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 Hong Chul Moon's research lab specializes in the development of functional ion gels and ionic conductive materials for next-generation flexible and wearable electronic devices. The lab focuses on designing smart, stretchable, and transparent electrolytes using block copolymers and ionic liquids, enabling applications in electrochromic devices, electrochemiluminescent systems, and high-performance supercapacitors. Key research directions include tuning molecular structures for multicolor electrochromism, enhancing ionic conductivity and mechanical durability, and integrating these materials into low-voltage, solution-processable devices. The lab emphasizes materials innovation for sustainable, high-performance electronics with applications in wearable technology and energy storage.
Professor Kongho Cho's research lab specializes in thoracic surgery and oncology, with a primary focus on surgical management and prognostic evaluation of patients with advanced lung and colorectal cancers. The lab investigates outcomes following pulmonary metastasectomy, particularly the impact of metastatic burden, liver involvement, and biomarker expression (e.g., PD-L1, EGFR mutations) on survival and recurrence. It also explores minimally invasive techniques such as video-assisted thoracic surgery (VATS) for both diagnostic and therapeutic purposes, especially in challenging populations like those with interstitial lung disease or large tumors. The lab emphasizes individualized treatment strategies through precise prognostic modeling and oncological validity assessment.
Professor Chang-hoon Lee's research spans molecular pathology, surgical innovation, and advanced engineering systems. His lab focuses on translational cancer research, particularly in gastric cancer classification using accessible molecular techniques, and investigates early precancerous lesions in the gastric mucosa. Additionally, the lab explores biomedical engineering solutions, such as surgical techniques for congenital hand anomalies and adaptive signal processing for digital storage systems. The integration of clinical pathology with engineering applications defines the lab’s interdisciplinary approach.
Professor Sung-Joon Jeong's research lab specializes in molecular and cellular mechanisms underlying sensory transduction and neuropathic pain, with a focus on ion channels such as TRPV1 and HCN channels. The lab investigates how endogenous signaling molecules, pattern recognition receptors (e.g., TLR4), and cellular processes like autophagy regulate neuronal excitability and pain sensitization. Key research directions include the modulation of TRPV1 by second messengers (e.g., DAG), the role of TLR4 in pain sensitization, and the therapeutic potential of natural compounds like eugenol in treating chronic pain. The lab employs a multidisciplinary approach combining patch-clamp electrophysiology, calcium imaging, molecular biology, and behavioral studies in rodent models.
Professor Jung-Bum Kim's research lab specializes in regenerative medicine and bioengineering, focusing on the development of advanced bio-inks and stem cell technologies for tissue engineering and disease modeling. The lab pioneers innovative approaches such as decellularized extracellular matrix-based bio-inks for 3D bioprinting and direct reprogramming of somatic cells into lineage-restricted stem cells to overcome limitations in cell therapy, including tumorigenicity and poor proliferation. Their work also extends to disease-relevant models, particularly for neurodegenerative and liver diseases, using induced pluripotent stem cell-derived organoids and assembloids to study pathogenesis and therapeutic potential.
Professor Sung Yong Cho's research lab specializes in advanced materials and sustainable energy technologies, with a strong focus on developing high-performance materials for energy storage and environmental applications. Key research directions include the design of defect-free polymers for optoelectronic devices, such as polyfluorenes with enhanced stability and reduced green emission, and the development of next-generation batteries like lithium-sulfur batteries using innovative separators such as boron nitride nanotubes. The lab also explores sustainable hydrogen production through water splitting and contributes to urological interventions, particularly in retrograde intrarenal surgery (RIRS), highlighting a multidisciplinary approach combining materials science, energy technology, and biomedical engineering. The integration of materials innovation with real-world applications in energy and healthcare defines the lab’s mission.
Professor Jeong Woo-kyung's research lab specializes in medical image analysis, with a focus on advancing non-invasive diagnostic techniques for liver diseases and oncological imaging. The lab develops innovative imaging biomarkers using elastography, radiomics, and deep learning to improve the assessment of liver fibrosis, portal hypertension, and liver tumors such as hepatocellular carcinoma and cholangiocarcinoma. A key emphasis is placed on translating these technologies into clinical practice through accurate, automated segmentation and quantitative analysis of abdominal CT and MRI scans. The lab also explores the integration of imaging with genomics to identify imaging surrogates of molecular phenotypes.
Professor Sung-Min Lee's research lab specializes in advanced optoelectronic materials and devices, with a focus on flexible and wearable technologies. Key research directions include the development of highly durable organic light-emitting diodes (OLEDs) for flexible displays, luminescent fiber-based textile displays for smart clothing, and ultrathin, high-efficiency III-V solar cells for next-generation photovoltaics. The lab also explores materials engineering for plasma etching processes and the integration of functional oxides in electronic and optoelectronic applications.
Professor Youngjin Cho's research lab specializes in the design and development of advanced functional materials for biomedical and environmental applications. Key research directions include the synthesis of fluorine-free, amphiphilic block copolymers for anti-fouling coatings and protein-resistant surfaces, the development of monoclonal antibodies for mycotoxin detection, and the investigation of DNA adducts formed by endogenous and exogenous aldehydes using NMR spectroscopy. The lab also explores immunomodulatory polysaccharides from natural sources, such as ginseng, to evaluate their clinical potential in enhancing immune function. These interdisciplinary efforts integrate polymer chemistry, bioanalytical chemistry, and molecular biology to address challenges in biomedicine and environmental sustainability.
Professor Jeong Ji-rang's research lab focuses on critical care medicine, with a primary emphasis on sepsis, delirium, and intensive care unit (ICU) outcomes in critically ill patients. The lab investigates biomarkers such as procalcitonin and C-reactive protein for early sepsis detection and prognosis, explores the psychological and cognitive sequelae of ICU stays, and examines the impact of clinical interventions—like early enteral nutrition, vitamin C, and thiamine—on patient recovery. The lab also employs electronic health record data to develop predictive models for ICU delirium, aiming to improve early detection and patient-centered care.
Professor Seongyeong Lee's research lab specializes in computational and systems biology, focusing on the molecular mechanisms underlying human diseases, particularly cancer and complex genetic disorders. The lab integrates bioinformatics, systems genetics, and functional genomics to identify key regulatory pathways and rare genetic variants contributing to diseases such as colon cancer, type 2 diabetes, and chronic obstructive pulmonary disease (COPD). A central theme is the development of advanced statistical and computational methods—such as PHARAOH and WISARD—for analyzing high-throughput sequencing data, especially in the context of rare variants and pathway-level interactions. The lab also investigates transcription factor networks, including AP-1 dimers and Wnt/β-catenin signaling, to uncover novel therapeutic targets.
Professor Jung-Sun Won's research lab specializes in remote sensing and geospatial analysis, with a focus on advancing Earth observation technologies for environmental monitoring and hazard assessment. The lab develops innovative radar-based methodologies using synthetic aperture radar (SAR) and interferometric SAR (InSAR) to address challenges in sea ice monitoring, coal mine subsidence, rice paddy height estimation, vessel tracking, and digital elevation modeling in dynamic coastal environments. Their work emphasizes machine learning integration, topographic correction, and the use of high-resolution satellite data to improve accuracy and operational feasibility in complex terrains and coastal zones.
Professor Seung-Joon Lee's research lab focuses on vascular biology and translational medicine, with a central emphasis on endothelial dysfunction in critical diseases such as sepsis, myocardial infarction, and diabetes. The lab investigates molecular mechanisms underlying vascular integrity, angiogenesis, and inflammation, particularly through key regulators like angiopoietin-2 and Tie2 receptor signaling. Innovative therapeutic strategies—including novel antibodies and ultrasound-mediated drug delivery—are developed to protect the vasculature and improve outcomes in acute and chronic cardiovascular and metabolic disorders. The lab also explores gut vascular and epithelial homeostasis via GLP-2 receptor signaling, highlighting its role in mucosal repair and host-microbe interactions.
Professor Jeong Hyun-ae's research lab focuses on clinical oncology, particularly the translational and clinical investigation of aggressive hematologic and solid tumors. The lab specializes in understanding prognostic factors, optimizing treatment strategies, and evaluating novel therapeutic regimens—especially immunotherapies and targeted agents—in lymphomas, non-small cell lung cancer, nasopharyngeal carcinoma, and rare malignancies like urachal cancer. Their work emphasizes real-world outcomes, treatment response, and survival in patients receiving anthracycline-based or targeted therapies, with a strong focus on biomarkers such as lymphopenia and CNS progression.
Professor Sang Min Jeon's research lab specializes in the development of advanced nanomaterials and microfluidic systems for sensitive and rapid detection of biological agents, particularly pathogenic bacteria and protein biomarkers. The lab focuses on integrating magnetic nanoparticles, functionalized nanomaterials, and microcantilever-based sensors to enable high-sensitivity, label-free, and portable diagnostic platforms. Key research directions include magnetic separation techniques, surface engineering for enhanced binding efficiency, and the application of stimuli-responsive materials such as magnetorheological elastomers for smart sensing interfaces.
Professor Ji-Hyang Jeong's research lab specializes in neuropsychiatry and neurodegenerative disorders, with a focus on the early detection, biomarker discovery, and non-pharmacological interventions for cognitive decline and Alzheimer’s disease. The lab investigates epigenetic mechanisms, neuroimaging correlates, and neurotrophic factors such as BDNF in mild cognitive impairment and neurodegenerative conditions. Key research directions include cognitive interventions (both group and home-based), the role of brain microhemorrhages in small vessel disease, and the identification of diagnostic and prognostic biomarkers using molecular and imaging techniques.
Professor Ki-Young Lee's research lab specializes in redox biology and signal transduction, focusing on the molecular mechanisms of oxidative stress in immune responses and inflammatory diseases. The lab investigates key regulatory proteins such as peroxiredoxins (Prx1, Prdx6), TRAF6, and ECSIT in controlling NF-κB activation, autophagy, and stress-activated kinase pathways. Their work bridges redox signaling with innate immunity, inflammation, and cellular homeostasis, particularly in the context of asthma and autoimmune disorders. The lab employs molecular and cellular approaches to dissect redox-sensitive signaling networks and identify therapeutic targets for inflammatory and oxidative stress-related diseases.
Professor Insun Park's research lab specializes in polymer science and materials chemistry, with a focus on block copolymer self-assembly, nanostructured thin films, and functional organic materials for advanced applications. The lab investigates the hierarchical organization of block copolymers on surfaces, particularly the formation and stabilization of complex nanostructures such as hexagonally perforated layers and gyroid phases, using advanced characterization techniques like grazing-incidence X-ray scattering and AFM. Another key direction involves the development of organic semiconductors for near-infrared and shortwave infrared photodetectors, as well as sustainable materials for environmental remediation, such as silicone-based sorbents for oil and solvent removal from water. The lab also explores chromatographic separation techniques to understand and control polymer architecture-property relationships.
Professor Haek-Joon Park's research lab specializes in advanced energy storage materials, with a primary focus on next-generation batteries for sustainable energy applications. The lab investigates fundamental electrochemical mechanisms in lithium- and sodium-ion batteries, including intercalation chemistry, solid-electrolyte interphase (SEI) formation, and voltage stability in high-energy cathode materials. Key research directions include developing high-concentration and aqueous electrolytes for safer, low-cost, and high-voltage batteries, as well as mitigating parasitic reactions such as self-discharge and residual lithium impurities in high-nickel and lithium-rich oxide cathodes. The lab combines thermodynamic insights with innovative electrolyte and electrode design to enhance battery performance, longevity, and scalability.
Professor Hyun-sook Lee's research lab focuses on molecular genetics, plant developmental biology, and advanced materials for sustainable energy solutions. The lab investigates gene functions in plant reproduction and stress responses, particularly through reverse genetics approaches in model plants like *Petunia* and *Oryza sativa* (rice), aiming to understand key regulatory mechanisms in pollen development and seedling establishment. In parallel, the lab explores innovative materials for hydrogen storage, emphasizing nanoconfined hydride composites to enhance kinetics and thermal stability for clean energy applications. These interdisciplinary efforts reflect a strong commitment to addressing global challenges in agriculture and renewable energy.