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 Geun Young Yeom's research lab specializes in advanced nanomaterials and atomic-scale processing techniques for next-generation semiconductor and energy devices. The lab focuses on atomic layer etching (ALE), transition metal dichalcogenides (e.g., MoS₂), and 2D materials such as graphene, with applications in high-performance electronics and renewable energy. Key research directions include precise thickness control of 2D materials, plasma-based doping and surface engineering, and the development of novel electrode materials for dye-sensitized solar cells. The lab emphasizes low-damage, high-precision fabrication processes for sub-10 nm device integration.
Professor Changgu Lee's research lab specializes in the mechanical, tribological, and electronic properties of two-dimensional (2D) nanomaterials, with a focus on graphene, transition metal dichalcogenides (e.g., MoS₂), and hexagonal boron nitride. The lab employs advanced nanomechanical techniques such as atomic force microscopy (AFM) to probe intrinsic elasticity, strength, and friction at the atomic scale, while also developing flexible 2D semiconductor devices for sensing and electronics applications. Their work bridges fundamental nanomechanics with practical device integration, particularly on flexible substrates.
Professor Kyung-Suk Cho's research lab specializes in environmental biotechnology, focusing on microbial processes for wastewater treatment and environmental remediation. Key research directions include the isolation and characterization of novel microorganisms—such as Stenotrophomonas maltophilia and white-rot fungi—for the degradation of hazardous pollutants like BTEX, dyes, and organic waste. The lab investigates microbial metabolism in applications ranging from denitrification and microbial fuel cells to mycoremediation, emphasizing the role of functional genes and microbial communities in enhancing treatment efficiency. Their work integrates microbiology, molecular biology, and bioprocess engineering to develop sustainable solutions for industrial and municipal wastewater challenges.
Professor Jeong Hun Kim's research lab focuses on understanding and targeting the blood-retinal barrier (BRB) and neurovascular unit dysfunction in retinal diseases, particularly diabetic retinopathy and age-related macular degeneration. The lab investigates molecular mechanisms underlying vascular inflammation, endothelial permeability, and barrier breakdown, with a strong emphasis on signaling pathways such as STAT3 and RAS/VEGF. Utilizing advanced models including organotypic eye-on-a-chip systems and in vivo studies, the lab explores nanomaterial-based drug delivery and cytoprotective strategies to preserve retinal barrier integrity and function.
Professor Jonghwa Shin's research lab specializes in the design and fabrication of advanced nanomaterials and metamaterials for energy and photonic applications. The lab focuses on broadband and isotropic metamaterials, plasmonic nanostructures for enhanced light-matter interactions, and functional nanohybrids for sustainable energy conversion. Key research directions include radiative cooling with tailored optical properties, surface-enhanced Raman scattering (SERS) via precisely engineered nanoparticle arrays, and plasmonically active systems for artificial photosynthesis and photocatalysis.
Professor Sarah S. Park's research lab specializes in the design, synthesis, and functional characterization of metal-organic frameworks (MOFs) with tailored electronic, ionic, and transport properties. The lab focuses on creating conductive and porous MOFs for applications in energy storage, solid-state ionics, and electrochemical sensing, with a particular emphasis on understanding structure-function relationships at the molecular level. Key research directions include the development of single-ion conductors, proton conductors with distinct transport pathways, and redox-active MOFs for supercapacitor applications.
Professor SangUk Han's research lab specializes in intelligent construction technologies, focusing on leveraging advanced sensing, computer vision, and deep learning to enhance safety, productivity, and quality in the construction industry. The lab develops innovative, cost-effective solutions—such as RGB-D sensors and 3D point cloud reconstruction—for real-time worker behavior monitoring, unsafe action detection, and off-site quality inspection in modular construction. By integrating GIS, BIM, and data-driven analytics, the lab also addresses sustainable infrastructure planning, including photovoltaic plant site selection. The research emphasizes practical implementation of AI and sensor-based systems to proactively prevent accidents and improve project performance.
Professor Byeongmoon Jeong's research lab specializes in the design and development of thermoresponsive, biodegradable block copolymers for advanced biomedical applications. The lab focuses on understanding the structure-property relationships of poly(ethylene glycol)-based triblock copolymers, particularly PEG-PLGA-PEG, to engineer injectable in situ gelling systems that transition from sol to gel at physiological temperatures. Key research directions include controlled drug delivery, sustained insulin release for diabetes management, and tissue engineering applications such as cartilage repair using chondrocyte delivery. The lab combines polymer synthesis, physical characterization, and in vivo evaluation to advance smart biomaterials with tunable degradation and mechanical properties.
Professor YounJoon Jung's research lab specializes in computational materials science and molecular simulations, focusing on the fundamental properties and behaviors of advanced nanomaterials and electrolyte systems. Key research directions include understanding ion dynamics and charge transport in supercooled liquids and ionic liquids, exploring the structural and electronic properties of two-dimensional transition-metal dichalcogenides—particularly PtSe₂—with a focus on thickness-dependent metal–semiconductor transitions, and developing machine learning models for predicting solvation thermodynamics in diverse solvents. The lab integrates molecular dynamics simulations with theoretical frameworks such as dynamical facilitation and quantitative structure-property relationship (QSPR) modeling to address challenges in energy storage, 2D electronics, and molecular solvation.
Professor Junsang Doh's research lab specializes in developing advanced biomaterials and microengineered platforms to study and enhance T cell function in complex biological environments. The lab focuses on understanding how physical cues—such as nanotopography, extracellular matrix architecture, and immunological synapse structure—influence T cell migration, activation, and anti-tumor responses. By integrating microfabrication, photochemistry, and 3D tissue models, the lab creates physiologically relevant in vitro systems to evaluate cancer immunotherapies, including adoptive T cell therapy and combination strategies with photothermal therapy. Their work aims to bridge the gap between in vitro assays and clinical outcomes by mimicking the tumor microenvironment and vascular barriers that govern T cell efficacy.
Professor Min Kyung Chu's research lab specializes in headache disorders, with a focus on the epidemiology, clinical characteristics, and impact of migraine, tension-type headache (TTH), and probable medication-overuse headache (PM) in the Korean population. The lab investigates the interplay between sleep disturbances, psychiatric comorbidities, and headache severity, emphasizing patient-reported outcomes and quality of life. It also develops and validates culturally adapted assessment tools, such as the Korean version of the Headache Impact Test-6 (HIT-6), to improve clinical evaluation and management.
Professor D. Amaranatha Reddy's research lab specializes in the design and synthesis of advanced nanomaterials for sustainable energy applications, with a primary focus on solar-driven photocatalytic hydrogen production. The lab develops noble-metal-free, highly efficient, and stable photocatalysts using earth-abundant materials such as CdS, MoS₂, ZnS, and graphene-based composites. Key research directions include nanostructure engineering, defect modulation, and heterojunction formation to enhance charge separation and surface reactivity. The lab emphasizes green synthesis methods and scalable fabrication techniques to enable practical, large-scale applications in renewable energy conversion.
Professor Hyunwoo Kim's research lab specializes in the development of innovative electrochemical and radical-based methodologies for the selective and sustainable synthesis of medicinally relevant molecules. The lab focuses on the strategic incorporation of fluorinated functional groups—particularly the difluoromethyl (CF₂H) group—into complex organic frameworks to enhance drug-like properties such as metabolic stability and permeability. Central to their work is the use of electrochemistry to enable mild, selective, and sustainable transformations, including difluoromethylation, C–H amination, and heterocycle formation, often avoiding traditional stoichiometric oxidants or specialized reagents. The lab also emphasizes mechanistic understanding through electrochemical and computational studies to guide the design of new catalytic systems.
Professor Jong Woong Park's research lab specializes in regenerative medicine and biomedical engineering, with a primary focus on peripheral nerve repair and regeneration. The lab develops advanced tissue-engineered nerve grafts using synthetic nerve guidance conduits combined with biomaterials such as collagen hydrogels and electrospun poly(lactide-co-ε-caprolactone) (PLCL) membranes to promote nerve regeneration. Additionally, the lab applies cutting-edge technologies like machine learning and wearable sensors to enhance gait analysis and rehabilitation monitoring, demonstrating a strong integration of biomedical engineering with clinical applications. The research also includes studies on environmental toxins, such as aflatoxin B1 in food, reflecting a broader interest in public health and toxicology.
Professor Eul-Bum Lee's research lab specializes in intelligent engineering project management, with a focus on integrating artificial intelligence, big data analytics, and digital transformation in construction and infrastructure projects. The lab develops advanced simulation models, AI-driven risk assessment systems, and automated data extraction techniques—particularly for engineering drawings and project schedules—to enhance decision-making, reduce delays, and improve cost control in large-scale EPC (Engineering, Procurement, and Construction) projects. Key research directions include smart construction scheduling, digital twin applications in highway and plant infrastructure, and the mitigation of project risks through hybrid decision-support systems combining AHP and fuzzy logic.
Professor Hugo Rodrigues' research lab specializes in the design, fabrication, and application of advanced soft and smart actuators for robotics, with a focus on shape memory alloys (SMA), pneumatic artificial muscles, and soft pneumatic structures. The lab explores innovative actuator architectures—such as origami-based, torsionally prestrained, and origami-vacuum hybrid systems—that enable large forces, high contraction ratios, and complex motions like twisting and bending. Key research directions include the integration of smart materials into functional robotic systems, including tensegrity robots and soft robotic wrists, with an emphasis on lightweight, high-performance, and energy-efficient actuation. The lab also develops novel manufacturing techniques, such as double casting for non-linear SMA wire positioning, to enhance actuator performance and control precision.
Professor Nayoung Kim's research lab focuses on gastrointestinal oncology and infectious disease epidemiology, with a primary emphasis on *Helicobacter pylori* infection and its role in gastric carcinogenesis. The lab investigates the molecular mechanisms of *H. pylori*-associated atrophic gastritis and intestinal metaplasia, evaluates diagnostic and therapeutic strategies—including antibiotic resistance and eradication efficacy—and contributes to clinical guidelines for optimal opioid prescribing in surgical patients. The lab integrates translational research with clinical practice to improve outcomes in gastric cancer prevention and postoperative pain management.
Professor Gabriel Lima's research lab focuses on the ethical, legal, and societal implications of artificial intelligence, particularly in high-stakes decision-making contexts. The lab investigates public perceptions of moral responsibility, blame attribution, and legal personhood for autonomous AI systems, with an emphasis on fairness, explainability, and accountability. Key research directions include the psychological and normative responses to AI in domains such as criminal justice, healthcare, and employment, as well as the public's receptiveness to granting rights or legal status to AI and robots. The lab combines experimental methods with interdisciplinary insights from philosophy, law, and social psychology to inform responsible AI governance.
Professor Joon Jeong's research lab focuses on surgical oncology and cancer biology, with a particular emphasis on improving outcomes in breast and pancreatic cancer. The lab investigates surgical techniques—such as nipple-sparing mastectomy and incision types—to minimize complications and optimize patient outcomes. It also explores the biological mechanisms of cancer, including tumor suppressor protein expression (e.g., p16 and p53) in pancreatic ductal adenocarcinoma, aiming to enhance early diagnosis and therapeutic strategies. Additionally, the lab examines sociocultural and clinical factors influencing treatment decisions, such as the interruption of endocrine therapy for pregnancy in breast cancer patients.
Professor Jeong-Gyu Kim's research lab specializes in environmental remediation and soil pollution control, with a focus on sustainable solutions for contaminated environments. The lab investigates the application of low-cost, eco-friendly materials—such as spent coffee grounds, biochar, and industrial by-products— for the adsorption and stabilization of heavy metals (e.g., cadmium, arsenic) in soil and water. Key research directions include phytoremediation of abandoned mines, mechanisms of trace element immobilization, and the mitigation of ammonia volatilization from agricultural fertilizers. The lab also emphasizes the integration of chemical speciation, sequential extraction, and biological assessment to evaluate environmental risk and remediation efficacy.