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 Tukaram D. Dongale's research lab specializes in the development of advanced nanomaterials and resistive switching devices for next-generation neuromorphic computing and low-power memory applications. The lab focuses on designing bio-inspired memristive devices using 2D materials like MXene, transition metal oxides (e.g., nickel cobaltite), and biocompatible polymers such as chitosan and collagen to enable multilevel resistive switching and synaptic plasticity. Key research directions include the engineering of nanomaterials for enhanced switching performance, the fabrication of low-cost, scalable memristive devices using techniques like doctor blading and electrospinning, and the exploration of self-rectifying and selector-based crossbar architectures to overcome critical challenges in resistive memory arrays. The lab’s work bridges materials science, nanoelectronics, and artificial intelligence, aiming to create energy-efficient, brain-inspired computing systems.
Professor Hyung Chul Ham's research lab specializes in computational and experimental catalysis, focusing on the design and optimization of nanostructured catalysts for sustainable energy and environmental applications. The lab investigates the electronic and geometric effects in bimetallic and multimetallic systems—particularly Pd-based alloys and perovskite oxides—to enhance activity, selectivity, and stability in key reactions such as hydrogen peroxide synthesis, oxygen reduction, CO oxidation, and dry reforming of methane. Using advanced theoretical methods like density functional theory (DFT) combined with spectroscopic and microscopic characterization, the lab aims to uncover structure-activity relationships at the atomic level to guide the rational development of next-generation catalysts.
Professor Seong Sik Shin's research lab specializes in advanced materials for next-generation optoelectronic devices, with a primary focus on perovskite solar cells and their integration into practical applications. The lab explores innovative strategies such as surface reconstruction, defect passivation, and novel electrode architectures to enhance power conversion efficiency, stability, and scalability. Key research directions include compositional engineering of perovskite materials, low-light performance optimization for indoor photovoltaics, and the development of transparent and carbon-based electrodes for building-integrated photovoltaics.
Professor Gunwoo Lee's research lab specializes in maritime transportation systems, with a focus on ship energy efficiency, supply chain integration, and port operations. The lab applies advanced machine learning techniques—such as multilayer perceptron neural networks and gradient boosting models—to predict fuel consumption, accident risks, and economic impacts in container shipping. It also investigates environmental externalities, particularly emissions from freight trucks in port corridors, using data-driven bottom-up modeling approaches. The lab’s work bridges engineering, logistics, and environmental sustainability, aiming to support greener and more resilient global supply chains.
Professor Woo-Jae Kim's research lab specializes in the development and application of advanced nanomaterials for energy conversion, environmental sustainability, and biomedical applications. Key research directions include the selective functionalization and separation of carbon nanotubes for electronic and optoelectronic applications, catalytic hydrogen production from biomass using tailored nanostructured materials, and the design of hybrid nanocomposites for high-performance photodetectors. The lab also investigates the role of lipid signaling molecules, such as ceramide, in cellular regulation and disease pathways, linking nanomaterial science with biological systems.
Professor Bongju Kim's research lab specializes in biomedical engineering and tissue regeneration, with a strong focus on developing advanced biomaterials and biofabrication techniques for regenerative medicine. The lab investigates electrospun nanofibrous scaffolds, 3D bioprinting, and functionalized bioinks—particularly those incorporating novel nanomaterials like MXene—for applications in bone and skeletal muscle tissue engineering. Key research directions include optimizing cell-matrix interactions, enhancing osteogenic and myogenic differentiation, and improving the precision and efficacy of orthodontic treatments through smart biomaterial design and finite element analysis. The lab integrates principles from materials science, cell biology, and mechanical engineering to create patient-specific, bioactive tissue constructs with clinical translation potential.
Professor Jong‐Chan Park's research lab focuses on understanding the neuroimmune and neurovascular mechanisms underlying Alzheimer's disease (AD), with a particular emphasis on identifying and validating blood-based biomarkers for early detection and monitoring of disease progression. The lab investigates the roles of inflammatory mediators, blood-brain barrier integrity, and immune cell dynamics—especially B lymphocytes and microglia—across different stages of AD. Utilizing multimodal imaging (PET, MRI), longitudinal cohort studies, and molecular profiling (including B cell receptor repertoire and plasma biomarkers), the lab aims to uncover sex-specific pathophysiological mechanisms and develop translational tools for precision medicine in neurodegeneration.
Professor Inkyu Shin's research lab specializes in computer vision and machine learning, with a strong focus on domain generalization and adaptation for semantic segmentation in both 2D and 3D scenes. The lab explores unsupervised and test-time adaptation techniques to bridge the domain gap between synthetic and real-world data, particularly in challenging scenarios like video and multi-modal perception. Key research directions include self-supervised learning, human-in-the-loop labeling strategies, and unified architectures for online and near-online video panoptic segmentation. The lab emphasizes practical, data-efficient solutions that achieve near-supervised performance with minimal human annotation.
Professor Wooyoung Shim's research lab specializes in the development of advanced nanomaterials and nanodevices for next-generation electronics and energy technologies. The lab focuses on scalable, low-cost fabrication methods—such as pencil-based patterning and scanning probe lithography—enabling high-performance sensors and 2D membrane systems. Key research directions include transparent and flexible capacitive sensors, stress-induced nanowire growth, thermochromic interactive sensing, and inorganic 2D materials for ion transport and energy applications. The lab emphasizes the integration of fundamental materials science with practical device engineering for sustainable and ubiquitous technology solutions.
Professor Sang Joon Shin's research lab specializes in translational oncology, focusing on the biological mechanisms and clinical management of rare and aggressive cancers, particularly mucosal melanoma. The lab investigates the synergistic effects of radiotherapy and immune checkpoint inhibitors to enhance anti-tumor responses and improve patient outcomes. Current research emphasizes optimizing combination therapies and understanding the tumor microenvironment's role in treatment resistance. The lab integrates clinical data with preclinical models to develop personalized treatment strategies for difficult-to-treat malignancies.
Professor Masoud Nazarian-Samani's research lab specializes in the design, synthesis, and characterization of advanced nanomaterials for energy storage and conversion applications. The lab focuses on developing novel carbon-based and transition metal phosphide nanostructures with tailored electronic and ionic transport properties to enhance the performance of batteries and supercapacitors. Key research directions include defect engineering in graphene, nanoarchitectured anodes for conversion and conversion-type intercalation batteries, and the fundamental understanding of solid-electrolyte interphase (SEI) formation and stability. The lab combines advanced materials synthesis with in-situ and ex-situ characterization techniques, including XRD, TEM, DFT calculations, and electrochemical analysis, to guide rational material design.
Professor Jee Hee Yoo's research lab focuses on advancing diabetes management through innovative glucose monitoring technologies and metabolic health biomarkers. The lab investigates the clinical utility of continuous glucose monitoring (CGM) and glycated hemoglobin (HbA1c) in diverse populations, including those with type 1 and type 2 diabetes, as well as in non-diabetic individuals at risk for metabolic disorders. Key research directions include understanding the impact of glycemic variability, exploring the role of novel therapeutics like dulaglutide, and examining the association between glycemic markers and complications such as non-alcoholic fatty liver disease (NAFLD). The lab emphasizes real-world evidence and translational applications to improve patient outcomes and inform clinical guidelines.
Professor Sungyun Choi's research lab specializes in smart grid technologies, with a focus on real-time operation, protection, and optimization of distribution systems integrating renewable energy sources. The lab develops advanced state estimation and control methodologies—particularly distributed dynamic state estimation and autonomous monitoring systems—enabling setting-less protection and adaptive energy management in microgrids and industrial networks. Key research directions include the coordination of day-ahead and real-time optimization, integration of energy storage systems and demand response, and intelligent monitoring using universal IEDs for enhanced system visibility and reliability.
Professor Ranjit De's research lab specializes in the design and application of advanced polymeric and nanomaterial systems for biomedical and environmental applications. The lab focuses on developing smart nanocarriers—particularly polymeric and polyelectrolyte-based systems—for targeted drug and protein delivery, with an emphasis on enhancing bioavailability, protecting therapeutic cargo from degradation, and enabling subcellular targeting. Key research directions include the development of functional nanomaterials such as carbon quantum dots and upconverting nanoparticles for biosensing and theranostic applications, especially in cancer chemoprevention and protein delivery. The lab also investigates the fundamental interactions of polyelectrolytes and nanomaterials in complex aqueous environments to guide rational material design.
Professor Sang Eun Yoon's research lab focuses on translational and clinical oncology, with a strong emphasis on understanding the molecular and immunological mechanisms underlying lymphomas, particularly T-follicular helper (Tfh)-derived lymphomas and primary central nervous system lymphoma (PCNSL). The lab investigates the role of the gut microbiome in modulating chemotherapy response and disease progression in diffuse large B-cell lymphoma (DLBCL), and explores biomarkers such as circulating tumor DNA (ctDNA) for improved monitoring and prognosis prediction. Additionally, the lab examines clinical predictors, including tumor laterality and molecular subtypes, to refine treatment strategies in colorectal and lymphoid malignancies.
Professor EunPyo Hong's research lab specializes in consumer behavior, with a focus on service experiences, brand perception, and the psychological drivers behind customer and franchisee behavior. The lab explores how individual differences—such as personality, age, and motivation—affect engagement with services, particularly in food and hospitality sectors. Key research directions include self-service technology adoption, organic and luxury service branding, and the role of perceived authenticity and social status in shaping customer loyalty. The lab employs advanced quantitative methods, including PLS-SEM, to analyze behavioral intentions and service outcomes in dynamic service environments.
Professor Peter J. Schulz's research lab focuses on psychosomatic and behavioral health, with a strong emphasis on stress reactivity, health literacy, and patient-doctor dynamics. The lab investigates chronic stress, cortisol reactivity, and their links to long-term health outcomes, while also exploring how patient empowerment and visual health communication can improve medication adherence and health comprehension. A central theme is the distinction between subjective (perception-based) and objective (performance-based) health literacy, with a focus on preventing health misinformation.
Professor Chun Kee Chung's research lab specializes in clinical and cognitive neuroscience, focusing on the neural mechanisms underlying memory, epilepsy, and chronic pain disorders. The lab employs advanced neuroimaging techniques such as magnetoencephalography (MEG) and functional MRI to investigate large-scale brain network dynamics in conditions like temporal lobe epilepsy, fibromyalgia, and episodic memory dysfunction. A key research direction involves identifying electrophysiological and functional network hubs as potential biomarkers for early diagnosis and surgical planning. The lab also explores non-invasive brain-computer interfaces and neuromodulation for restoring function in neurological disorders.
Professor Min-Suk Heo's research lab specializes in the application of artificial intelligence and deep learning in oral and maxillofacial (OMF) radiology, with a focus on improving diagnostic accuracy and forensic identification. The lab investigates age-related changes in mandibular bone structure, particularly cortical and trabecular bone alterations in men and women, to support osteoporosis risk assessment. A key research direction involves developing automated systems for detecting natural teeth and dental restoration patterns in panoramic radiographs to enhance disaster victim identification. The lab also explores radiographic biomarkers using fractal analysis and imaging metrics for clinical and forensic applications.
Professor Seung Hyun Kim's research lab specializes in natural product chemistry and phytochemical analysis, focusing on the isolation, structural elucidation, and biological evaluation of bioactive compounds from medicinal plants and marine organisms. The lab investigates the antioxidant, antiviral, hepatoprotective, and gastroprotective activities of natural compounds, with particular emphasis on phenolics, lignans, sesquiterpenes, and naphthoquinones. Utilizing advanced analytical techniques such as HPLC, NMR, and high-resolution mass spectrometry, the lab integrates metabolomics approaches to understand plant responses to stress and disease.