pathways and improve selectivity. The lab also emphasizes practical aspects, including operational safety, green solvent use, and scalability, aiming to translate fundamental discoveries into industrially viable processes.
Professor Sang-Kyu Yeo's research lab focuses on the molecular mechanisms underlying chronic inflammatory diseases and cancer, with a central emphasis on the role of the IL-6/STAT3 signaling pathway in disease pathogenesis. The lab investigates how STAT3 activation contributes to tumorigenesis, microglia-mediated neurodegeneration in diabetes, and the tumor microenvironment in liver and glioblastoma cancers. A key research direction involves developing targeted therapies, such as small molecule STAT3 inhibitors (e.g., ODZ10117), to disrupt oncogenic signaling and overcome drug resistance. The lab also explores the protective effects of natural compounds like PGG against UVB-induced skin damage and examines the impact of physical forces—such as simulated microgravity—on cancer cell behavior.
Professor Ju-Hee Kim's research lab specializes in medical imaging and diagnostic radiology, with a focus on improving the accuracy of MRI and CT in the diagnosis and staging of gastrointestinal cancers. The lab investigates advanced imaging techniques for differentiating tumor types—particularly mucinous vs. nonmucinous rectal carcinomas, periampullary neoplasms, and colorectal cancer—while also exploring the diagnostic value of non-invasive modalities like MR cholangiography and CT colonography. A key research direction involves enhancing the clinical utility of cross-sectional imaging in preoperative assessment and treatment planning.
Professor Won Hyuk Jang's research lab specializes in neurorehabilitation and stroke recovery, focusing on innovative therapeutic interventions to improve motor function and quality of life after neurological injury. The lab investigates robot-assisted gait training, neuromodulation techniques such as repetitive transcranial magnetic stimulation (rTMS), and pharmacological agents like Cerebrolysin in combination with structured rehabilitation. A key emphasis is placed on long-term outcomes, including return to work and caregiver well-being, as demonstrated in large-scale cohort studies such as KOSCO. The lab integrates clinical trials with neurophysiological and functional assessments to advance evidence-based rehabilitation strategies.