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 Jin-Ha Yoon's research lab focuses on occupational and environmental health, with a strong emphasis on the psychological and physiological impacts of workplace stressors and hazardous exposures. Key research directions include the associations between occupational noise, gender discrimination, and crystalline silica exposure with mental health outcomes such as depression and suicidal ideation, as well as the links between poor lung function and kidney or cardiovascular damage. The lab employs large-scale epidemiological studies and systematic reviews to investigate the long-term health effects of occupational hazards, particularly in Asian populations.
Professor Changsik Song's research lab specializes in advanced materials chemistry, with a focus on sustainable polymer design, energy storage materials, and functional molecular systems. The lab develops biomass-derived and recyclable polymers, including network polyurethanes with dynamic covalent bonds for self-healing and shape-memory applications, and designs high-performance polymer electrolytes for next-generation lithium-ion batteries. Additionally, the lab investigates electron spin systems and dynamic nuclear polarization for enhanced NMR techniques, as well as functional organic materials such as emissive π-dimers and conductive hydrogels for optoelectronic and sensing applications.
Professor Kyung-Hoon Shin's research lab specializes in atmospheric chemistry and environmental science, focusing on the role of biogenic emissions—particularly marine-derived dimethyl sulfide (DMS)—in aerosol formation and their impacts on Arctic air quality and climate. The lab investigates the complex interactions between marine ecosystems, atmospheric chemistry, and aerosol microphysics, especially during seasonal transitions such as phytoplankton blooms. Using long-term, concurrent measurements of atmospheric gases, aerosol size distributions, and chemical composition, the lab aims to quantify the contribution of biogenic sulfur to secondary aerosol formation in polar regions. Their work contributes to improving climate models by better understanding the feedback mechanisms between oceanic biological activity and atmospheric particle formation in the Arctic.
Professor Junsuk Kang's research lab specializes in sustainable urban infrastructure and environmental thermal comfort, focusing on innovative civil engineering solutions for urban heat mitigation and structural performance of buried utilities. The lab investigates advanced methods such as imperfect trench installation for reducing earth pressure on underground structures, optimizes green infrastructure like rooftop gardens and fog cooling systems for urban cooling, and applies computational modeling and AI-driven simulations to enhance thermal comfort and energy efficiency in urban environments. The research integrates structural mechanics, environmental fluid dynamics, and smart urban design to address challenges posed by urbanization and climate change.
Professor Jong Min Yuk's research lab specializes in advanced electron microscopy techniques, particularly graphene liquid cell transmission electron microscopy (GLC-TEM), to investigate dynamic nanoscale processes in liquids with atomic resolution. The lab focuses on understanding fundamental mechanisms in nanomaterial synthesis, growth, and transformation—such as colloidal nanoparticle coalescence, oriented attachment, and structural evolution—under realistic liquid environments. Their work also extends to energy materials, including silicon anodes for lithium-ion batteries and vanadium-based NASICON cathodes for sodium-ion batteries, aiming to design high-performance materials through in situ observation. The lab pioneers innovative methods for creating artificial 2D heterostructures using graphene-based 'veil' and 'sandwich' architectures, enabling tailored functionalities in nanomaterials.
Professor Joona Bang's research lab specializes in the design and fabrication of advanced functional materials through controlled self-assembly of block copolymers and stimuli-responsive polymers. The lab focuses on developing nanostructured thin films, nanoporous arrays, and patterned surfaces with precise control over morphology, surface interactions, and hierarchical organization. Key research directions include block copolymer lithography, solvent- and humidity-assisted self-assembly, and the integration of 'bottom-up' self-assembly with 'top-down' photolithographic techniques for high-resolution patterning. The lab also explores applications in sustainable water treatment, optoelectronics, and advanced displays through tailored nanomaterials and crosslinking strategies.
나라시므하라오 킷사무세티 교수의 연구실은 주로 나노소재를 활용한 에너지 및 환경 응용 분야에 중점을 두고 있습니다. 광학적 및 전기화학적 특성을 가진 산화물 나노소재(예: NiO, MTO, CTO, TiO₂)를 합성하고, 이들을 광분해 촉매, 초충전기, 리이on 이차전지 등에 응용하는 연구를 진행하고 있습니다. 특히 나노형상 제어와 다공성 구조 설계를 통해 효율성과 안정성을 극대화하는 데 초점을 맞추고 있습니다.
Professor Byong-Guk Park's research lab specializes in spintronics, focusing on spin-orbit torque phenomena, spin Hall effects, and spin-based logic and memory devices in semiconductor and magnetic heterostructures. The lab explores fundamental spintronic mechanisms such as charge-to-spin conversion, interfacial spin currents, and spin pumping to enable energy-efficient, high-speed nanoelectronic devices. Recent work emphasizes the design of all-semiconductor spintronic transistors, magnetic tunnel junctions with tailored interfaces, and spin thermopiles for energy harvesting. The lab bridges quantum materials physics with practical device applications, particularly in next-generation computing and spin-based electronics.
Professor Yun Jung Lee's research lab specializes in the design and synthesis of advanced nanomaterials for next-generation energy storage devices, with a focus on lithium-ion batteries and electrochemical energy conversion. The lab leverages bio-inspired and biomimetic strategies—particularly using genetically engineered viruses as nanoscale templates—to create nanostructured materials with enhanced ion and electron transport, high power density, and improved stability. Key research directions include the development of flexible and high-performance battery components, such as conductive nanowires, amorphous and heterostructured cathode materials, and novel catalysts for oxygen reduction reactions.
Professor Jeon-Soo Shin's research lab focuses on the molecular mechanisms underlying the unconventional secretion and extracellular release of damage-associated molecular patterns (DAMPs), particularly HMGB1, in innate immune responses and sterile inflammation. The lab investigates post-translational modifications—such as oxidation, acetylation, and phosphorylation—of HMGB1 that regulate its translocation and secretion, as well as its role in amplifying inflammation through interactions with pathogen-associated molecular patterns (PAMPs), complement system activation, and immune cell signaling. The research also explores the involvement of autophagy machinery and vesicular trafficking in non-classical protein secretion pathways.
Professor Beakcheol Jang's research lab specializes in wireless networking, machine learning, and intelligent data processing, with a focus on developing energy-efficient communication protocols, advanced indoor positioning systems, and deep learning-based text and signal classification techniques. The lab explores practical applications of reinforcement learning, such as Q-learning optimization, and leverages neural networks—including CNNs and LSTMs—for natural language processing and big data analytics. A key research direction involves enhancing the accuracy and efficiency of wireless systems, particularly in challenging environments like indoor spaces and sensor networks.
Professor Yong-Hee Kim's research lab specializes in the development of advanced drug delivery systems for treating metabolic disorders, cancer, and inflammatory diseases. The lab focuses on designing smart, biocompatible nanocarriers—such as peptide-based polyplexes, microneedle patches, and hybrid nanoparticles—that enable targeted, efficient, and stimuli-responsive delivery of therapeutic agents. Key research directions include gene delivery using self-assembled oligopeptoplexes, targeted delivery of HO-1 modulators to adipose tissue and leukemia microenvironments, and the application of 3D-printed microneedles for precise transcutaneous drug administration. The lab integrates principles of biomaterials, molecular targeting, and nanomedicine to overcome biological barriers and improve therapeutic outcomes.
Professor Moo Whan Shin's research lab specializes in advanced semiconductor devices and energy storage systems, with a strong focus on gallium nitride (GaN)-based high-power electronics and lithium-air batteries. The lab investigates microwave GaN HEMTs for high-power and high-temperature applications, leveraging advanced simulation and characterization techniques to optimize device performance. In parallel, the lab explores novel nanomaterials for energy conversion and storage, particularly cobalt-based porous carbon composites for efficient air cathodes in lithium-air batteries. The integration of materials engineering with device physics enables the development of next-generation electronic and electrochemical systems.
이 교수의 연구실은 식물의 대사 조절, 특히 항산화 물질인 플라보노이드, 이소플라보노이드, 폴리페놀 등 2차 대사산물의 생합성과 조절 메커니즘을 중심으로 연구를 진행하고 있습니다. 빛 조건, 유전자 변형, 환경 스트레스 등이 식물의 색소 형성과 생리적 기능에 미치는 영향을 분석하며, 식품 및 화장품 산업에 활용 가능한 기능성 식물 자원의 개발을 목표로 하고 있습니다. 특히 콩, 사질초, 사과, 편백나무 등 다양한 식물에서 대사체 분석과 유전자 발현 분석을 융합한 연구를 수행하고 있습니다.
Professor Sung Soo Ahn's research lab specializes in diagnostic and prognostic radiology, with a focus on advanced medical imaging techniques for accurate tumor characterization and personalized treatment planning. The lab investigates the application of dynamic contrast-enhanced MRI, radiomics, and machine learning to improve the diagnosis and prognosis of glioblastoma and hepatocellular carcinoma. A key emphasis is placed on integrating molecular biomarkers—such as MGMT methylation status and genetic alterations in gliomas—into radiological interpretation to support precision oncology.
Professor Dong Kun Lee's research lab focuses on environmental and public health issues in urban settings, with a strong emphasis on urban green infrastructure, forest fire risk assessment, and the socio-ecological impacts of urbanization. The lab investigates the role of urban trees and green spaces in mitigating environmental stressors such as stormwater runoff, urban heat, and air quality degradation, while also examining mental health outcomes linked to urban living conditions. Additionally, the lab applies advanced geospatial technologies and machine learning to model environmental hazards, such as forest fire susceptibility, in ecologically sensitive regions like Gangwon-do, Korea. Their interdisciplinary work bridges environmental science, urban planning, and public health to develop data-driven solutions for sustainable urban development.
Professor Jinsung Park's research lab specializes in interdisciplinary studies at the intersection of nanoscale characterization, molecular interactions, and nonlinear dynamics. The lab focuses on developing advanced scanning probe microscopy techniques—particularly Kelvin probe force microscopy (KPFM)—to investigate surface potential and electronic properties at the single-molecule and nanomaterial level. Key research directions include the detection of biomolecular interactions with high sensitivity, the analysis of charge states in doped nanomaterials such as polyaniline, and the experimental observation of complex spatiotemporal patterns in reaction-diffusion systems, including spiral waves mediated by line defects. The lab also contributes to theoretical mathematical physics, particularly in spectral invariants and adiabatic limits of differential operators.
Professor Je-Yoel Cho's research lab specializes in translational glycobiology and regenerative medicine, focusing on the role of glycoproteins and glycosylation modifications in cancer biomarker discovery and therapeutic development. The lab investigates disease-associated glycoproteins—particularly fucosylated and N-glycosylated forms—in serum from cancer patients, aiming to identify novel diagnostic and prognostic markers. Additionally, the lab develops advanced cell-based and nanotechnology-driven therapeutic strategies, including CAR-T cell engineering and injectable microgel systems for vascular regeneration, integrating stem/progenitor cells with growth factors for tissue repair. Their work bridges glycobiology, molecular oncology, and biomedical engineering to advance precision medicine.
Professor Soon-Il An's research lab specializes in tropical climate dynamics, with a primary focus on the El Niño–Southern Oscillation (ENSO) phenomenon. The lab investigates the nonlinear behavior, feedback mechanisms, and interdecadal variability of ENSO using theoretical modeling, observational analysis, and ocean-atmosphere coupling dynamics. Key research directions include the role of thermocline and zonal advective feedbacks, the impact of tropical instability waves on ENSO, and the mechanisms behind ENSO's frequency and amplitude changes over time.
이 교수의 연구실은 관상동맥 질환의 병태생리학적 기전을 밝히고자, 특히 혈전 형성과 혈관 내 플라크의 생체내 동역학을 분석하는 데 초점을 맞추고 있습니다. 옴니티카라프트 오르가닉스토리오(Oct)를 활용한 관상동맥 플라크의 정밀 분석과 헤파린 유도 혈소판 감소증(HIT) 등 항응고 치료와 관련된 혈전성 합병증에 대한 기전 연구를 진행하고 있습니다. 특히 혈전 용해제의 효능과 항응고제의 작용 메커니즘을 동물 모델을 통해 평가하는 기초 임상 연구를 중심으로 하고 있습니다.