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 Wu Bin Ying's research lab specializes in the design and development of advanced functional polymers and smart electronic materials, with a focus on stretchable electronics, self-healing materials, and bio-integrated systems. The lab pioneers innovative polyurethanes and ionic elastomers that combine exceptional mechanical properties—such as high toughness, elasticity, and rapid self-healing—with stimuli-responsiveness and biocompatibility. Key research directions include biomimetic electronic skins, retinomorphic vision systems for robotics, and thermally repairable polymers inspired by biological tissues.
Professor Baek-Il Kim's research lab specializes in preventive and restorative dentistry with a strong focus on oral health promotion through advanced materials and microbiological interventions. The lab investigates the role of nano-hydroxyapatite and other biomaterials in preventing dental erosion and enhancing tooth whitening, while also exploring the use of light-activated therapies and photosensitizers to modulate the oral microbiome. A key research direction involves the clinical application of diagnostic technologies such as quantitative light-induced fluorescence (QLF) to detect early signs of dental disease and assess microbial community changes. The lab integrates clinical, biochemical, and molecular approaches to improve both oral and systemic health outcomes.
Professor Suk-Jin Yoon's research lab specializes in theoretical and computational astrophysics, focusing on the formation and evolution of globular clusters, stellar populations in early-type galaxies, and the dynamical processes in dense stellar systems. The lab investigates the nonlinear relationships between stellar colors and metallicities, the role of horizontal-bridge evolution in shaping observed cluster properties, and the impact of intermediate-mass black holes on black hole binary formation. It also explores the interplay between galactic environment, star formation, and cluster dynamics, integrating insights from stellar population synthesis, gravitational wave astronomy, and galaxy evolution. The lab combines large-scale Monte Carlo simulations with observational data to address fundamental questions in extragalactic astronomy and stellar dynamics.
Professor Hye Jung Park's research lab focuses on immunology and respiratory health, with a strong emphasis on allergic diseases, hypersensitivity reactions, and the impact of environmental factors on immune responses. The lab investigates HLA gene associations with drug-induced severe cutaneous adverse reactions, particularly SJS/TEN linked to allopurinol, and tracks long-term changes in allergen reactivity in Korean populations. Additionally, the lab explores the respiratory toxicity of nanomaterials—especially silica nanoparticles—under various exposure conditions, and examines the clinical progression of patients with PRISm (persistent respiratory symptoms with mild airflow obstruction), highlighting their risk for developing COPD. The research integrates clinical immunology, environmental health, and toxicology to improve patient monitoring and public health strategies in Korea and beyond.
Professor Jonghun Kam's research lab specializes in climate hydrology and drought dynamics, focusing on the interplay between climate variability, land-atmosphere interactions, and extreme hydrological events. The lab investigates drought mechanisms across diverse U.S. regions using observational data, reanalysis products, and land surface modeling, with particular emphasis on understanding nonstationary drought behavior, climate drivers like ENSO and PDO, and the impacts of anthropogenic climate change. Research also integrates novel data sources such as Google Trends to assess public awareness and societal responses to drought.
Professor Seung Hyun Kim's research lab specializes in perioperative medicine, with a focus on optimizing anesthetic techniques and postoperative outcomes in complex surgical procedures. The lab investigates multimodal analgesia, including peripheral nerve blocks and pharmacologic adjuvants like dexmedetomidine, to improve pain control and reduce complications. Key research directions include enhancing patient safety during neurosurgical and abdominal procedures through advanced monitoring (e.g., capnography) and protective anesthetic strategies in ischemia-reperfusion injury. The lab also explores predictive models for postoperative ICU needs, particularly after major thoracic surgery.
Professor Eun Young Park's research lab specializes in food science and materials engineering, focusing on the modification of plant-based materials to enhance their functional and structural properties. The lab investigates enzymatic and chemical treatments of starches and fibers—such as oat flakes, rice, and pine bark—to improve texture, stability, and processing characteristics in food systems. A key research direction involves understanding the physicochemical behavior of polysaccharides and their interactions under various processing conditions, including freezing and drying. The lab also applies advanced numerical methods, such as finite element analysis, to model mechanical behavior in complex materials.
Professor Seok-Ki Jung's research lab specializes in the application of artificial intelligence and deep learning to orthodontic diagnosis and treatment planning. The lab focuses on developing convolutional neural network models to analyze cephalometric radiographs, intraoral photographs, and clinical data for automated classification of orthodontic conditions, such as surgical indications and dental crowding. A key emphasis is on improving diagnostic accuracy through interpretable AI techniques like Grad-CAM for visualizing model decision-making. The lab also investigates the biomechanical influences of orofacial muscle function on dentofacial morphology, integrating clinical measurements with imaging analysis.
Professor Soochan Kim's research lab specializes in advanced energy storage systems, with a primary focus on next-generation batteries such as lithium-sulfur and lithium-selenium batteries. The lab develops innovative materials and architectures—including multifunctional binders, solid electrolyte separators, and functional interlayers—to address critical challenges like polysulfide shuttling, lithium dendrite formation, and poor cycle life. A key emphasis is placed on scalable, practical solutions that enhance performance, safety, and longevity while maintaining high energy density. The lab also explores anode-free lithium-ion battery technologies and human-computer interaction systems for assistive technologies.
Professor Myung Mo Sung's research lab specializes in the design, synthesis, and integration of functional organic nanomaterials for next-generation electronic and optoelectronic applications. The lab focuses on developing advanced self-assembly and printing techniques—such as nanotransfer molding and inkjet-assisted nanotransfer printing—to fabricate high-performance, single-crystal organic nanowire arrays and monolithic organic electronic circuits. Key research directions include the creation of stable, high-mobility organic field-effect transistors, the engineering of robust surface-protected monolayers for device stability, and the development of low-temperature atomic layer deposition for effective thin-film barriers. The lab’s work bridges molecular engineering, nanofabrication, and device integration to enable flexible, high-performance, and scalable organic electronics.
Professor Hyungun Sung's research lab specializes in urban and environmental health, focusing on the interplay between urban spatial structure, built environment, and public health outcomes. The lab investigates how urban design—particularly density, land-use mix, walkability, and transit accessibility—affects human behavior, pedestrian safety, and responses to infectious disease outbreaks. Using advanced statistical modeling such as multilevel regression, ARIMA, and spatial analysis, the lab examines real-world impacts of events like MERS and COVID-19 on mobility, retail activity, and transit use in Asian megacities, especially Seoul. The research bridges urban planning, public health, and data science to inform resilient and people-centered urban development.
Professor Saiful Islam's research lab specializes in the design and development of advanced millimeter-wave and sub-6 GHz antenna systems for next-generation wireless communication, with a strong focus on 5G and V2X (Vehicle-to-Everything) applications. The lab pioneers compact, reconfigurable, and high-gain antenna arrays featuring beam-steering, pattern reconfiguration, and multi-band operation using innovative structures such as PIN diode-controlled strips, meandered radiators, and integrated filters. Emphasis is placed on achieving low profile, wide spatial coverage, and efficient energy harvesting for IoT and mobile devices.
Professor Javeed Mahmood's research lab specializes in the design, synthesis, and characterization of advanced two-dimensional (2D) nanomaterials with tailored electronic and catalytic properties. The lab focuses on developing novel covalent organic frameworks (COFs), nitrogen-doped carbon-based materials like C2N, and conductive polymers such as polyaniline and polypyrrole for applications in energy conversion and storage. Key research directions include the rational design of efficient electrocatalysts for hydrogen evolution and borohydride-based hydrogen generation, as well as exploring the integration of transition metals into 2D frameworks to enhance catalytic performance. The lab combines advanced synthesis techniques with in-depth characterization using scanning tunneling microscopy, X-ray diffraction, and spectroscopic methods to achieve atomic-level understanding of material structures and functions.
Professor Eunshil Choi's research lab specializes in the design and development of advanced nanomaterials for targeted cancer therapy, with a focus on stimuli-responsive drug delivery systems. The lab explores innovative strategies to enhance therapeutic efficacy by integrating smart nanocarriers—such as mesoporous silica nanoparticles and metal-organic frameworks—with stimuli-responsive gates, enzymes, or photoactive components for precise spatiotemporal control of drug release. Key research directions include overcoming tumor microenvironment challenges like hypoxia, enabling co-delivery of multiple therapeutic agents (e.g., chemodrugs and siRNAs), and improving the stability and biodegradability of nanocarriers in physiological conditions. The lab also investigates novel mechanisms for triggering programmed cell death pathways to combat drug resistance and improve cancer treatment outcomes.
Professor Jung Min Lee's research lab specializes in the development and application of advanced wearable technologies and nanomaterials for health monitoring and biomedical applications. The lab focuses on validating the accuracy of wearable activity trackers in measuring physical activity and exploring their integration with physiological monitoring, such as heart rate. Additionally, the lab investigates novel nanomaterial architectures—particularly ZnO-graphene hybrids—for flexible, transparent, and optoelectronic devices with potential in biosensing. A parallel line of research explores combination therapies in gynecologic cancers using targeted agents and immunotherapies, emphasizing translational biomarkers and clinical efficacy.
Professor Nway Nway's research lab specializes in integrated space-air-ground communication and computing systems, focusing on energy-efficient resource allocation, task offloading, and network optimization in beyond-5G and integrated networks. The lab explores multi-access edge computing (MEC) with unmanned aerial vehicles (UAVs) and low Earth orbit (LEO) satellites, aiming to minimize delay and energy consumption for IoT and mobile devices. Key research directions include UAV trajectory and altitude optimization, interference management, and joint computation and communication resource allocation in hybrid terrestrial and non-terrestrial networks.
Professor Hye Ah Lee's research lab focuses on early-life determinants of metabolic and cardiovascular health, with a strong emphasis on the long-term impacts of childhood lifestyle, nutrition, and environmental exposures. The lab investigates the interplay between age, period, and cohort effects on ischemic heart disease risk, particularly in women, and explores how preadolescent weight status, dietary patterns, and early-life factors such as breastfeeding influence metabolic syndrome and pubertal development. A key focus is on identifying modifiable risk factors during critical developmental windows to inform preventive public health strategies. The lab also examines low-dose environmental exposures, such as persistent organic pollutants (POPs), and their metabolic consequences in children through longitudinal cohort studies.
Professor Wankyu Kim's research lab specializes in computational biology and bioinformatics, focusing on leveraging artificial intelligence and machine learning to advance drug discovery and systems biology. The lab develops innovative in silico methods for predicting drug-target interactions, repurposing existing drugs for cancer therapy, and modeling protein-protein interactions with high accuracy. Key research directions include AI-driven drug design, multimodal biometric recognition systems, and the systematic classification of molecular interaction interfaces to uncover principles of molecular recognition. The lab integrates large-scale 'omics' data, structural bioinformatics, and statistical modeling to address challenges in precision medicine and functional genomics.
Professor Hongki Yoo's research lab specializes in biomedical imaging and nanomedicine, focusing on the development of advanced optical imaging techniques for high-resolution, 3D characterization of biological tissues and disease mechanisms. The lab integrates optical coherence tomography (OCT), fluorescence lifetime imaging (FLIm), and confocal microscopy to enable simultaneous microstructural and biochemical analysis of pathological tissues, particularly in atherosclerotic plaques. A key research direction involves designing targeted nanocarriers for precise delivery of therapeutic agents—such as PPARγ agonists—to inflamed vascular lesions, minimizing systemic side effects.
Professor Juhyoung Lee's research lab specializes in energy-efficient hardware accelerators for deep learning workloads, with a strong focus on optimizing computation and memory hierarchies for mobile and edge devices. The lab develops specialized processor architectures for convolutional neural networks (CNNs), deep reinforcement learning (DRL), and DNN training, emphasizing low-power, high-throughput, and memory-bandwidth-efficient designs. Key innovations include computing-in-memory (CIM) architectures, sparse computation techniques, and heterogeneous floating-point processing to enable real-time AI inference and training on resource-constrained platforms. The lab’s work bridges algorithmic efficiency with custom hardware design, targeting applications in mobile vision, robotics, and edge AI.