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 In-Bok Lee's research lab specializes in sustainable building environments and energy-efficient systems, with a focus on natural ventilation in agricultural buildings and energy management in building-integrated greenhouses. The lab employs advanced computational fluid dynamics (CFD) and dynamic energy simulation models to optimize indoor air quality, thermal comfort, and energy performance under real-world weather conditions. Research also emphasizes experimental validation using wind tunnel tests and particle image velocimetry (PIV) to ensure model accuracy and reliability. The ultimate goal is to develop intelligent, energy-smart environmental control systems for agricultural and building applications.
Professor Incheol Choi's research lab specializes in cross-cultural psychology, focusing on how cultural differences shape cognitive processes such as attribution, reasoning, and self-construal. The lab investigates the contrast between analytic (Western) and holistic (East Asian) thinking patterns, particularly in how individuals interpret behavior, manage contradictions, and form self-concepts. Key research directions include the correspondence bias, causal attribution, dialectical thinking, and the role of situational context in shaping perception and judgment across cultures.
Professor Yun-Hee Lee's research lab focuses on the cellular and molecular mechanisms underlying adipose tissue plasticity, with a particular emphasis on brown and white adipocyte differentiation, macrophage-adipocyte crosstalk, and metabolic regulation. The lab investigates how environmental cues such as cold stress and bioactive compounds like EGCG influence adipogenesis, autophagy, and mitochondrial function in adipose tissues. Key areas of interest include the role of microRNAs, Beclin1 in lipid and mitochondrial homeostasis, and the impact of environmental toxins like benzalkonium chloride on metabolic and lung epithelial cells. The lab aims to uncover novel therapeutic targets for metabolic diseases such as obesity and insulin resistance.
Professor Jun Yong Park's research lab specializes in hepatology and viral hepatitis, with a strong focus on chronic hepatitis B (CHB) and hepatocellular carcinoma (HCC). The lab investigates host-virus interactions, non-invasive fibrosis assessment using elastography, and the dynamic virological and serological responses to antiviral therapy. Key research directions include optimizing treatment strategies through biomarkers such as quantitative HBsAg and HBeAg, and evaluating innovative locoregional therapies like hepatic arterial infusion chemotherapy (HAIC) for advanced HCC.
Professor Chi Young Shim's research lab focuses on cardiovascular pathophysiology, particularly the mechanisms underlying heart failure with preserved ejection fraction (HFpEF) and atherosclerotic cardiovascular disease. The lab investigates hemodynamic responses during exercise, such as exercise-induced pulmonary hypertension and left ventricular filling pressure dynamics, to identify prognostic markers and pathophysiological pathways. It also explores molecular mechanisms involving receptors like RAGE and platelet-endothelial interactions in vascular inflammation and early atherosclerosis. Recent work includes clinical trials evaluating cardioprotective effects of SGLT2 inhibitors like dapagliflozin on left ventricular diastolic function in diabetic patients.
Professor Myeongkyu Lee's research lab specializes in advanced optical materials and nanofabrication, focusing on tunable structural colors, plasmonic color printing, and laser-induced nanostructuring for applications in photonics, energy conversion, and thermal management. The lab develops scalable, lithography-free techniques—such as laser printing and pulsed laser irradiation—to engineer functional surfaces with precise control over optical and thermal properties. Key research directions include designing metal–insulator–metal (MIM) cavities for vibrant, non-fading colors and creating phase-change materials for dynamic thermal emission control. The lab also applies X-ray diffraction and materials characterization to understand and optimize nanostructured materials for solar cells and other optoelectronic devices.
Professor Seokhwan Hwang's research lab specializes in molecular microbial ecology and environmental biotechnology, focusing on the detection, quantification, and characterization of key microbial communities in anaerobic processes. The lab employs advanced molecular techniques such as TaqMan quantitative real-time PCR to study methanogens and ammonia-oxidizing bacteria at various taxonomic levels, particularly in waste treatment systems. Their work emphasizes the development of group-specific primer and probe sets for precise monitoring of microbial populations in environmental and engineered systems, including anaerobic digesters and swine wastewater treatment reactors. The lab’s research contributes significantly to understanding microbial community dynamics and improving the efficiency of biological wastewater and waste treatment processes.
Professor Seoung Bum Kim's research lab specializes in advanced data analytics and machine learning applications in health sciences, chemistry, and pharmaceutical innovation. The lab focuses on developing statistical and computational methods for feature selection, multivariate process monitoring, and intelligent molecular design. Key research directions include the integration of nonparametric statistical techniques like the bootstrap with multivariate control charts, the application of association rule mining and network analysis to traditional medical texts, and the use of deep generative models—particularly generative adversarial networks with reinforcement learning—for de novo drug design. The lab also works on grounding heuristic methods like the Mahalanobis-Taguchi System in rigorous statistical theory to enhance their reliability and interpretability.
Professor Kyu-Sung Lee's research lab specializes in urological disorders, with a focus on lower urinary tract symptoms, including overactive bladder (OAB), underactive bladder (DUA), and stress urinary incontinence. The lab investigates innovative surgical and medical therapies, such as mid-urethral slings and combination pharmacotherapies, while also pioneering bio-integrated electronic systems that mimic the dynamic behavior of the urinary bladder. Their work bridges clinical urology with advanced biomedical engineering, particularly in developing implantable, conformal electronic devices for real-time bladder monitoring and functional restoration.
Professor Gee Young Suh's research lab specializes in molecular and cellular mechanisms underlying inflammatory responses, with a particular focus on the regulation of cyclooxygenase-2 (COX-2) and the anti-inflammatory effects of carbon monoxide (CO). The lab investigates how endogenous and exogenous CO modulate immune cell signaling, especially in macrophages, using in vitro models such as RAW 264.7 cells. Key research directions include the signaling pathways involved in LPS-induced COX-2 expression and the role of heme oxygenase-1 (HO-1) in mediating protective responses against inflammation. The lab also explores the therapeutic potential of CO-releasing molecules in inflammatory diseases.
Professor Dongho Choi's research lab specializes in biomedical and civil engineering applications, focusing on cancer biology in transplant recipients and the structural performance of innovative infrastructure systems. The lab investigates cancer incidence and survival patterns in solid organ transplant populations, particularly in East Asia, while also exploring the dynamic behavior and optimal design of submerged floating tunnels under extreme environmental loads. Research spans from molecular markers in colorectal cancer to biomechanical modeling of suspension bridges and embryonic stem cell differentiation. The lab integrates clinical epidemiology with advanced structural and biological modeling to address critical challenges in healthcare and civil infrastructure.
Professor Weon-Sun Shin's research lab focuses on sustainable food science and plant-based protein innovation, with a strong emphasis on valorizing food by-products such as legume cooking water and soybean by-products. The lab explores the structural modification and functional enhancement of plant proteins through physical methods like ultrasonication, aiming to develop alternative ingredients for plant-based foods. A key research direction involves the development of functional food powders and egg white substitutes from agricultural waste streams, while also investigating the biofortification of animal products with beneficial nutraceuticals like carotenoids. The lab integrates food chemistry, physicochemical characterization, and application-driven research to support clean-label and sustainable food systems.
Professor Tuan Tu Le's research lab specializes in the design and development of advanced wearable and compact antennas for wireless communication systems, with a strong focus on body-centric applications. The lab's main research directions include dual- and multi-band antennas, circularly polarized (CP) antennas using metasurfaces, and high-efficiency, low-SAR wearable radiators for medical, IoT, and military applications. Innovative techniques such as inductive meander lines, slit loading, and non-uniform metasurfaces are employed to achieve miniaturization, wide bandwidth, and enhanced radiation performance.
Professor Jae-Hoon Baek's research lab specializes in the design and synthesis of advanced nanomaterials for sustainable energy applications, with a strong focus on electrocatalysis and energy storage. The lab develops innovative catalysts—particularly based on non-noble and transition metal systems such as ruthenium, nickel, and antimony—for efficient hydrogen evolution and oxygen evolution reactions in water electrolysis. A key research direction involves engineering metal-support interactions at the atomic level to enhance catalytic activity, stability, and scalability. The lab also pioneers safe, scalable synthesis methods for functional carbon materials, including fluorinated carbons and porous organic frameworks, for use in batteries and electrochemical devices.
Professor Jae Kyu Song's research lab specializes in the design and development of advanced nanomaterials for sustainable energy applications, with a primary focus on photocatalysis and photoelectrochemistry. The lab explores innovative heterostructured semiconductors, such as Z-scheme systems and core-shell architectures, to enhance charge separation and improve efficiency in solar energy conversion. Key research directions include photocatalytic degradation of pollutants, hydrogen production via water splitting, and novel light-emitting phenomena in nanomaterials. The lab emphasizes rational material engineering using techniques like pulsed-laser ablation and hydrothermal synthesis to create high-performance, noble-metal-free photocatalysts.
Professor Joo Sung Kim's research lab focuses on gastrointestinal inflammation, infectious diseases, and the molecular mechanisms underlying inflammatory bowel disease (IBD) and Helicobacter pylori-related disorders. The lab investigates key signaling pathways such as NF-κB and cytokine regulation in intestinal epithelial cells, exploring how natural compounds like luteolin and drugs like metformin modulate these pathways to exert anti-inflammatory and anti-tumorigenic effects. A major emphasis is placed on understanding the interplay between host immunity, chronic inflammation, and cancer development in the gastrointestinal tract, particularly in colorectal and gastric cancers. The lab also examines epidemiological and genetic factors, including cytokine polymorphisms and H. pylori seroprevalence, to identify risk markers and therapeutic targets.
Professor Jee-Hwan Kim's research lab specializes in oral and maxillofacial surgery, with a strong focus on dental implantology, 3D printing applications in dentistry, and the biological mechanisms underlying bone metabolism and periodontal disease. The lab investigates clinical and biological factors affecting surgical outcomes, including anatomical variations in the maxillary sinus, prosthetic materials' durability, and the genetic and metabolic underpinnings of conditions like bisphosphonate-related osteonecrosis of the jaw (BRONJ). Recent work also explores the impact of systemic factors such as obesity on periodontitis and the precision of additive manufacturing in dental modeling.
Professor Sangsig Kim's research lab specializes in advanced semiconductor materials and novel memory device technologies, with a focus on wide-bandgap semiconductors like GaN and oxide-based resistive switching memories. The lab investigates the fundamental electronic and optical properties of epitaxial III-nitride semiconductors under extreme conditions, such as high hydrostatic pressure, to understand carrier dynamics and defect-related emissions. It also develops flexible and silicon-compatible quasi-nonvolatile memory devices with high performance, endurance, and scalability for next-generation computing systems. The lab's work bridges materials science, device physics, and integrated circuit applications, aiming to overcome bottlenecks in memory hierarchy and energy efficiency.
Professor Sung You Hong's research lab specializes in advanced energy storage materials and flexible electronic systems, with a strong focus on next-generation batteries and wearable sensors. The lab explores sustainable and high-performance electrode materials for sodium- and lithium-ion batteries, including organic catholytes, metal-organic frameworks, and nanostructured anodes. A key direction involves designing functional nanomaterials—such as fullerene-like nanoparticles and graphene-metal nanowire hybrids—for transparent, stretchable, and highly conductive electronics. The lab also emphasizes molecular-level engineering of electrolyte additives and interfacial layers to enhance battery stability and performance under mechanical stress.
Professor Jongnam Park's research lab specializes in the controlled synthesis and characterization of monodisperse nanomaterials, with a focus on magnetic and semiconducting nanocrystals. The lab develops advanced chemical methods—such as seed-mediated growth and continuous injection of metal-organometallic precursors—to achieve precise size and shape control over nanomaterials like iron oxide, iron phosphide, and transition metal phosphides. Their work emphasizes the fundamental understanding of nucleation and growth mechanisms to produce uniform nanocrystals with tailored magnetic and optical properties. The lab also integrates advanced characterization techniques, including transmission electron microscopy and magnetic measurements, to correlate structure with functionality.