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 Young-Woong Suh's research lab specializes in the development of advanced catalysts for sustainable energy applications, with a primary focus on liquid organic hydrogen carriers (LOHCs) and biofuel production. The lab investigates transition-metal and noble metal catalysts for hydrogenation and dehydrogenation reactions, emphasizing catalyst design for improved activity, selectivity, and stability. Key research directions include the optimization of support materials—such as mesoporous oxides and carbon-coated aluminas—and the engineering of nanoparticle morphology and surface properties to enhance performance in hydrogen storage and hydrodeoxygenation processes.
Professor Pahn-Shick Chang's research lab specializes in enzymatic biocatalysis and carbohydrate chemistry, focusing on the modification of polysaccharides and lipids using selective enzymes and oxidation techniques. The lab investigates novel applications of lipases in non-aqueous and microemulsion systems for sustainable synthesis of structured lipids, while also exploring the development of functional food materials through nanotechnology and enzyme immobilization. A key research direction involves the structural and functional characterization of plant-derived proteases with industrial potential, particularly those exhibiting high stability and activity.
Professor Bahareh Oryani's research lab focuses on sustainable development, with a strong emphasis on energy systems, environmental economics, and industrial policy. Her work explores the integration of waste-to-energy technologies, renewable energy transitions, and energy efficiency standards within the framework of circular economy and climate change mitigation. The lab employs advanced econometric models—such as ARDL, SVAR, and SUR—to analyze the interplay between economic growth, energy consumption, environmental degradation, and industrial competitiveness, particularly in developing economies like Iran. The research also examines macroeconomic and institutional drivers of environmental performance, including globalization, financial development, and energy standards.
Professor Sung Kyu Ha's research lab specializes in advanced materials and structural mechanics, with a focus on smart composite materials, sustainable biomaterials, and biomechanical systems for energy and healthcare applications. The lab develops innovative finite element modeling and micromechanical analysis techniques to predict the behavior and failure of fiber-reinforced composites, piezoelectric actuators, and spinal implants. It also explores environmentally friendly alternatives to plastics through biodegradable polymeric materials and advances hydrogen storage technologies for clean energy vehicles using lightweight composite pressure vessels. The integration of computational modeling with experimental validation underpins the lab’s multidisciplinary approach to solving real-world engineering challenges.
Professor Rahim Shahrokhi's research lab specializes in sustainable geotechnical engineering and environmental soil remediation, focusing on innovative biological and chemical techniques to enhance soil properties and mitigate environmental contaminants. Key research directions include microbial-induced carbonate precipitation for soil stabilization and the development of advanced adsorbent materials for the removal of persistent pollutants like PFAS from contaminated soils. The lab integrates principles of soil mechanics, environmental chemistry, and materials science to design eco-friendly solutions for infrastructure resilience and environmental protection. Recent work emphasizes optimizing injection protocols for bioclogging and engineering novel clay-polymer composites for high-efficiency contaminant capture.
Professor Ki Wan Bong's research lab specializes in the design and fabrication of advanced micro- and nanomaterials for biomedical diagnostics and sensing. The lab focuses on developing innovative microfluidic platforms, such as hydrogel-based signal amplification systems and novel lithographic techniques like Lock Release Lithography and hydrodynamic focusing lithography, to enable high-throughput, multiplexed detection of biomolecules. Key research directions include the creation of functional microparticles with tailored morphologies, spatially controlled chemistries, and magnetic properties for applications in point-of-care diagnostics, nucleic acid sensing, and multiplexed immunoassays.
Professor JongRoul Woo's research lab focuses on consumer behavior, energy policy, and information privacy in the context of emerging technologies and societal challenges. The lab investigates how socio-demographic factors and media channels influence consumer decision-making, particularly in high-stakes domains like energy infrastructure and personal data protection. Using advanced econometric models such as multivariate probit, contingent valuation, and discrete choice experiments, the lab examines public acceptance of nuclear and renewable energy, as well as the economic value individuals place on sensitive personal information. The research aims to inform evidence-based policy and regulatory frameworks in South Korea and beyond.
Professor Aram J. Chung's research lab specializes in microfluidics, intracellular delivery, and label-free biosensing, with a focus on developing high-throughput, low-cytotoxicity platforms for biomedical applications. The lab pioneers inertial focusing techniques in microchannels to enable single-stream particle and cell focusing without sheath fluids, advancing applications in cytometry and single-cell analysis. It also develops innovative methods for intracellular delivery of biomolecules and nanomaterials using inertial flows, aiming to overcome limitations of traditional transfection methods in primary cells. Additionally, the lab creates flexible, large-area SERS substrates for sensitive, multiplexed molecular detection.
Professor Youngmin You's research lab specializes in the design and synthesis of luminescent iridium(III) complexes for applications in optoelectronics, sensing, and sustainable synthesis. The lab focuses on developing phosphorescent materials with tunable emission colors, high quantum yields, and selective responsiveness to metal ions, particularly for ratiometric sensing in biological and environmental systems. A key research direction involves understanding and manipulating energy transfer processes in cyclometalated Ir(III) complexes to enhance photophysical properties and enable novel functionalities. Additionally, the lab pioneers mild, visible-light-driven photocatalytic methods for synthesizing valuable fluorinated organic compounds, emphasizing atom-economical and environmentally friendly transformations.
Professor Siyoung Lee's research lab specializes in the development of flexible, wearable, and skin-attachable electronic sensors for real-time physiological and environmental monitoring. The lab focuses on advancing next-generation wearable devices with high sensitivity, broad frequency response, and excellent conformality for applications in voice recognition, auditory sensing, and volatile organic compound (VOC) detection. Key innovations include ultrathin polymer-based diaphragms, electret-powered capacitive sensors, and triboelectric nanogenerators for sustainable energy harvesting.
Professor Dong Rip Kim's research lab specializes in the development of advanced nanomaterials and micro/nanofluidic systems for biomedical and energy applications. Key research directions include silicon-based nanowire and microneedle technologies for targeted drug delivery, biosensing, and sustainable energy conversion—particularly using microbial systems for methanol production from greenhouse gases. The lab integrates materials science, microfluidics, and biointerfaces to create smart, biocompatible, and stimuli-responsive devices with applications in ophthalmology, oncology, and environmental sustainability.
Professor Jaegeon Ryu's research lab specializes in the development of advanced silicon-based nanomaterials for next-generation energy storage applications, with a primary focus on lithium-ion batteries. The lab pioneers scalable and cost-effective synthesis methods—particularly using natural clays—to produce high-performance silicon nanosheets and hyperporous silicon structures with enhanced structural stability and electrochemical performance. Key research directions include nanostructure engineering, interface stabilization through carbon coating, and controlling volume expansion during lithiation/delithiation to enable durable and high-capacity anodes. The lab also explores the application of these materials in sustainable and high-energy-density battery systems for electric vehicles and grid storage.
Dae Sik Jang 교수의 연구실은 주로 식물에서 유래한 천연물 화합물을 대상으로, 당뇨병 합병증 예방을 위한 신약 개발을 목표로 하고 있습니다. 특히 고분자형 당화종말산물질(AGEs) 형성 억제 및 알도스 환원효소(RLAR) 억제 작용을 가진 생활화학적 활성 화합물을 체계적으로 도출하고 있으며, 이는 당뇨병 관련 신경병증, 망막병변 등의 예방에 기여할 수 있습니다. 또한, 간세포에서의 항산화 효소 유도 활성(예: 쿠이논 환원효소)을 기반으로 한 생물학적 스크리닝을 통해 기능성 화합물의 발견에 주력하고 있습니다.
Professor Bok Jik Lee's research lab specializes in advanced fluid dynamics, energy conversion systems, and sustainable materials, with a strong focus on multiphase flows, combustion processes, and thermal energy storage. The lab develops innovative numerical methods—such as improved immersed boundary techniques and interface-tracking algorithms—for simulating complex flow behaviors in engineering systems. Key research directions include MILD combustion of alternative fuels (e.g., ammonia-hydrogen mixtures), self-cleaning and superhydrophobic surfaces for industrial applications, and phase change materials for efficient thermal energy storage. The lab also investigates practical challenges in aerospace icing and anticoagulation monitoring, demonstrating a multidisciplinary approach to energy, environment, and biomedical engineering.
Professor Jiseon Ahn's research lab specializes in tourism and hospitality management, with a strong focus on customer behavior, brand loyalty, and experiential value creation in service contexts. The lab investigates how psychological, emotional, and cognitive factors influence customer attitudes and intentions, particularly in integrated resorts, green hotels, and cruise environments. Key research directions include the role of perceived value, brand experiences, corporate social responsibility, and impulsive consumption behaviors. The lab employs advanced quantitative methods such as PLS-SEM and structural equation modeling to explore complex behavioral mechanisms in tourism and hospitality settings.
Professor Jongwook Park's research lab specializes in the design, synthesis, and application of novel organic semiconductors for optoelectronic devices, with a primary focus on high-performance blue organic light-emitting diodes (OLEDs). The lab develops advanced emitter materials featuring tailored molecular architectures—such as anthracene, pyrene, and indenopyrazine cores—engineered for enhanced thermal stability, high photoluminescence quantum yield, and narrow emission bandwidths. Key research directions include molecular engineering of dendritic and dual-core architectures to improve device efficiency, color purity, and operational stability in non-doped and doped OLED configurations.
Professor Yongwoo Jang's research lab focuses on the development of bio-integrated smart systems and implantable electronic devices, with a strong emphasis on nanomaterials and their applications in biomedicine. The lab explores the intersection of nanotechnology, neuroscience, and bioelectronics, particularly in designing flexible, stretchable, and biocompatible devices for in vivo energy storage and neural modulation. Key research directions include carbon nanotube-based supercapacitors for implantable systems, ion channel mechanisms in neurological disorders such as bipolar disorder and hereditary neuropathies, and the development of advanced biosensors for monitoring physiological functions like gastric motility. The lab also investigates redox biomolecules and their integration into next-generation bioelectronic systems.
Professor Ja Hun Kwak's research lab specializes in the design and characterization of heterogeneous catalysts, with a strong focus on understanding the atomic-level interactions between metal species and oxide supports. The lab investigates the structural and electronic properties of single-atom and nanoparticulate catalysts on metal oxides such as alumina and zeolites, using advanced spectroscopic and microscopic techniques like solid-state NMR, STEM, and FTIR. Key research directions include the stabilization of atomically dispersed metals, the role of metal-support interactions in catalytic activity, and the mechanistic understanding of reactions such as CO2 reduction and NOx conversion. The lab also explores the structural evolution of oxide supports under thermal treatment, aiming to enhance catalyst stability and performance.
Professor Jaerim Kim's research lab specializes in the design and fabrication of advanced nanomaterials for sustainable energy applications, with a primary focus on electrocatalysis and photoelectrochemical water splitting. The lab investigates fundamental mechanisms governing hydrogen evolution reaction (HER) kinetics and bubble dynamics on nanostructured catalysts, particularly nickel-based systems, to enhance alkaline water electrolysis efficiency. Additionally, the lab develops innovative microfluidic platforms to model vascular biology, integrating cell interactions in perfusable microvessels for biomedical applications. Their work bridges materials science, energy conversion, and bioengineering through rational nanostructure engineering.
Professor Jong-In Hong's research lab specializes in the design and synthesis of functional molecular receptors and fluorescent probes for selective recognition of biologically and environmentally relevant anions, particularly pyrophosphate (PPi) and fluoride ions. The lab focuses on developing smart sensing materials—especially fluorescent and colorimetric probes—with high selectivity, sensitivity, and biocompatibility for applications in cellular imaging and medical diagnostics. A key research direction involves the integration of molecular recognition with optical signaling, often through tailored receptor architectures combining Lewis acidic/basic sites or conjugated fluorophores with tailored electronic properties. The lab also explores advanced materials such as dye-doped silica nanoparticles and novel organic semiconductors for optoelectronic and bioanalytical applications.