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 Jooyoung Park's research lab specializes in sustainable systems engineering, focusing on material flow analysis, life cycle assessment, and circular economy policy evaluation. The lab conducts national-scale, data-driven studies to quantify plastic and water system dynamics, greenhouse gas emissions, and public investment in circular economy initiatives. By developing standardized classification frameworks and dynamic modeling tools, the lab supports evidence-based policymaking for net-zero and resource-efficient societies. Current research emphasizes the integration of industrial ecology with environmental policy to advance circular and low-carbon transitions.
Professor Seong Hee Bhoo's research lab focuses on plant cell biology and molecular physiology, with a central emphasis on the molecular mechanisms underlying sugar transport, metabolism, and signaling in higher plants. The lab investigates the function and subcellular localization of sugar transporters—such as sucrose transporters (SUTs), plastidic glucose translocators (pGlcT), and triose-phosphate/phosphate translocators—using genetic, cellular, and biochemical approaches. Additionally, the lab explores the roles of key metabolic enzymes and regulatory proteins, including hexokinases and fructose-1,6-bisphosphatases, in carbon partitioning and photosynthetic efficiency. The research also extends to biotechnological applications, such as the use of plant systems for cost-effective production of subunit vaccines against pathogenic viruses.
Professor Hyun-Tai Chung's research lab specializes in stereotactic radiosurgery, with a primary focus on improving the accuracy, safety, and clinical outcomes of frameless Gamma Knife radiosurgery. The lab investigates image guidance, image co-registration techniques, and patient setup verification using cone-beam CT and MRI/CT fusion to enhance treatment precision. Their work emphasizes the integration of advanced imaging and stereotactic technology to optimize tumor control while preserving patients’ quality of life, particularly in benign and low-grade intracranial lesions. The lab also conducts rigorous quality assurance protocols to ensure long-term stability and reliability of radiosurgical systems.
Professor Dong-Hwee Kim's research lab specializes in cellular mechanobiology, focusing on how physical forces and mechanical cues from the extracellular environment regulate cell behavior, particularly in migration, nuclear morphology, and stem cell differentiation. The lab investigates the role of cytoskeletal structures—such as focal adhesions, the perinuclear actin cap, and the nucleus—under mechanical stress, integrating quantitative live-cell imaging, biophysical modeling, and engineered microenvironments. A central theme is understanding how cells sense and transduce mechanical signals through molecular complexes like the LINC complex and focal adhesion proteins to control motility and fate decisions.
Professor Seung Hee Yang's research lab focuses on the immunological and molecular mechanisms underlying kidney injury, with a particular emphasis on the roles of inflammatory signaling pathways, T cell subsets (especially Th17 cells), and innate immune cells such as NKT cells in acute and chronic kidney diseases. The lab investigates key mediators like STAT3, TNF receptors, and bilirubin in the context of ischemia-reperfusion injury, glomerulonephritis, and fibrosis, aiming to identify novel biomarkers and therapeutic targets for progressive kidney disease. Their work integrates preclinical models with human tissue analysis and translational approaches to bridge basic discoveries to clinical applications.
Professor Jae-Ho Choi's research lab specializes in advanced functional materials and smart photonic systems, with a focus on stimuli-responsive nanostructures, structural coloration, and intelligent sensing technologies. The lab explores the design and fabrication of reconfigurable photonic devices using azobenzene-based materials and hydrogels for applications in anti-counterfeiting, omniphobic surfaces, and dynamic optical encryption. Additionally, the lab integrates machine learning with radar-based sensing to address challenges in people counting and human motion analysis, particularly in complex and variable spatial environments. Their interdisciplinary work bridges nanofabrication, photonics, and artificial intelligence to develop next-generation adaptive materials and intelligent systems.
Professor Hyunmin Park's research lab specializes in advanced materials and device technologies for energy, sensing, and photonics applications. Key research directions include the development of high-performance temperature sensors using CMOS-compatible processes, novel liquid media for stimulated Brillouin scattering, printable and transparent electrodes for organic photovoltaics, power amplifier linearization techniques for wireless communications, and laser-based isotope separation for medical and industrial isotopes. The lab integrates materials science, microelectronics, and photonics to address challenges in energy efficiency, signal integrity, and isotope production.
Professor Jimin Han's research lab specializes in advanced endoscopic interventions, with a focus on minimally invasive treatments for gastrointestinal diseases. The lab investigates endoscopic therapies for biliary and pancreatic disorders, including stenting, papillectomy, and endoscopic suturing for gastroesophageal reflux disease. A key research direction involves advancing endoscopic ultrasound (EUS)-guided interventions such as fine needle aspiration, ablation, and targeted drug delivery. The lab also explores the pathological and imaging characteristics of conditions like autoimmune pancreatitis, cholangiopancreatic cancer, and fibrous dysplasia to improve diagnostic accuracy and therapeutic outcomes.
Professor Taehee Kim's research lab specializes in the design, synthesis, and characterization of advanced optoelectronic materials, with a focus on halide perovskites and quantum dots for next-generation devices. The lab investigates fundamental optical and electronic behaviors—such as exciton transport, Auger recombination, and defect dynamics—to optimize performance in light-emitting diodes, solar cells, and lasing applications. By employing advanced nanomaterials engineering, including core-shell quantum dots, 2D perovskite capping layers, and hybrid aerogel composites, the lab aims to enhance device efficiency and stability through atomic-level control of material interfaces and charge dynamics.
Professor Eun Jung Kim's research lab specializes in algorithmics and theoretical computer science, with a focus on designing efficient algorithms for NP-hard problems in structured graph classes. The lab develops linear-time algorithms and kernelization techniques, particularly for problems on H-topological-minor-free graphs, leveraging structural graph parameters like treewidth-modulators. A key research direction involves creating provably efficient solutions for parameterized problems through decomposition methods such as protrusion decomposition. The lab also explores energy-efficient system design, especially in high-performance computing infrastructures, by analyzing and optimizing interconnect energy consumption in cluster networks.
Professor Hui Kwon Kim's research lab specializes in molecular and genetic mechanisms underlying rare genetic disorders, particularly focusing on Hutchinson-Gilford progeria syndrome (HGPS) and its associated cardiovascular pathologies. The lab also engages in cutting-edge computational and genomic research, developing deep learning models to predict CRISPR-Cas9 (SpCas9) activity with high accuracy. Their work bridges clinical genetics with bioinformatics, aiming to improve gene editing precision and understand disease mechanisms at the molecular level. The lab integrates high-throughput functional genomics with machine learning to advance both therapeutic discovery and genomic tool development.
Professor Se-Young Choung's research lab specializes in translational biomedical research focusing on natural products and their therapeutic applications in age-related and metabolic diseases. The lab investigates bioactive compounds from traditional medicinal plants and functional foods to understand their mechanisms in treating conditions such as atopic dermatitis, diabetes, sarcopenia, age-related macular degeneration, and obesity. Key research directions include the modulation of oxidative stress, inflammation, and cellular senescence through natural extracts and purified phytochemicals.
Professor Jung-Wook Cho's research lab specializes in the thermophysical properties and processing behavior of mold fluxes in continuous steel casting, with a focus on heat transfer, rheology, and structural evolution of molten and solidifying slag films. The lab investigates interfacial thermal resistance, radiative and conductive heat transfer mechanisms, and the non-Newtonian rheological behavior of molten fluxes, particularly under high-temperature conditions relevant to advanced high-strength steel (AHSS) casting. Using advanced characterization techniques such as Raman spectroscopy, FTIR, and 27Al MAS NMR, the lab explores the relationship between molecular structure and macroscopic properties like viscosity and crystallization kinetics.
Professor Ki Deok Kim's research lab specializes in biological control of postharvest crop pathogens, with a primary focus on fungal contamination and mycotoxin production in stored cereal grains, particularly rice. The lab investigates plant growth-promoting and antagonistic bacteria—such as *Pseudomonas protegens*, *Bacillus megaterium*, and *Microbacterium testaceum*—to develop sustainable biocontrol strategies. Research also extends to understanding the impact of environmental factors like temperature and humidity on fungal growth and to exploring volatile organic compounds as natural antifungals. The lab's work aims to reduce mycotoxin contamination and improve food safety and agricultural sustainability.
Professor Myung Chul Yoo's research lab specializes in clinical and translational studies focused on neurological and orthopedic disorders, particularly facial nerve palsy and osteonecrosis of the femoral head. The lab investigates prognostic factors, treatment outcomes, and innovative surgical interventions such as vascularized fibula grafting and cementless total hip arthroplasty in challenging conditions like haemophilic arthropathy. It also explores the impact of systemic diseases and global health events—such as the COVID-19 pandemic—on the prevalence and management of rheumatic diseases, including rheumatoid arthritis and osteoarthritis. The lab integrates clinical data with advanced imaging and outcome assessments to improve patient-centered care and rehabilitation strategies.
Professor Il Joon Moon's research lab specializes in auditory neuroscience and otolaryngology, focusing on the neural mechanisms underlying speech perception, tinnitus, and balance disorders. The lab investigates auditory processing using psychoacoustic and neuroimaging techniques, with particular emphasis on temporal and spectral processing in hearing, cochlear implant outcomes, and the pathophysiology of tinnitus and benign paroxysmal positional vertigo (BPPV). Recent work also explores dynamic airway obstruction during sleep using sleep MRI, highlighting a translational approach to diagnosing and treating craniofacial and vestibular disorders. The lab integrates clinical audiology with experimental research to improve diagnostic accuracy and treatment strategies for hearing and balance disorders.
Professor Sungmin Son's research lab specializes in developing advanced microfluidic and nanomechanical platforms to study cellular mechanics, biomolecular interactions, and pathogen detection at the single-cell and molecular level. The lab focuses on creating high-resolution, real-time biosensors—such as suspended microchannel resonators and optical profilometry techniques—to measure physical properties like cell mass, deformability, and surface molecule height with nanoscale precision. A key direction involves applying these tools to understand disease mechanisms, including viral fusion, cancer metastasis, and SARS-CoV-2 detection, with an emphasis on rapid, portable, and sensitive diagnostics. The lab also pioneers CRISPR-based assays and mechanical probing strategies for drug response monitoring and fundamental cell biology.
Professor Dong In Suh's research lab specializes in pediatric respiratory medicine, with a focus on understanding the pathophysiology, diagnosis, and management of asthma and community-acquired pneumonia in children. The lab investigates the impact of prenatal factors on allergic disease development, explores biomarkers and clinical phenotypes of asthma—particularly atopy and bronchial hyperresponsiveness—and applies advanced technologies such as machine learning to analyze pediatric respiratory sounds for early diagnosis. The research integrates clinical studies, molecular mechanisms, and digital health innovations to improve outcomes in pediatric respiratory disorders.
Professor Youngsook Son's research lab focuses on the therapeutic potential of Substance P (SP) and glial cell crosstalk in regenerative medicine, particularly in neurological and ocular disorders. The lab investigates neuroimmune interactions, including microglia-macrophage polarization and astrocyte-microglia communication, to modulate inflammation and promote tissue repair in conditions such as spinal cord injury, stroke, and retinal degeneration. A central theme is the role of endogenous signaling molecules like SP in enhancing angiogenesis, reducing chronic inflammation, and mobilizing stem cells to accelerate healing in diabetic and neurodegenerative environments. The lab also explores alternative cell sources, such as costal chondrocytes, for regenerative applications in cartilage repair.
Professor Seungbok Lee's research lab specializes in translational genomics and health disparities, focusing on the molecular mechanisms of rare and orphan diseases such as extranodal NK/T-cell lymphoma and alopecia areata. The lab integrates next-generation sequencing technologies—including whole-exome and RNA sequencing—to identify genetic drivers and pathogenic variants in cancer and autoimmune disorders. A significant emphasis is placed on understanding health inequities, particularly in vulnerable populations such as people with disabilities during public health crises, highlighting the intersection of genomics and social determinants of health. The lab also contributes to advancing telemedicine applications in neurorehabilitation, particularly for spinal cord injury, by evaluating clinical effectiveness and implementation barriers.