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 Soo-Yong Shin's research lab specializes in health informatics, digital epidemiology, and bio-computing, with a strong focus on leveraging computational methods to improve healthcare outcomes. The lab investigates mobile health (mHealth) app usage patterns to enhance user retention, develops digital surveillance systems using web and social media data for outbreak monitoring, and explores privacy-preserving data analytics through innovative de-identification techniques for multilingual clinical records. Additionally, the lab pioneers molecular programming and DNA computing approaches for solving complex optimization problems, emphasizing error resilience and biological plausibility in sequence design.
Professor Sunghwan Kim's research lab specializes in developing biocompatible, flexible, and multifunctional electronic and photonic systems for next-generation biomedical applications. The lab focuses on integrating natural biomaterials—particularly silk fibroin—with nanomaterials such as carbon nanotubes and silver nanowires to create soft, transparent, and biodegradable devices. Key research directions include epidermal electronics, triboelectric skin sensors, photonic crystals for biosensing, and biodegradable optoelectronic components for implantable or transient medical devices.
Professor Jung-Woo Yoo's research lab specializes in the design, synthesis, and characterization of advanced functional materials, with a focus on organic and hybrid materials for spintronics, optoelectronics, and energy applications. The lab explores two-dimensional metal-organic frameworks (MOFs), covalent organic frameworks (COFs), and conjugated organic semiconductors to achieve tunable electrical, magnetic, and optical properties. Key research directions include spin transport in organic heterostructures, photoresponsive magnetic semiconductors, and the engineering of electronic conductivity through ligand oxidation and molecular stacking. The lab combines experimental techniques with theoretical modeling to understand and optimize charge and spin transport at the molecular level.
Professor Gun-Ho Kim's research lab specializes in advanced functional materials and their applications in energy, environmental, and biomedical technologies. The lab focuses on developing sustainable nanocomposites—particularly graphene-polymer and ceramic-based materials—through innovative, single-step synthesis methods that enhance mechanical, thermal, and adsorptive properties. Key research directions include designing thermally conductive polymers with extended chain conformations, creating high-performance adsorbents for air and gas purification (e.g., H₂S and NH₃), and advancing minimally invasive medical treatments such as endoscopic cryoablation for pancreatic cancer. The lab integrates materials synthesis, characterization, and practical application to address challenges in energy efficiency, environmental remediation, and healthcare.
Professor Joohoon Kim's research lab specializes in the design and synthesis of functional nanomaterials with tailored catalytic and biorecognition properties. The lab focuses on dendrimer-encapsulated nanoparticles, particularly platinum-based systems, for applications in bio-mimetic sensing, enzymatic activity modulation, and advanced imaging technologies. Key research directions include the development of nanozymes for colorimetric and fluorescence-based detection, the integration of nanomaterials with biological molecules for hybrid biosensors, and the application of machine learning to enhance nanophotonic devices such as metalenses. The lab also explores high-throughput screening methods for enzyme substrate specificity and innovative nanofabrication techniques for multifunctional nanostructures.
Professor Seunghyun Lee's research lab specializes in advanced 2D materials and their integration into next-generation electronic and energy systems. The lab focuses on large-scale synthesis and device integration of graphene and transition metal dichalcogenides (TMDs), with an emphasis on overcoming critical challenges in contact engineering, wafer-scale growth, and system-level applications. Key research directions include resistive memory devices based on 2D materials, energy-efficient wireless power transfer systems, and the development of high-performance, low-power circuits for big data and IoT applications. The lab bridges fundamental materials science with practical device engineering to enable scalable, energy-efficient technologies.
Professor Gi-Ae Kim's research lab specializes in hepatology and liver disease epidemiology, with a strong focus on chronic hepatitis B (CHB) and metabolic dysfunction-associated steatotic liver disease (MASLD). The lab investigates clinical outcomes, risk stratification, and optimal treatment strategies for patients with viral and metabolic liver diseases, particularly emphasizing early intervention to prevent hepatocellular carcinoma (HCC) and dementia. Their work also explores diagnostic biomarkers such as alpha-fetoprotein and the impact of nomenclature changes in liver disease classification to improve clinical communication and public health awareness.
Professor Minjong Lee's research lab focuses on the intersection of cancer metabolism, liver disease, and translational therapeutics. The lab investigates metabolic reprogramming in hepatocellular carcinoma, particularly the Warburg effect and its reverse form, exploring how tumor-stroma metabolic crosstalk influences cancer progression. A key research direction involves repurposing existing drugs—such as aspirin, clopidogrel, metformin, and dichloroacetate—to target cancer metabolism and improve outcomes in liver cirrhosis and hepatocellular carcinoma. The lab also evaluates clinical risk-benefit profiles of antiplatelet and anti-inflammatory therapies in chronic liver disease populations.
Professor Dae-Hyeong Kim's research lab specializes in developing sustainable and biodegradable electronic systems, with a strong focus on eco-friendly energy storage and stretchable optoelectronics. The lab pioneers innovative solutions such as biodegradable sodium-ion batteries and hydrogel-based thermal regulators inspired by natural plant mechanisms, emphasizing environmental compatibility and functional performance. Key research directions include the design of intrinsically stretchable electroluminescent devices and smart materials that dynamically respond to thermal and hydric stimuli. The lab integrates materials science, sustainability, and advanced device engineering to create next-generation electronics with minimal environmental impact.
Professor Sang Ho Oh's research lab specializes in dermatological and cellular mechanisms underlying skin diseases, with a focus on stress responses, autophagy, and skin pigmentation disorders. The lab investigates molecular pathways involved in melanocyte biology, including melanosome regulation and melanogenesis, as well as the role of autophagy in skin homeostasis and disease. Additionally, the lab explores therapeutic applications of lasers and novel devices in treating scars, vitiligo, and acne, emphasizing translational approaches to improve clinical outcomes. Their work bridges basic cellular mechanisms with clinical dermatology, aiming to develop targeted, non-invasive treatments.
Professor Gi Hong Choi's research lab specializes in hepatobiliary and pancreatic surgery, with a strong focus on advancing minimally invasive surgical techniques—particularly robotic liver surgery—in the context of hepatocellular carcinoma (HCC) and liver cirrhosis. The lab investigates preoperative risk stratification, especially regarding portal hypertension, to optimize surgical outcomes and patient selection. It also evaluates the role of adjuvant therapies such as transarterial chemoembolization (TACE) in resectable HCC, aiming to clarify their impact on survival and recurrence patterns.
Professor Kyung Hwan Kim's research lab focuses on advancing cancer immunotherapy, particularly immune checkpoint blockade targeting PD-1/PD-L1, with an emphasis on identifying predictive biomarkers, understanding mechanisms of treatment response and resistance, and elucidating the immunological basis of immune-related adverse events. The lab investigates the clinical and immunological implications of radiation exposure to critical cardiac structures like the sinoatrial node, linking radiotherapy planning to long-term outcomes such as atrial fibrillation and mortality. Their work integrates translational immunology with clinical oncology, primarily in solid tumors including non-small cell lung cancer, thymic epithelial tumors, and hepatocellular carcinoma.
Professor Young Goo Song's research lab focuses on viral genomics and infectious disease diagnostics, with a particular emphasis on understanding the molecular evolution and pathogenic mechanisms of emerging viruses such as SARS-CoV-2. The lab conducts systematic bioinformatic and comparative genomic analyses to identify critical mutations in viral proteins and assess their implications for transmission, virulence, and diagnostic accuracy. Additionally, the lab investigates host-pathogen interactions and biomarkers, such as D-dimer levels, to improve prognosis prediction in severe bacterial and viral infections. Their work bridges virology, bioinformatics, and clinical microbiology to support public health responses to infectious disease outbreaks.
Professor Ji Hyun Lee's research lab specializes in translational genomics and functional genomics, focusing on the genetic basis of cardiovascular and metabolic diseases, particularly familial hypercholesterolemia and lipid disorders in East Asian populations. The lab develops innovative CRISPR-based technologies—such as CRISPR/retron systems and CRISPR deaminase platforms—for high-throughput, multiplexed introduction and tracking of substitution mutations, enabling functional screening in human cell models. Their work integrates single-cell RNA sequencing, whole-exome sequencing, and systems biology approaches to uncover genotype-phenotype relationships and identify rare genetic variants underlying complex traits. The lab also investigates vascular phenotypes in autoimmune diseases, such as the link between rheumatoid arthritis and carotid atherosclerosis, using advanced imaging techniques.
Professor Bongju Jeong's research lab specializes in sustainable manufacturing and resource recovery, focusing on the development of advanced recycling and remanufacturing systems for high-tech materials and end-of-life products. The lab addresses critical challenges in rare metal supply chains, photovoltaic system recycling, and electric vehicle logistics under uncertainty, integrating optimization, evolutionary algorithms, and sustainable supply chain planning. Research emphasizes environmental protection, resource efficiency, and technological resilience in the context of the Fourth Industrial Revolution and climate change mitigation. The lab also explores innovative disassembly planning and robust routing models to enhance circular economy practices in high-tech and transportation industries.
Professor Hyeon Soo Kim's research lab specializes in cellular metabolism and signaling pathways, with a primary focus on the role of AMP-activated protein kinase (AMPK) in regulating glucose homeostasis, insulin sensitivity, and muscle function. The lab investigates myokines—such as irisin, meteorin-like protein (Metrnl), and other endogenous factors released from skeletal muscle—exploring their metabolic and anti-inflammatory effects. Using in vitro and in vivo models, the lab examines how natural compounds (e.g., quercetin, curcumin, retinoic acid) and drugs (e.g., metformin) modulate AMPK and downstream targets like p38 MAPK, PAK, HDAC5, and FoxO3a to influence glucose uptake, apoptosis, and muscle atrophy. The overarching goal is to uncover novel therapeutic targets for metabolic diseases such as type 2 diabetes and sarcopenia.
Professor Ohkmae K. Park's research lab focuses on plant molecular biology and immunology, with a central emphasis on the regulation of programmed cell death, systemic immunity, and cell wall remodeling in response to biotic and abiotic stresses. The lab investigates key molecular players such as transcription factors, microRNAs, and signaling proteins—including GLIP1, NAC4, MYB15, and annexins—that modulate stress responses and innate immunity in *Arabidopsis thaliana*. Using integrative approaches combining proteomics, genetics, and cell biology, the lab uncovers conserved mechanisms underlying plant defense, including autophagy in xylem development and hormone signaling in stress adaptation. Their work provides fundamental insights into how plants coordinate development and immunity through tightly regulated molecular networks.
Professor Kyung Nam Kim's research lab specializes in sustainable energy systems and environmental remediation, with a strong focus on photovoltaic technology, renewable energy integration, and the circular economy. The lab investigates floating solar PV systems, large-scale solar city development, and the reuse of electric vehicle batteries in energy storage, emphasizing economic feasibility and policy integration. It also explores the valorization of industrial by-products—such as mine tailings—for construction materials, aiming to reduce environmental pollution and enhance material sustainability. The lab bridges engineering, policy, and finance to advance low-carbon energy solutions in urban and emerging economies.
Professor Youngjoong Ko's research lab specializes in text mining, natural language processing, and information retrieval, with a strong focus on automatic text categorization and cross-language information retrieval. The lab explores unsupervised and semi-supervised learning techniques to reduce reliance on costly labeled data, emphasizing feature weighting, sentence importance estimation, and bootstrapping methods. It also develops language resources such as bilingual dictionaries and parallel corpora using large-scale web sources like Wikipedia to enhance multilingual text processing.
Professor Yong-Chae Chung's research lab specializes in the design and development of advanced functional materials for sustainable energy applications. The lab focuses on enhancing ion conductivity and interfacial stability in solid-state batteries through innovative nanostructured electrolytes, such as core-shell sulfide solid electrolytes. It also explores high-performance electrocatalysts—particularly metal–fluoride-based materials—for efficient water oxidation in renewable energy conversion systems. Additionally, the lab investigates 2D/2D heterostructures with engineered interfacial properties to improve charge separation and photocatalytic efficiency.