世界の主要大学の研究室を探索 — 研究分野と主要論文を一目で確認できます。
Professor Hae Won Kim's research lab specializes in biomedical materials and health education, focusing on the development of magnetic nanofibrous scaffolds for bone tissue engineering and the advancement of diagnostic imaging techniques such as ¹⁸F-FDG PET/CT for peritoneal carcinomatosis. The lab also conducts impactful research on human papillomavirus (HPV) awareness and cervical cancer prevention, particularly targeting university students and men, emphasizing education strategies tailored to different demographic and behavioral profiles. A key focus is on improving public health outcomes through evidence-based health education and innovative biomaterials.
Professor Yeu-Chun Kim's research lab specializes in the development of advanced nanomaterials and stimuli-responsive systems for targeted cancer therapy and controlled drug delivery. The lab focuses on designing smart nanocarriers—such as carbon-based nanostructures, mitochondria-targeting photosensitizers, and ionophore-functionalized polypeptides—that enable precise spatiotemporal control over drug release and therapeutic action. Key research directions include photodynamic therapy, thermally responsive ablation using metallic nanoparticles, and modulation of cellular ion homeostasis to induce cancer cell death. The lab also explores glucose-responsive systems for insulin delivery, highlighting its broad interest in responsive biomaterials for both oncology and metabolic disease applications.
Professor Heeyoung Kim's research lab specializes in data-driven decision-making and intelligent systems, with a focus on forecasting accuracy, industrial data analytics, and human-robot interaction. The lab develops innovative statistical and machine learning methods—such as the mean arctangent absolute percentage error (MAAPE) and functional data classification with fused lasso—for improving predictive modeling in complex, real-world environments. Research spans semiconductor manufacturing defect pattern analysis, real-time vessel delay detection in maritime logistics, and the design of socially intelligent robots through gesture-based personality expression. The lab emphasizes practical applications in quality control, supply chain optimization, and human-centered technology.
Professor Mann–Ho Cho's research lab specializes in the development and characterization of two-dimensional materials and phase-change materials for next-generation electronic and optoelectronic applications. The lab focuses on plasma-based doping techniques to engineer the electronic properties of 2D materials such as graphene and black phosphorus, enabling high-performance p-n junction devices. It also investigates topological insulators and chalcogenide-based materials for applications in spintronics, memory devices, and low-power electronics, with an emphasis on strain engineering and defect control. Advanced spectroscopic and microscopic techniques are employed to correlate atomic-scale structure with macroscopic electronic behavior.
Professor Kyeong Sik Jin's research lab specializes in the structural characterization of biomolecules in solution using advanced biophysical techniques, particularly synchrotron small-angle X-ray scattering (SAXS), circular dichroism, and Raman spectroscopy. The lab focuses on understanding the conformational dynamics and structural transitions of nucleic acids (such as i-motif DNA and duplex DNA) and proteins (including pepsin and transcriptional regulators) under varying environmental conditions like pH, denaturants, and ligand binding. A central theme is the investigation of structural flexibility, folding, and functional modulation in biological macromolecules, with an emphasis on dynamic and disordered states that are often overlooked in traditional crystallographic studies. The lab also explores the effects of nanomaterials, such as fullerenes, on DNA structure and stability, highlighting interdisciplinary approaches at the interface of biophysics, structural biology, and nanoscience.
Professor Namhun Kim's research lab specializes in advanced manufacturing technologies, with a strong focus on additive manufacturing (3D/4D printing), smart materials, and intelligent process optimization. The lab explores innovative applications of shape memory polymers in 4D printing, develops decision-support tools for multi-objective process planning in AM, and investigates defect detection using data-driven methods such as KNN with dynamic time warping. Additionally, the lab contributes to the advancement of multi-phase electric drives and the quantification of manufacturing complexity in mixed-model assembly systems.
Professor Wooki Kim's research lab focuses on the molecular mechanisms linking dietary lipids, mitochondrial metabolism, and immune regulation, particularly in innate and adaptive immune cells. The lab investigates how specific fatty acids—such as n-3 polyunsaturated fatty acids (PUFAs), medium-chain triglycerides (MCTs), and bioactive lipid components from plant sources—modulate immune cell function through membrane microdomain organization, mitochondrial respiration, and inflammatory signaling. A central theme is the role of lipid metabolism in shaping immune responses, with translational applications in inflammation-related diseases and functional food development. The lab employs integrative approaches combining cell biology, metabolic phenotyping (e.g., OCR), and in vivo models to uncover how dietary lipids reprogram immune cell metabolism and function.
Professor Kyoung Jin Kim's research lab specializes in clinical and translational dermatology, with a focus on inflammatory and autoimmune skin disorders such as erythema annulare centrifugum, as well as the pathological mechanisms underlying cutaneous reactions to medical implants like Artecoll. The lab also investigates metabolic and cardiovascular complications in diabetes and hypertension, particularly the long-term impact of glycemic control and hormonal imbalances—such as in primary aldosteronism—on atrial fibrillation risk. Additionally, the lab explores molecular pathways in cancer metastasis, particularly the role of signaling molecules like protein kinase CK2 and platelet-activating factor in NF-κB activation and tumor progression.
Professor Sung-Min Kim's research lab focuses on neurocognitive mechanisms and microbial pathogenesis, with a dual emphasis on enhancing cognitive function through natural compounds and understanding bacterial biofilm formation. The lab investigates the molecular and behavioral effects of gintonin, a ginseng-derived compound, on memory and synaptic plasticity, exploring its potential as a noninvasive cognitive enhancer. Concurrently, the lab examines the role of curli fimbriae and biofilm formation in pathogenic Enterobacter cloacae, particularly the genetic regulation and structural characteristics underlying biofilm development. These interdisciplinary efforts bridge neuroscience and microbiology, aiming to develop novel therapeutic strategies for cognitive disorders and antimicrobial interventions.
Professor Hyun-Chul Kim's research lab specializes in the design and synthesis of metal-organic frameworks and coordination polymers, with a focus on transition metal-based materials featuring tunable structures and functionalities. The lab investigates the structural diversity and topological features of coordination polymers using various organic ligands, such as bipyridyl derivatives, to construct 2D and 3D frameworks with controlled porosity and magnetic properties. Their work also explores the influence of ligand geometry and metal coordination environments on the formation of interpenetrated or non-interpenetrated networks, contributing to materials with potential applications in catalysis, gas adsorption, and magnetic materials. The lab employs X-ray crystallography and other analytical techniques to elucidate the precise atomic-level structures of these materials.
Professor Yu-Kyung Kim's research lab specializes in advanced materials development and biomedical applications, with a focus on nanomaterials for energy and health technologies. The lab investigates the biological effects of bioactive compounds such as glucosamine on pancreatic beta cells and explores protective agents like GLP-1. It also develops hierarchical nanostructures, including carbon nanotube-based materials for enhanced performance in energy and electronic devices. Additionally, the lab contributes to cybersecurity research, particularly in machine learning-driven mobile malware detection and the analysis of state-sponsored cyber threats.
Professor Woojin Jeon's research lab specializes in the development of advanced dielectric materials and atomic layer deposition (ALD)-based thin films for next-generation nanoelectronics and energy applications. The lab focuses on optimizing high-k dielectrics, such as HfO₂, ZrO₂, and Al-doped TiO₂, for use in capacitors, transistors, and memory devices, with an emphasis on reducing leakage current and enhancing dielectric performance. Key research directions include the design of nanolaminated and core-shell oxide structures, integration of novel electrode materials (e.g., Ru, TiN), and the application of ALD for scalable, atomic-scale film growth. The lab also explores functional oxide materials for biomedical applications, such as fermented ginseng extract in diabetes models, demonstrating a multidisciplinary approach bridging materials science and biomedicine.
Professor Y. S. Hwang's research lab specializes in plasma physics and fusion energy science, with a focus on advanced plasma start-up techniques, electron cyclotron heating (ECH) applications, and high-efficiency plasma sources for fusion and accelerator technologies. The lab investigates innovative magnetic configurations such as the trapped particle configuration (TPC) to enhance plasma initiation and sustainment, while also exploring helicon wave-driven plasmas for high-current, low-emittance ion sources. Their work includes time-resolved neutron detection in fusion experiments, particularly triton burnup measurements in tokamak plasmas, supporting the development of next-generation fusion energy systems. The lab combines experimental plasma physics with advanced diagnostics and system integration for practical fusion and accelerator applications.
Professor Hyo Yeol Kim's research lab specializes in otorhinolaryngology and sleep medicine, with a focus on the pathophysiology of chronic rhinosinusitis (CRS), the role of inflammatory mediators such as HP in disease progression, and the impact of systemic factors like statins on mucosal healing and olfactory recovery. The lab investigates upper and lower airway interactions, particularly in the context of sleep-disordered breathing, using both preclinical models and clinical studies to explore anatomical and physiological determinants of airway obstruction. Their work also emphasizes early diagnosis and management of comorbid lower airway diseases in patients with sinonasal disorders.
Professor Jiyeong Lee's research lab specializes in geotechnical and geological engineering, with a focus on hydraulic conductivity estimation using regional databases and the seismic performance of micropiles. The lab conducts experimental and data-driven studies to improve underground construction safety and resilience, particularly through innovative foundation systems like micropiles with optimized casing configurations. Research integrates field data, laboratory testing, and dynamic analysis to address challenges in groundwater flow and seismic resistance.
Professor Il-Ho Park's research lab focuses on the molecular mechanisms underlying chronic inflammatory diseases of the upper airway, particularly chronic rhinosinusitis (CRS) and nasal polyps. The lab investigates key pathological processes such as tissue remodeling, extracellular matrix (ECM) accumulation, epithelial-mesenchymal transition (EMT), and fibroblast activation, with a strong emphasis on signaling pathways involving TGF-β, ER stress, HDACs, and AMPK. The research also explores potential therapeutic targets and repurposed drugs—such as metformin, histone deacylase inhibitors (e.g., TSA), and antihistamines—offering translational insights into novel treatments for refractory airway diseases.
Professor Hyomin Lee's research lab specializes in the design and fabrication of advanced multifunctional surfaces and microscale materials with precise control over surface chemistry, morphology, and interfacial properties. The lab focuses on developing smart coatings and microfluidic platforms for applications in drug delivery, biosensing, and optical protection, emphasizing sustainability and performance under extreme environmental conditions. Key research directions include zwitter-wettability, stimuli-responsive thin films, and high-efficiency encapsulation of labile compounds such as fragrances and bioactives using tailored polymer systems and microfluidic techniques.
Professor Tae-Sik Yoon's research lab specializes in the development and characterization of nanoscale resistive and capacitive memory devices for neuromorphic computing and next-generation nonvolatile memory applications. The lab focuses on designing oxide-based memristors and memcapacitors using materials such as NiOx, CeO₂, HfO₂, and Fe₂O₃, with an emphasis on analog, reversible, and stable resistance and capacitance switching. Key research directions include engineering interface and interfacial phenomena, controlling oxygen ion migration, and achieving synaptic plasticity mimicking in solid-state devices through tailored voltage pulse protocols.
Professor Chanho Park's research lab specializes in the design and development of advanced functional materials for next-generation optoelectronic and biomedical applications. The lab focuses on structural colors, stimuli-responsive photonic crystals, and core-shell nanomaterials—particularly for flexible, wearable, and biocompatible devices such as electronic skin displays, rewritable optical displays, and luminescent nanoprobes. Key research directions include the engineering of block copolymer-based photonic crystals, perovskite nanocrystals with enhanced stability, and carbon quantum dots for high-performance lighting and sensing.
Professor Sunwoo Lee's research lab specializes in nanomechanical systems and advanced materials for next-generation sensing and signal processing applications. The lab focuses on developing two-dimensional nanoelectromechanical systems (NEMS), particularly graphene and silicon nitride resonators, with a strong emphasis on strain engineering, electrical integration, and high-quality factor operation. Key research directions include the fabrication of electrically measurable, clamped graphene drum resonators and the development of scalable, low-loss heterostructures using graphene-coated Si3N4 membranes for practical device integration. The lab also explores efficient machine learning algorithms, such as adaptive federated learning and parallel CNN training, to support data-intensive scientific computing and intelligent system design.