世界の主要大学の研究室を探索 — 研究分野と主要論文を一目で確認できます。
Professor Changgu Lee's research lab specializes in the synthesis, characterization, and application of two-dimensional (2D) nanomaterials, with a strong focus on graphene, transition metal dichalcogenides (such as MoS₂), and hexagonal boron nitride. The lab investigates the intrinsic mechanical, tribological, and electronic properties of these atomically thin materials using advanced nanomechanical techniques like atomic force microscopy and friction force microscopy. Key research directions include the scalable, surfactant-free exfoliation of 2D materials in water, the development of flexible and transparent electronic and sensing devices, and the exploration of their potential in nanomechanical systems and energy applications. The lab also emphasizes fundamental studies of elastic behavior, intrinsic strength, and friction at the nanoscale, aiming to bridge the gap between atomic-scale properties and macroscopic performance.
Professor Sung-Jin Park's research lab specializes in the synthesis, functionalization, and application of chemically modified graphene and related two-dimensional nanomaterials. The lab focuses on enhancing the mechanical, electrical, and electrochemical properties of graphene-based materials through chemical doping, ion interaction, and colloidal processing. Key research directions include the development of high-performance supercapacitor electrodes, conductive paperlike materials, and photonic devices with tunable optical responses. The lab also explores scalable solution-based methods for producing advanced nanomaterials with tailored functionalities for energy and optoelectronic applications.
Professor Daehyung Kim's research lab specializes in the development of advanced flexible, stretchable, and biocompatible electronic systems for biomedical applications. The lab focuses on creating mechanically invisible, conformal devices that integrate high-performance inorganic semiconductors—such as silicon nanoribbons—with ultrathin, elastomeric substrates to enable long-term, reliable health monitoring. A key direction involves designing transient electronics that safely dissolve in the body after use, offering new possibilities for implantable and disposable medical devices. The lab also pioneers wearable systems that combine real-time biosensing with active therapeutic functions, such as feedback-controlled drug delivery.
Professor Gihyung Lee's research lab specializes in translational oncology, with a primary focus on non-small cell lung cancer (NSCLC), particularly targeting molecularly defined subgroups such as EGFR mutation-positive and never-smoker adenocarcinoma patients. The lab investigates targeted therapies, including EGFR tyrosine kinase inhibitors like gefitinib and afatinib, to optimize treatment strategies in advanced NSCLC. It also explores biomarker-driven treatment patterns, molecular testing impact, and long-term outcomes in lung cancer, with a strong emphasis on personalized medicine and clinical trial design. Additionally, the lab contributes to understanding treatment-related toxicities, such as adrenal suppression from dexamethasone, to improve supportive care in oncology.
Professor Byung Hee Hong's research lab specializes in the design, synthesis, and application of advanced two-dimensional and one-dimensional nanomaterials, with a strong focus on graphene, silver nanowires, and organic nanotubes. The lab pioneers the development of ultrathin, stable nanomaterials with atomic precision, exploring their unique electronic, optical, and mechanical properties for next-generation flexible and transparent electronics. Key research directions include nanoscale bubble dynamics, functional nanomaterials for biomedical applications, and innovative fabrication techniques for high-performance devices.
Professor Noh's research lab specializes in the development of high-performance perovskite-based optoelectronic devices, with a primary focus on perovskite solar cells (PSCs). The lab investigates novel film fabrication techniques, defect engineering, and interface modification to enhance power conversion efficiency and long-term stability. Key research directions include band gap engineering through compositional tuning, optimization of charge transport layers, and suppression of non-radiative recombination at interfaces. The lab also explores alternative electron-transport materials to replace photocatalytically active TiO₂, particularly for improved UV stability.
Professor Sunghoon Kim's research lab specializes in interdisciplinary materials science and biomedical engineering, focusing on the development of advanced functional materials for healthcare and electronic applications. Key research directions include designing novel nanomaterials for ultrasensitive humidity and biosensors, exploring natural compounds like isothiocyanates and campesterol for anticancer and anti-angiogenic therapies, and investigating cellular mechanisms in neurodegenerative diseases such as Alzheimer’s and Down syndrome. The lab also develops innovative microwave components and image processing techniques for practical sensing and recognition systems.
Professor Young Moo Lee's research lab specializes in the design and development of advanced polymeric materials for clean energy and separation technologies. The lab focuses on creating durable, high-performance anion exchange membranes and ionomers for low-cost fuel cells, with an emphasis on enhancing conductivity, mechanical strength, and long-term stability under harsh alkaline conditions. Key research directions include molecular engineering of polymers with tailored free-volume microstructures and the incorporation of aliphatic/alicyclic or aryl-ether-free architectures to improve durability and transport properties. The lab also explores applications in ion exchange membranes for energy conversion, gas separation, and sustainable materials.
Professor Jeongri Kim's research lab specializes in theoretical and computational astrophysics, focusing on the dynamics and evolution of compact binary systems such as neutron star and black hole binaries. The lab investigates gravitational wave sources, pulsar populations, and the coalescence rates of binary systems using statistical and N-body simulation methods. Key research directions include modeling the formation and ejection of black hole binaries in globular clusters, estimating pulsar beaming corrections, and deriving Galactic merger rates for double neutron stars and neutron star–white dwarf systems. The lab's work plays a crucial role in interpreting data from gravitational wave detectors like LIGO/Virgo and radio pulsar surveys.
Professor Eun Chul Park's research lab focuses on population health and health disparities, with a strong emphasis on the socioeconomic determinants of health outcomes in South Korea. The lab investigates chronic disease burden, catastrophic health expenditures, and the impact of social and economic factors on health-related quality of life, physical activity, and mental health. Key research directions include health equity, aging populations, cancer-related employment outcomes, and dietary behaviors, often utilizing large-scale national survey data such as the Korea Health Panel, KLoSA, and KNHANES. The lab integrates epidemiological, behavioral, and health policy perspectives to inform public health interventions.
Professor Do Youn Oh's research lab specializes in translational oncology, focusing on advanced biliary tract cancer (BTC) and pancreatic cancer. The lab investigates novel immunotherapeutic strategies, including PD-L1 inhibition (e.g., durvalumab) combined with chemotherapy, to improve outcomes in aggressive gastrointestinal malignancies. Key research directions include identifying prognostic biomarkers such as sarcopenia and soluble PD-L1, and evaluating targeted therapies like STAT3 and mTOR inhibitors in solid tumors. The lab integrates clinical trial data with molecular profiling to advance precision oncology in rare and treatment-resistant cancers.
Professor Thomas Heine's research lab specializes in the theoretical investigation of two-dimensional (2D) materials, with a focus on their electronic structure, magnetic response, and intrinsic properties such as band gaps and spin-orbit coupling. The lab explores layered materials including transition metal dichalcogenides (TMDs), graphene, and hexagonal boron nitride, emphasizing their potential in nanoelectronics, optoelectronics, and spintronics. Using advanced computational methods like periodic density functional theory (DFT), the group examines how external fields, strain, and chemical composition tune the electronic and magnetic behavior of these materials. Their work also includes the development of reliable descriptors—such as NICS tensors—for characterizing aromaticity and electronic delocalization in π-systems.
Professor Seung-Ok Kim's research lab focuses on neuroimmunology and glial cell biology, with a particular emphasis on the roles of microglia and astrocytes in neuroinflammatory and neurodegenerative diseases such as Alzheimer’s disease, Parkinson’s disease, and ALS. The lab investigates the secretory profiles of human glial cells, including cytokines and chemokines, to understand their dual neuroprotective and neurotoxic functions in disease progression. Additionally, the lab explores translational applications, including cell replacement therapy and non-invasive liver fibrosis assessment, linking neurological and metabolic disorders such as sarcopenia and nonalcoholic fatty liver disease (NAFLD).
Professor Dong-Ho Kim's research lab specializes in the design and synthesis of advanced functional organic and porphyrin-based materials for optoelectronic and energy-related applications. Key research directions include the development of stimuli-responsive luminescent materials, artificial light-harvesting systems inspired by natural photosynthesis, and tailored porphyrin arrays with controlled excitonic properties. The lab also explores novel expanded porphyrins for aromaticity studies and open-shell polycyclic aromatic hydrocarbons with unique electronic structures for potential use in organic semiconductors and spintronics. Their work combines synthetic chemistry, photophysics, and materials engineering to create smart materials with tunable optical and electronic properties.
Professor Sang Chul Bae's research lab focuses on rheumatological and autoimmune diseases, with a strong emphasis on understanding and improving outcomes in conditions such as rheumatoid arthritis (RA), systemic lupus erythematosus (SLE), and osteoarthritis. The lab investigates the impact of lifestyle interventions—particularly t'ai chi—on physical function, bone health, and fall prevention in older adults with arthritis. It also explores nutritional strategies, including antioxidant supplementation, to modulate disease activity and oxidative stress in autoimmune conditions. Additionally, the lab is dedicated to cultural adaptation and validation of patient-reported outcome measures, such as the Korean version of the Health Assessment Questionnaire (HAQ), to enhance clinical assessment in Korean populations.
Professor Hwang's research lab specializes in advanced oxide thin films and resistive switching devices for next-generation electronic and energy storage applications. The lab focuses on ferroelectric and antiferroelectric HfO2-based materials, exploring their phase stability, electrical properties, and integration into scalable memory and logic devices. Key research directions include resistive random-access memory (ReRAM), memristor-based neuromorphic computing, and high-energy-density lead-free capacitors for power electronics. The lab also investigates fundamental mechanisms in thin film growth, phase evolution, and device physics to enable energy-efficient, non-volatile memory and logic circuits compatible with complementary metal-oxide-semiconductor (CMOS) technology.
Professor Sang Woo Kim's research lab specializes in the development of advanced energy harvesting technologies, with a focus on triboelectric and hybrid nanogenerators for self-powered biomedical and environmental systems. The lab explores sustainable energy solutions by harnessing mechanical, thermal, and ultrasonic energy through innovative nanomaterials and nanostructured designs. Key research directions include flexible and stretchable energy harvesters, transparent graphene-based devices, and eco-friendly nanogenerators for implantable and wearable electronics. The lab also investigates the antifungal applications of silver nanoparticles, particularly in agricultural biotechnology, demonstrating a multidisciplinary approach to nanotechnology and energy sustainability.
Professor Younghun Kim's research lab specializes in advanced optoelectronic materials, with a primary focus on perovskite-based semiconductors for next-generation light-emitting devices. The lab explores hybrid perovskites, quantum dots, and nanostructured materials to achieve high-efficiency, stable, and tunable light emitters for applications in LEDs and photovoltaics. Key research directions include interface engineering using functional buffer layers to enhance charge injection and suppress non-radiative recombination, as well as fundamental studies on the optoelectronic properties and degradation mechanisms of halide perovskites. The lab also investigates environmental applications, such as the dechlorination of persistent organic pollutants using zero-valent metals, demonstrating a multidisciplinary approach to materials science and environmental remediation.
Professor Ho Young Lim's research lab specializes in translational oncology, focusing on molecular mechanisms and targeted therapies in hepatocellular carcinoma (HCC) and gastric adenocarcinoma. The lab investigates signal transduction pathways, particularly the RAS/MAPK and COX-2/prostaglandin axes, to identify actionable biomarkers and develop combination therapies. Key research directions include evaluating MEK inhibitors like refametinib in RAS-mutant HCC, assessing immune checkpoint inhibitors (atezolizumab/bevacizumab) in advanced HCC, and exploring the role of systemic inflammation (e.g., NLR) in treatment response. The lab emphasizes precision oncology using liquid biopsies and next-generation sequencing to guide personalized therapy.
Professor Bit-nae Kim's research lab specializes in RNA biology, focusing on the molecular mechanisms underlying post-transcriptional gene regulation. The lab investigates non-coding RNAs, including microRNAs and novel small RNAs, with an emphasis on their biogenesis, function, and roles in development and disease. Key research directions include the regulation of mRNA stability and translation through RNA modifications—such as guanylation of poly(A) tails—and the systems-level analysis of transcriptomic and epitranscriptomic dynamics in neurobiology and viral infection. The lab also develops advanced sequencing technologies to enable accurate quantification of small RNAs and high-resolution mapping of viral and cellular transcriptomes.