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 Ju-Hong Min's research lab specializes in neuroimmunology and neurodegenerative diseases, with a primary focus on neuromyelitis optica spectrum disorder (NMOSD), amyotrophic lateral sclerosis (ALS), and related central nervous system (CNS) inflammatory and degenerative conditions. The lab investigates the pathophysiology, clinical phenotypes, and neuroimaging correlates of NMOSD, particularly brain involvement, cognitive dysfunction, and white matter network alterations using advanced MRI techniques such as diffusion tensor imaging and graph theory. Additionally, the lab explores symptom burden, including fatigue and quality of life, and evaluates novel therapeutic interventions, such as ursodeoxycholic acid in ALS, emphasizing patient-centered outcomes and treatment safety.
Professor Ayoung Suh's research lab focuses on understanding the psychological and social dynamics underlying digital work environments, with a particular emphasis on telework, gamification in organizations, and information credibility in digital spaces. The lab investigates how technology design, user experience, and organizational systems influence employee engagement, job satisfaction, and knowledge sharing. Drawing on theories such as technostress, cognitive evaluation theory, and the Elaboration Likelihood Model, the lab develops and tests theoretical models grounded in empirical data from global enterprises. Current research directions include the role of psychological needs in gamified systems, the sustainability of user engagement, and the impact of virtual work contexts on social network formation.
Professor Filippo De Angelis's research lab specializes in theoretical and computational materials science, focusing on hybrid perovskites and metal oxides for optoelectronic and photovoltaic applications. The lab investigates defect physics, charge transport, and phase transitions in perovskite materials using advanced *ab initio* simulations and spectroscopic analysis. Key research directions include understanding ion migration, trap states, and electronic structure modifications at interfaces and surfaces, with a strong emphasis on linking atomic-scale phenomena to macroscopic device performance such as J–V hysteresis and photoluminescence quantum efficiency. The lab also explores less common polymorphs of metal oxides like TiO₂, contributing to the design of efficient, stable, and defect-tolerant materials for solar energy conversion.
Professor Hyojong Yoo's research lab specializes in the design and synthesis of advanced nanomaterials for energy conversion and biomedical applications. Key research directions include the development of plasmonic nanostructures for tunable optical properties, transition metal-based electrocatalysts for water splitting, and functionalized biomaterials such as polyurethane foams and metal-organic frameworks for therapeutic and biosensing applications. The lab integrates materials synthesis, structural characterization, and electrochemical evaluation to address challenges in sustainable energy and healthcare technologies.
Professor Minsoo P. Kim's research lab specializes in the design and development of advanced functional materials, with a strong focus on self-healing polymers, triboelectric nanogenerators, and block copolymer-based nanostructured materials. The lab explores innovative strategies to enhance energy harvesting efficiency through tunable dielectric and surface properties, particularly by engineering polymer architectures and incorporating nanomaterials such as gold nanoparticles. Key research directions include the creation of sustainable, wearable energy devices and stimuli-responsive materials with reversible mechanical and electrical properties.
Professor Young-Koo Lee's research lab specializes in intelligent video analytics and human activity understanding, focusing on leveraging sensor and video data for healthcare, smart environments, and surveillance applications. The lab develops advanced machine learning and computer vision techniques for long-term activity monitoring, behavior analysis, and action prediction in real-world settings such as smart homes and public spaces. Key research directions include personalized health monitoring, lifestyle disease management, and scalable video analytics for large-scale surveillance systems. The lab emphasizes the integration of deep learning with real-time data processing to enable proactive healthcare and intelligent environmental systems.
Professor Ju Gang Nam's research lab specializes in applying deep learning and artificial intelligence to medical imaging, with a primary focus on improving diagnostic accuracy and clinical decision-making in chest radiology. The lab develops and validates AI algorithms for detecting pulmonary nodules, interstitial lung diseases, and other thoracic abnormalities, integrating radiological findings with clinical data to enhance early diagnosis and prognosis prediction. Their work spans from algorithm development using large-scale imaging datasets to real-world validation in clinical settings, including randomized trials and external validation on diverse patient populations. The lab also explores AI applications in optimizing radiological workflow and improving image acquisition protocols.
Professor Kyung Seok Woo's research lab specializes in next-generation neuromorphic and probabilistic computing using advanced resistive switching devices, particularly memristors based on HfO₂ and chalcogenide materials. The lab focuses on harnessing the intrinsic stochasticity of threshold switching in Cu-doped Te/HfO₂/Pt and similar structures to develop true random number generators (TRNGs) for hardware security, while also exploring their dual functionality in both secure cryptography and general-purpose computing. A key research direction involves achieving functional tunability in two-terminal bilayer memristors to emulate neuronal, synaptic, and hybrid behaviors, enabling energy-efficient, programmable computing architectures beyond conventional digital logic.
Professor Jihyeon Yeom's research lab specializes in the design, synthesis, and application of chiral nanomaterials with a focus on their unique optical, magnetic, and biological interactions. The lab explores how atomic and structural chirality at the nanoscale can be harnessed for advanced functionalities in chiroptical devices, biomedical imaging, and targeted cell interactions. Key research directions include the development of magnetic and paramagnetic chiral nanostructures for field-responsive optical activity and the engineering of supraparticles with defined handedness to control biomolecular and cellular responses. The lab integrates materials science, biophysics, and nanotechnology to pioneer next-generation chiral materials for healthcare and photonics.
Professor Hun-Mu Yang's research lab specializes in advanced anatomical visualization and regional anesthesia techniques, focusing on the detailed neurovascular topography of the spine and craniofacial regions. The lab employs innovative imaging technologies such as 3D micro-CT and contrast-enhanced microCT to non-invasively map complex soft-tissue and bony structures with high precision. Their work bridges clinical anesthesia with detailed anatomical research, aiming to improve the safety and efficacy of nerve blocks and surgical procedures. The lab also investigates novel approaches to peripheral nerve blocks, including retrolaminar and erector spinae plane blocks, and explores anatomical considerations in sinus augmentation and occipital neuralgia interventions.
Professor Javier López Prol's research lab focuses on the economic and market dynamics of renewable energy integration, particularly photovoltaic self-consumption and variable renewable energy (VRE) deployment. The lab investigates the impact of regulatory frameworks on energy system transformation, the economic viability of prosumers under different policy regimes, and the financial performance of clean energy investments. It also examines macroeconomic effects of energy transitions, including the impact of global crises such as the COVID-19 pandemic on electricity demand and market behavior. The lab combines econometric analysis, energy-economics modeling, and financial portfolio optimization to assess the interplay between energy policy, market design, and sustainability transitions.
Professor Sangmin Lee's research lab specializes in advanced materials development for sustainable energy, environmental remediation, and biomedical applications. Key research directions include designing bioinspired membranes for CO₂ capture and oil–water separation, engineering functional nanomaterials for cultured meat production and drug delivery, and developing smart, wearable systems for muscle atrophy therapy. The lab emphasizes sustainable synthesis, multi-functional material integration, and scalable fabrication techniques to address global challenges in health, energy, and the environment.
Professor Jae-Chul Lee's research lab specializes in the design, synthesis, and characterization of advanced functional materials, with a focus on nanomaterials, polymer science, and magnetic nanostructures. The lab investigates the self-assembly and transformation of gold nanostructures in block copolymer matrices, the thermodynamic behavior of protein-polymer interactions, and the dynamics of magnetic domain walls in metallic nanowires. Additionally, the group explores precision polymerization techniques, such as ruthenium-catalyzed ring-opening polymerization, to create well-defined, stereoregular polymers with tailored functionalities. These interdisciplinary efforts bridge materials chemistry, soft matter physics, and nanotechnology to develop materials for next-generation applications in biomedicine, electronics, and energy.
Professor Kyoungsuk Jin's research lab specializes in the design and development of advanced nanomaterials for sustainable energy conversion and environmental applications. The lab focuses on understanding and engineering the electronic and structural properties of manganese-based oxides to enhance their catalytic activity in critical reactions such as water oxidation, oxygen evolution, and electrochemical nitrogen fixation. By integrating in situ spectroscopy, electrokinetic analysis, and computational modeling, the group aims to uncover reaction mechanisms and guide the rational design of efficient, earth-abundant electrocatalysts. Their work emphasizes green chemistry principles, particularly in replacing hazardous reagents with sustainable alternatives like water as an oxygen source.
Professor Kyungho Lee's research lab specializes in cybersecurity and digital forensics within Internet of Things (IoT) and smart environment contexts. The lab focuses on developing advanced machine learning and deep learning techniques for real-time fraud detection, malware identification, and insider threat analysis in IoT and IIoT systems. Research also emphasizes data integrity in digital forensics, particularly for mobile devices like Android, and explores sentiment-based risk assessment using social media data. The lab's work bridges artificial intelligence, network security, and forensic integrity to address emerging cyber threats in connected smart ecosystems.
Professor Changkook Ryu's research lab specializes in inorganic and coordination chemistry, with a primary focus on the synthesis, spectroscopy, and photophysical properties of transition metal complexes—particularly copper(I) and chromium(III) clusters. The lab investigates luminescent materials with potential applications in optoelectronics and sensing, emphasizing structural analogs that exhibit efficient excited-state relaxation and tunable emission. Their work also extends to sustainable energy solutions, including waste-to-energy technologies and the development of efficient municipal solid waste-based combined heat and power systems in South Korea.
Professor Eun S. Lee's research lab specializes in advanced power electronics and wireless energy transfer technologies, with a focus on inductive power transfer (IPT) systems for next-generation applications. The lab develops innovative solutions for ubiquitous and 3D-omnidirectional wireless charging, particularly for Internet of Things (IoT) devices, smart sensors, and transportation systems. Key research directions include high-efficiency, high-power-density transformers for railway traction systems, dynamic load regulation using variable switched capacitance, and compact, integrated IPT systems with minimal losses and robust performance across varying distances. The lab emphasizes practical, scalable designs for real-world deployment in smart infrastructure and electrified mobility.
Professor Boo Hyun Nam's research lab specializes in advanced construction materials and sustainable infrastructure, focusing on the development and application of nano-engineered cement composites, waste-derived materials for construction, and innovative modeling techniques for geotechnical and concrete behavior. The lab investigates the use of nanomaterials such as graphene oxide and carbon nanotubes to enhance the mechanical and durability properties of concrete, while also exploring data-driven and molecular simulation approaches to predict material performance. A key research direction involves the sustainable reuse of municipal solid waste incineration (MSWI) ash and other industrial by-products in construction materials, aiming to reduce environmental impact and improve resource efficiency. The lab also applies cutting-edge remote sensing and digital modeling techniques, such as LiDAR and support vector machines, to assess geohazards like sinkholes and soil compressibility.
Professor Yong Seek Park's research lab focuses on the molecular mechanisms underlying cellular responses to environmental stressors and endogenous metabolites, with a particular emphasis on oxidative stress, mitochondrial dysfunction, and epigenetic regulation in disease pathogenesis. The lab investigates the cytoprotective and pathogenic roles of bioactive compounds such as fisetin, acrolein, and methylglyoxal in vascular and metabolic diseases, including atherosclerosis, diabetes, and cancer. Key research directions include signaling pathways involving PKC-δ, p38 MAPK, and NF-E2-related factor 2 (Nrf2), as well as epigenetic modifications such as DNA methylation in cancer. The lab also explores the toxicological impact of emerging environmental pollutants, including micro- and nanoplastics, on mitochondrial health and cellular homeostasis.
Professor Dohyun Han's research lab specializes in translational proteomics, focusing on identifying disease-specific protein biomarkers and molecular mechanisms underlying complex human diseases. The lab employs advanced mass spectrometry-based proteomic technologies—such as iTRAQ, TMT, and label-free LC-MS/MS—on clinical and preclinical models to study metabolic disorders (e.g., type 2 diabetes), neurodegenerative and autoimmune diseases (e.g., multiple sclerosis), and aggressive cancers (e.g., ovarian and adrenal cortical carcinomas). A key strength lies in integrating proteomics with bioinformatics and machine learning to discover prognostic biomarkers and elucidate disease pathways, particularly using patient-derived tissues including FFPE and frozen samples. The lab also pioneers innovative workflows for membrane and glycoproteomic analysis, advancing the study of cellular signaling in neurological diseases.