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 Hoon Kim's research lab specializes in the development and application of biogenic nanoparticles, particularly gold and other nanomaterials synthesized using natural extracts such as *Phyllanthus emblica*, *Diospyros kaki* (persimmon), and *Lactobacillus plantarum*. The lab focuses on exploring the anticancer, anti-inflammatory, and antioxidant properties of these nanoparticles, with an emphasis on their mechanisms in cellular models like 3T3-L1 preadipocytes and gastric cancer cells (AGS). A key research direction involves understanding the role of genetic polymorphisms—such as sFRP4 c1019G>A—in bone mineral density, particularly in postmenopausal women, linking molecular genetics with metabolic health.
Professor Jerome K. Hyun's research lab specializes in nanophotonics, optoelectronics, and renewable energy materials, focusing on the design and engineering of low-dimensional nanostructures such as semiconductor nanowires and dielectric microspheres. The lab explores light-matter interactions in nanostructured materials to develop advanced photonic devices, including ultrafast colorimetric sensors, high-efficiency photoelectrodes for solar water splitting, and structural color materials with tunable optical properties. A central theme is the integration of plasmonics, dielectric resonances, and heterostructured architectures to achieve enhanced performance in energy conversion and nanoscale optical control.
Professor Qing Tang's research lab specializes in theoretical and computational materials science, focusing on the electronic, magnetic, and catalytic properties of two-dimensional nanomaterials and atomically precise nanoclusters. Key research directions include understanding and tuning the functionality of MXenes, transition metal dichalcogenides (TMDs), graphene-based materials, and metal nanoclusters through chemical functionalization and surface engineering. The lab employs advanced density functional theory (DFT) calculations to explore energy storage mechanisms, electrocatalysis (especially CO₂ reduction and hydrogen evolution), and structure-property relationships at the atomic level.
Professor Byung-Wan Lee's research lab focuses on metabolic diseases, particularly the molecular mechanisms underlying non-alcoholic fatty liver disease (NAFLD) and insulin resistance in type 2 diabetes mellitus. The lab investigates cellular pathways involving autophagy, SIRT1, AMPK, and mTOR signaling in response to metabolic stressors such as lipotoxicity and pharmacological agents like metformin. It also explores the impact of dietary interventions—such as caloric restriction and intermittent fasting—on metabolic health and liver fat accumulation. Additionally, the lab examines the role of receptor for advanced glycation endproducts (RAGE) in pancreatic β-cell dysfunction and diabetic complications.
Professor Hyungjun Kim's research lab specializes in computational and experimental studies of excited-state processes in organic semiconducting materials, with a focus on singlet fission, multiexciton states, and multi-electron transfer mechanisms. The lab investigates the fundamental photophysics and electronic coupling in materials such as perylene bisimides and oligoacene-based dendrimers to enable efficient solar energy conversion. By integrating quantum chemical simulations, time-resolved spectroscopy, and machine learning, the group aims to design next-generation optoelectronic materials with tailored electronic and redox properties. Their work bridges molecular design, reaction mechanism prediction, and device-relevant performance optimization.
Professor Hyun Park's research lab focuses on understanding the molecular mechanisms underlying chronic inflammatory skin diseases, including atopic dermatitis, psoriasis, and rosacea, with an emphasis on immunologic dysregulation, neurovascular interactions, and genetic susceptibility. The lab investigates key signaling pathways, immune cell subsets, and oxidative stress responses—such as those involving Nox4 and reactive oxygen species—in driving inflammatory skin pathology. Additionally, the lab explores novel therapeutic strategies, including photodynamic therapy, for inflammatory and oncologic skin conditions. Their work bridges basic molecular mechanisms with clinical applications, aiming to uncover new targets for precision dermatology.
Professor Seong-kyun Im's research lab specializes in advanced energy conversion systems and high-speed aerodynamics, with a strong focus on plasma-assisted flow control and sustainable energy technologies. The lab investigates dielectric barrier discharge (DBD) actuators for manipulating supersonic and hypersonic boundary layers, aiming to improve the efficiency and stability of scramjet and propulsion systems. Additionally, the lab conducts comprehensive thermodynamic and economic analyses of plastic waste-to-energy systems, particularly plastic-integrated gasification combined cycles (plastic-IGCC), to enhance energy recovery and reduce environmental impact. The research integrates experimental fluid dynamics, numerical simulation, and sustainable energy system optimization.
Professor Moo-Yeol Baik's research lab specializes in starch science and food polymer chemistry, focusing on the physical and chemical behavior of starch-based systems under various processing and storage conditions. Key research directions include starch retrogradation, glass transition phenomena, moisture migration, and the effects of additives like glycerol and antioxidants on the stability and texture of starchy foods. The lab employs advanced analytical techniques such as DSC, DMA, solid-state NMR, and X-ray diffraction to investigate molecular-level changes in starch gels, bread crumb, and encapsulated lipids.
Professor Seong Jun Kang's research lab specializes in advanced oxide semiconductors and 2D materials for next-generation optoelectronic and neuromorphic devices. The lab focuses on developing transparent and flexible electronics, including high-performance phototransistors, transparent conductive electrodes, and optoelectronic logic circuits. Key research directions include enhancing device performance through surface engineering, heterostructure design, and defect control in wide-bandgap semiconductors like ZnO and TiO₂, with applications in wearable electronics, robotics, and autonomous systems.
Professor Dae-Duk Kim's research lab specializes in pharmaceutical sciences with a focus on drug disposition, absorption, and bioavailability. The lab investigates the mechanisms underlying the oral bioavailability of anticancer drugs, particularly using doxorubicin as a model compound, to understand the roles of intestinal absorption and first-pass metabolism. Their work combines in vivo pharmacokinetic studies with in vitro models such as Caco-2 cell monolayers to evaluate drug transport and permeability. The lab's research aims to improve the oral delivery of poorly absorbed drugs through a better understanding of absorption barriers and transporter interactions.
Professor Jae Hee Cho's research lab specializes in interventional endoscopy and minimally invasive therapies for gastrointestinal and hepatobiliary malignancies, with a focus on radiofrequency ablation (RFA) techniques for biliary and pancreatic cancers. The lab investigates temperature-controlled RFA, including endoscopic biliary RFA (EB-RFA) and intraductal RFA (ID-RFA), to improve treatment efficacy and safety in advanced or surgically challenging cases. A key research direction involves understanding molecular mechanisms of chemoresistance in pancreatic ductal adenocarcinoma, particularly the role of the NRF2 pathway in tumor progression and therapeutic resistance. The lab also contributes to clinical classification systems and procedural optimization in endoscopy, such as TNM staging for pancreatic neuroendocrine tumors and procedural sequencing in same-day endoscopy.
Professor Soo-Yeon Cho's research lab specializes in the development of advanced two-dimensional (2D) materials and nanostructured heterostructures for next-generation electronic and chemical sensing applications. The lab focuses on enhancing gas sensing performance through innovative material engineering, including controlled doping, noble metal functionalization, and vertical alignment of transition metal dichalcogenides like MoS₂ and black phosphorus. Key research directions include improving sensitivity, selectivity, and response kinetics for volatile organic compounds (VOCs) and toxic gases such as NO₂ and H₂, as well as enabling scalable, wearable sensing platforms using carbon nanotubes and flexible substrates. The lab also explores fundamental charge transfer mechanisms at 2D heterointerfaces to guide rational design of high-performance sensors and electronic devices.
Professor Joo-Hong Lee's research lab focuses on advancing metal halide perovskite-based optoelectronic devices, with a strong emphasis on enhancing stability, reproducibility, and performance through fundamental understanding of material interfaces, defect passivation, and processing conditions. The lab investigates critical challenges such as ion migration, halide segregation, and environmental degradation—particularly under humidity and electrical stress—while developing innovative strategies like novel ligand engineering and van der Waals contacts to mitigate device degradation. A key research direction involves the design of lead- and tin-based perovskites with improved stability and reduced toxicity for sustainable solar energy applications. The lab also explores resistive switching mechanisms in perovskite-based memristors, aiming to overcome intrinsic variability and enhance device reliability for next-generation electronics.
Professor Jihoon Wang's research lab specializes in carbon capture and storage (CCS) technologies, with a strong focus on geomechanical risk assessment, carbon mineralization in various geological formations, and the optimization of subsurface operations in carbon storage and enhanced oil recovery. The lab integrates advanced modeling techniques—such as artificial neural networks, nodal analysis, and proxy modeling—with field data and reservoir simulation to improve the safety, efficiency, and permanence of CO₂ storage. Key research directions include understanding CO₂ trapping mechanisms, predicting and mitigating operational challenges in electrical submersible pumps, and designing optimal relief wells and injection strategies in complex reservoirs.
Professor Su Jong Yu's research lab specializes in hepatocellular carcinoma (HCC) and hepatitis B virus (HBV)-related liver diseases, focusing on clinical management, prognostic factors, and therapeutic strategies. The lab investigates the impact of viral load, serum lipid profiles, and treatment response in HCC patients, with particular emphasis on high-risk populations such as those with resolved HBV infection or portal vein tumor thrombosis. Their work integrates large-scale retrospective studies and systematic appraisals of international guidelines to improve standard-of-care and identify novel prognostic markers and treatment approaches.
Professor Seyun Kim's research lab focuses on cellular signaling and metabolism, with a central emphasis on inositol phosphates, intermediate filaments, and autophagy regulation. The lab investigates the multifaceted roles of signaling molecules such as inositol pyrophosphates and IPMK in controlling cellular homeostasis, cell survival, and disease pathways. It also explores the structural and functional regulation of signaling proteins like betaPix and mTORC1, with translational applications in cancer therapy and metabolic disorders. The lab integrates biochemistry, cell biology, and computational drug discovery to uncover novel therapeutic targets.
Professor Hye Jin Yoo's research lab focuses on the pathophysiological roles of adipokines, hepatokines, and other metabolic hormones in the development of cardiovascular disease and metabolic syndrome. The lab investigates how adipose tissue and liver-derived signaling molecules—such as omentin-1, chemerin, fibroblast growth factor 21, fetuin-A, and selenoprotein P—influence arterial stiffness, endothelial dysfunction, and atherosclerosis, particularly in the context of type 2 diabetes and non-alcoholic fatty liver disease. Their work emphasizes the translational potential of these biomarkers as independent risk predictors and therapeutic targets. The lab integrates clinical epidemiology with molecular mechanisms to uncover novel pathways linking metabolic dysfunction to cardiovascular outcomes.
Professor Jaewoo Kang's research lab specializes in natural language processing and machine learning with a focus on biomedical and healthcare applications. The lab develops advanced deep learning models for tasks such as biomedical text mining, drug-drug interaction extraction, and schema matching in heterogeneous data sources. A key emphasis is on creating robust, generalizable models that can handle complex, noisy, or opaque biomedical data without relying on hand-crafted features. The lab also contributes to open science by releasing pre-trained models and code to support reproducibility and broader research impact.
Professor Junyoung Park's research lab specializes in intelligent systems and hardware-software co-design, focusing on energy-efficient computing, real-time scheduling, and embedded AI acceleration. The lab develops advanced algorithms and architectures—such as graph neural networks, reinforcement learning, and specialized processors—for optimizing performance in resource-constrained environments like mobile and edge devices. Key research directions include low-power vision systems, real-time task scheduling in multi-agent and multi-core environments, and secure, reliable compilation for emerging execution platforms like WebAssembly. The lab bridges theoretical innovation with practical implementation, targeting applications in autonomous systems, IoT, and embedded AI.
Professor Aloysius Soon's research lab specializes in computational materials science, focusing on the atomic-scale understanding of functional oxides and heterogeneous catalysts for energy and environmental applications. The lab employs first-principles density-functional theory (DFT) calculations to investigate surface chemistry, defect structures, and electronic properties of copper-based oxides, transition metal nitrides, and chalcogenides such as ZnIn2S4. Key research directions include the thermodynamic stability of low-index surfaces, native defects in cuprous oxide, and the design of single-atom catalysts on non-conventional supports like TiN. The work aims to guide the rational development of efficient catalysts for reactions such as the water-gas shift and methanol oxidation, with a strong emphasis on stoichiometry, metastability, and electronic structure control.