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 Dong-Hwa Seo's research lab specializes in computational materials science with a focus on designing advanced cathode materials for next-generation lithium-ion and lithium-metal batteries. The lab employs state-of-the-art first-principles calculations to investigate the electronic structure, ion diffusion mechanisms, and electrochemical properties of complex oxides, including olivine, disordered-layered, and rock-salt type materials. Key research directions include understanding the role of transition metal cation distribution, local structural distortions, and Li-excess behavior in enhancing ionic conductivity, capacity retention, and energy density. The lab also explores innovative electrode architectures, such as anode-free Li metal batteries with functional current collectors, to overcome volume change and interfacial instability issues.
Professor Kihean Kim's research lab specializes in the discovery and development of bioactive natural compounds from plants, medicinal herbs, and microbial sources, with a focus on their therapeutic potential in neurodegenerative diseases, cancer, and infectious conditions. The lab integrates natural product chemistry, structural biology, and nanotechnology to design innovative drug delivery systems—such as invasomes and silver nanowire films—aimed at enhancing transdermal delivery and enabling flexible, cost-effective optoelectronic applications. Research also spans functional genomics, particularly in plant-pathogen interactions, to uncover molecular mechanisms underlying disease resistance in crops. The lab emphasizes interdisciplinary approaches combining chemistry, pharmacology, and materials science to translate natural products into clinical and industrial applications.
Professor Ho Bum Park's research lab specializes in the design and engineering of advanced membrane materials for high-performance separations, with a focus on overcoming the permeability-selectivity trade-off inherent in conventional membranes. The lab explores novel materials such as graphene, graphene oxide, and tailored polyimides to create membranes with tunable free-volume microstructures for applications in gas separation, water purification, and desalination. By leveraging molecular design, surface engineering, and thermally driven structural rearrangements, the lab develops next-generation membranes with exceptional selectivity and transport efficiency.
Professor Junghwan Kim's research lab specializes in advanced materials and sustainable energy technologies, with a strong focus on developing green and efficient solutions for energy storage and conversion. The lab investigates functional nanomaterials, particularly cellulose-based and heterolayered nanomats, for next-generation battery separators and smart energy devices. It also explores data-driven modeling and reactor design for clean hydrogen production, including ammonia decomposition using induction heating and artificial intelligence. Additionally, the lab contributes to biomedical applications through natural compound-based cancer therapeutics, emphasizing synergistic anti-cancer mechanisms.
Professor Tae-Young No's research lab focuses on epigenetic regulation of gene expression, particularly in immune cells such as T cells, with an emphasis on histone modifications like H3 lysine acetylation and methylation. The lab employs high-resolution genomics techniques, including ChIP-Seq and genome-wide mapping, to decipher the functional roles of epigenetic marks in transcriptional regulation, chromatin dynamics, and disease mechanisms. Recent work also extends into the microbiome's role in human disease and the interplay between extracellular vesicles and endothelial cell activation in cancer progression. The lab integrates multi-omics approaches to uncover molecular mechanisms underlying immune cell identity, genome stability, and disease pathogenesis.
Professor Kyung Mi Kim's research lab specializes in gastrointestinal oncology and molecular pathology, with a focus on the genetic and molecular mechanisms underlying gastric cancer and colorectal neoplasms. The lab investigates novel biomarkers such as SLC34A2-ROS1 rearrangements and tumor mutational burden (TMB) to guide targeted and immunotherapeutic strategies in advanced gastric cancer. It also explores the pathogenesis and molecular profiles of serrated polyps, including sessile serrated adenomas and traditional serrated adenomas, with particular attention to ethnic and geographic variations in disease presentation. The lab integrates clinical, pathological, and genomic data to improve early detection and personalized treatment approaches for gastrointestinal malignancies.
Professor Young Jin Kim's research lab specializes in biomedical materials and translational bioengineering, focusing on stimuli-responsive polymers for cell manipulation, cancer metastasis mechanisms involving selectin-mediated adhesion, and the biological effects of environmental exposures such as electromagnetic fields. The lab integrates advanced materials science with molecular oncology and medical imaging to develop smart biomaterials and understand disease progression at the cellular and molecular levels. Recent work also explores deep learning applications in air traffic data analytics, reflecting a growing interdisciplinary approach to health and data science.
Professor Won Kim's research lab focuses on the intersection of microbiome science, metabolic disease, and environmental health interventions. The lab investigates the role of gut microbiota in non-alcoholic fatty liver disease (NAFLD), particularly in relation to fibrosis progression and metabolic health, using multi-omics and clinical cohort approaches. It also explores the therapeutic potential of nature-based interventions, such as forest therapy, for chronic pain and depression, integrating psychophysiological, immunological, and behavioral outcomes. Additionally, the lab contributes to vector biology through genetic engineering of mosquitoes to combat vector-borne diseases.
Professor Seung Ho Ryu's research lab specializes in epidemiological and clinical studies focusing on the metabolic and liver-related determinants of chronic disease progression. The lab investigates the role of liver enzymes—particularly ALT and GGT—along with uric acid and fatty liver disease (NAFLD/AFLD) in predicting long-term risks of diabetes, cardiovascular disease, and chronic kidney disease. Using large-scale, population-based cohort studies in Korean adults, the lab emphasizes early biomarkers and metabolic phenotypes to understand disease onset and progression in metabolically healthy individuals. Their work highlights the significance of subclinical liver dysfunction and metabolic abnormalities in predicting future health outcomes.
Professor Jin-Ju Han's research lab focuses on the molecular mechanisms of microRNA biogenesis and function, with a particular emphasis on RNase III enzymes such as Drosha and Dicer in gene regulation. The lab investigates the roles of microRNAs and their regulatory networks in neurogenesis, stem cell differentiation, and developmental processes, especially in the context of neural progenitor cell fate and brain function. Using integrative approaches combining molecular biology, genomics, and functional studies, the lab explores how post-transcriptional regulation by microRNAs and their interacting partners influences cellular identity and tissue development. Recent work also extends to the identification and characterization of microRNAs in non-model organisms, such as wheat, highlighting translational and agricultural applications of miRNA research.
Professor Soo Hyun Kim's research lab specializes in biomedical materials and molecular therapeutics, with a focus on autophagy modulation, inflammasome regulation, and the development of biodegradable polymers for tissue engineering and drug delivery. The lab investigates novel mechanisms of disease modulation—particularly in metabolic liver diseases like NASH—through pharmacological agents such as ezetimibe, while also advancing synthetic strategies for functionalized polyesters, including star-shaped and biodegradable copolymers. A key theme is the design of smart biomaterials that can precisely control biological responses, from immune modulation to tissue regeneration. The lab integrates molecular biology, polymer chemistry, and translational medicine to develop innovative therapeutic and biomaterial platforms.
Professor Hyun Soo Kim's research lab focuses on molecular and translational immunology, with a strong emphasis on innate immunity, inflammatory diseases, and cancer biology. The lab investigates key regulatory proteins such as IL-18 binding protein and microRNAs in disease pathogenesis, particularly in glioblastoma and nonalcoholic steatohepatitis (NASH). Current research directions include the therapeutic modulation of autophagy and inflammasome pathways, drug repurposing (e.g., ezetimibe for NASH), and the development of novel biomaterials for biomedical applications. The lab integrates multi-omics data, preclinical models, and clinical samples to identify functional mechanisms and therapeutic targets.
Professor Sukwoo Jeon's research lab specializes in the design, synthesis, and application of advanced two-dimensional nanomaterials and hybrid nanocomposites for next-generation energy and electronic devices. Key research directions include the scalable fabrication of graphene quantum dots, hexagonal boron nitride nanoplatelets, and conductive elastomeric composites with hierarchical nanostructures. The lab focuses on enhancing electrical, thermal, and mechanical properties through innovative functionalization and hybridization strategies, particularly for applications in flexible electronics, energy storage (e.g., Li-O2 batteries), and optoelectronics.
Professor Young Joo Park's research lab specializes in thyroid cancer genomics and molecular oncology, focusing on the identification of somatic mutations, gene fusions, and epigenetic alterations that drive tumorigenesis and disease progression in thyroid cancers. The lab employs next-generation sequencing (NGS) technologies to dissect the mutational landscapes of differentiated, anaplastic, and follicular thyroid carcinomas, with particular emphasis on biomarkers such as BRAF V600E, TERT promoter mutations, and CDKN2A/TP53 alterations. Their work aims to improve risk stratification, predict clinical outcomes, and uncover novel therapeutic targets in aggressive thyroid cancers.
Professor YongKeun Park's research lab specializes in quantitative phase imaging (QPI) and optical metrology to study the biomechanics and pathophysiology of human cells, particularly red blood cells. The lab focuses on noninvasive, label-free imaging techniques such as diffraction phase microscopy, tomographic phase microscopy, and interferometric methods to quantify intrinsic cellular properties like refractive index, membrane fluctuations, and mechanical stiffness. Their work bridges fundamental biophysics with clinical applications, including malaria infection, cancer, and blood disorders, by revealing how cellular structural and mechanical changes correlate with disease states. The lab also develops advanced optical systems, including DMD-based illumination and hybrid phase-fluorescence microscopy, for high-resolution, real-time live-cell imaging.
Professor Jang-Yeon Hwang's research lab specializes in the development of next-generation energy storage materials, with a primary focus on post-lithium-ion batteries such as sodium-ion and potassium-ion batteries. The lab emphasizes sustainable and high-performance materials design, including novel cathode architectures, nanostructured host matrices, and functional interlayers to enhance ion transport, suppress shuttle effects, and improve cycle stability. Key research directions include the synthesis of hierarchical and core-shell structured materials, advanced conversion and intercalation cathodes, and innovative electrode engineering for scalable and eco-friendly energy storage solutions.
Professor Byung-Kwon Lim's research lab specializes in the rational design and aqueous-phase synthesis of shape-controlled noble metal and bimetallic nanocrystals, with a focus on tailoring their morphology, surface facets, and heterostructure architecture to enhance catalytic performance. The lab pioneers kinetically controlled and seeded-growth strategies to fabricate complex nanostructures such as nanodendrites, multioctahedra, and core-shell or dimer-type bimetallic systems, particularly for applications in fuel cells and electrocatalysis. A central theme is the use of selective capping agents and reducing agents to manipulate facet-specific growth and achieve precise control over nanocrystal architecture at the atomic level.
Professor Lee Gwan-Hyoung's research lab specializes in the synthesis, characterization, and application of two-dimensional (2D) materials, with a focus on transition metal dichalcogenides (e.g., MoS₂), graphene, and hexagonal boron nitride (h-BN). The lab investigates the fundamental electronic, mechanical, and dielectric properties of these atomically thin materials, particularly in van der Waals heterostructures, to enable high-performance, stable 2D electronic and optoelectronic devices. Key research directions include device engineering for field-effect transistors, encapsulation strategies for environmental stability, and nanomechanical probing of 2D material properties at the nanoscale.
Professor Young-woon Kong's research lab focuses on the molecular mechanisms underlying developmental signaling pathways, particularly Notch and TNF receptor superfamily signaling, in organogenesis and immune system regulation. The lab investigates the roles of E3 ubiquitin ligases such as Mib1 and Mib2 in Notch pathway activation and their critical functions in kidney, lymphoid organ, and mammary gland development. Using mouse genetic models and cell biological approaches, the lab explores how these pathways control cell fate decisions, tissue patterning, and homeostasis. A central theme is the intersection of signaling pathways in development and immunity, with implications for human diseases including osteoporosis, lymphoid organ defects, and breast cancer.
Professor Yoon Jun Kim's research lab focuses on integrative oncogenomics and molecular hepatology, with a primary emphasis on understanding the genomic, epigenomic, and transcriptomic mechanisms underlying hepatocellular carcinoma (HCC), cholangiocarcinoma (CC), and their overlapping variant, combined hepatocellular-cholangiocarcinoma (cHCC-CC). The lab employs multi-omics approaches to identify prognostic subtypes, uncover molecular drivers of tumor progression, and explore the clinical implications of phenotypic and molecular overlap between liver cancers. Additionally, the lab investigates metabolic liver disease, particularly hepatic steatosis and its links to insulin resistance and cardiovascular risk, using imaging and biopsy-based assessments in clinical populations.