探索全球顶尖大学的研究室——研究领域与主要论文一览无余。
Professor Jin-Goo Park's research lab specializes in surface and interfacial phenomena in semiconductor manufacturing, with a focus on chemical mechanical polishing (CMP) processes, contamination control, and surface modification. The lab investigates the fundamental interactions between slurries, particles, and wafer materials—such as silicon, polysilicon, and metal films—under various chemical and electrokinetic conditions. Key research directions include the role of surface charge, zeta potential, and interfacial forces in determining polishing performance and defect formation, as well as the development of strategies to enhance surface cleanliness and planarization efficiency through chemical additives like H₂O₂ and benzotriazole (BTA).
Professor Sun‐Sig Byun's research lab specializes in the analysis of partial differential equations, with a focus on elliptic and parabolic equations in divergence form. The lab investigates regularity theory for solutions to nonlinear and non-uniformly elliptic equations, particularly under weak geometric and coefficient conditions. Key research directions include optimal regularity estimates (such as W^{1,p}, Calderón–Zygmund, and weighted L^q bounds), Hölder continuity, and Harnack inequalities for quasiminimizers in variable and double-phase growth settings. The work often involves advanced function spaces like Musielak–Orlicz and variable exponent Lebesgue–Sobolev spaces, with applications to problems in irregular domains and discontinuous coefficients.
Professor Byung-Ju Sohn's research lab specializes in atmospheric and climate sciences, with a focus on tropical and East Asian climate dynamics, water vapor transport, and radiative processes. The lab investigates long-term climate change signals using satellite remote sensing, reanalysis data, and radiative transfer modeling, particularly examining the interplay between atmospheric circulation, cloud radiative forcing, and water vapor. Key research directions include the intensification of the Hadley and Walker circulations, changes in upper-tropospheric humidity, and the development of advanced satellite intercalibration techniques for improved climate monitoring. The lab also addresses critical uncertainties in satellite-derived water vapor and radiative flux measurements, contributing to more accurate climate system assessments.
Professor Dongwook Kim's research lab specializes in computational biology and bioinformatics, with a focus on genomic analysis and evolutionary genomics in prokaryotes and fungi. The lab develops high-performance bioinformatics tools—such as EzAAI and the Universal Fungal Core Genes (UFCG) pipeline—for large-scale phylogenomic analysis, enabling accurate and efficient taxonomic classification. In parallel, the lab explores molecular mechanisms in cellular transport and post-transcriptional gene regulation, particularly involving miRNA and alternative polyadenylation. The lab also extends its expertise into intelligent transportation systems, designing adaptive control strategies for autonomous vehicles using advanced modeling and control theory.
Professor Jae Pil Kim's research lab specializes in the design and application of advanced organic optoelectronic materials, with a focus on phthalocyanine and triphenylamine-based dyes for next-generation display and solar energy technologies. The lab investigates structure-property relationships in π-conjugated molecules, particularly emphasizing fluorescence enhancement, solid-state emission stability, and intramolecular charge transfer processes. Key research directions include developing efficient dye-sensitized solar cells, high-performance color filters for LCDs, and light-converting films to optimize photosynthetic productivity in microalgae. The lab also explores practical lighting solutions, such as remote phosphor LED systems for medical applications like dental illumination.
Professor Jae Pil Kim's research lab specializes in the design and development of advanced optoelectronic materials, with a focus on organic semiconductors, luminescent dyes, and light-harvesting systems. Key research directions include triplet-triplet annihilation upconversion for efficient solar energy conversion, high-efficiency phosphors and encapsulation strategies for white LEDs, and the development of responsive dyes for optical sensing applications—particularly CO₂ detection using ionic liquids and BODIPY-based fluorophores. The lab also investigates the structure-property relationships of squaraine dyes and their integration into stable, high-transmittance polymer films for optoelectronic devices.
Professor Haejin Yoon's research lab focuses on cancer metabolism and cellular adaptation mechanisms, particularly how tumor cells rewire their metabolism to support rapid proliferation. The lab investigates nitrogen recycling, redox homeostasis, and metabolic reprogramming in cancer, with a strong emphasis on mitochondrial enzymes, amino acid metabolism, and stress response pathways. Using integrative approaches including metabolomics, mass spectrometry imaging, and genetic screening, the lab uncovers novel metabolic dependencies in aggressive cancers such as glioblastoma and NF1-mutant tumors. Their work reveals how metabolic plasticity and antioxidant defenses contribute to tumor survival and therapy resistance.
Professor Jung Eek Son's research lab specializes in advanced horticultural technologies, focusing on optimizing plant growth and quality in controlled environments such as greenhouses and plant factories. The lab investigates light environment design, nutrient solution management, and stress-induced phytochemical accumulation to enhance crop productivity and nutritional quality. Key research directions include light use efficiency, 3D plant modeling for light interception analysis, and the application of artificial lighting and environmental stressors to improve secondary metabolite production.
Professor Sun Kwang Kim's research lab focuses on the neural mechanisms underlying neuropathic pain, with a particular emphasis on cortical and glial plasticity in the primary somatosensory cortex (S1) following peripheral nerve injury. The lab investigates the dynamic structural and functional rewiring of synaptic circuits, including dendritic spine plasticity and astrocyte-neuron interactions, to uncover novel therapeutic targets. Using advanced in vivo imaging and behavioral assays, the lab explores how pathological changes in the brain contribute to chronic pain and evaluates the efficacy of interventions such as bee venom acupuncture and its bioactive components in alleviating chemotherapy-induced allodynia.
Professor Keum Taek Hwang's research lab specializes in the isolation, characterization, and application of bioactive compounds from underutilized agricultural by-products, with a focus on natural antioxidants, polyphenols, and functional lipids. The lab investigates the chemopreventive and anti-inflammatory properties of compounds such as ellagitannins, urolithins, and policosanols derived from sources like black raspberry seeds and grain sorghum. Key research directions include improving the stability and industrial application of natural waxes and oils, as well as exploring their health-promoting effects in cancer prevention and oxidative stress mitigation. The lab also emphasizes sustainable utilization of food processing waste streams for high-value nutraceutical and functional food applications.
Professor Ji Hye Huh's research lab focuses on metabolic and cardiovascular diseases, with a particular emphasis on the role of lipoprotein metabolism, especially remnant cholesterol, in the development of cardiovascular disease and type 2 diabetes in East Asian populations. The lab investigates novel biomarkers such as the fatty liver index (FLI) and serum creatinine as indicators of metabolic and organ health, and explores the impact of dietary factors—like sodium intake—on liver and metabolic disease progression. A key research direction involves longitudinal monitoring of metabolic syndrome status to improve risk prediction for diabetes and cardiovascular events.
Professor Hoon-Hee Ryu's research lab specializes in the development of advanced high-nickel layered oxide cathodes for lithium-ion batteries, with a focus on enhancing both energy density and long-term cycling stability. The lab explores innovative doping strategies, microstructural engineering, and surface modifications to suppress microcrack formation and improve interfacial stability. Key research directions include particle size control, crystallographic texture optimization, and the design of robust cathode-electrolyte interphases for next-generation electric vehicle batteries.
Professor Yonghyun Lee's research lab specializes in the development of biocompatible, stimuli-responsive nanomaterials derived from endogenous molecules—particularly bilirubin—for targeted therapeutic applications. The lab focuses on leveraging the intrinsic biological activities of bilirubin, such as antioxidant, anti-inflammatory, and anticancer properties, to design smart drug delivery systems that respond to tumor microenvironment stimuli like reactive oxygen species (ROS) or external triggers such as light. Key research directions include nanotherapeutics for cancer immunotherapy, liver fibrosis, and inflammatory diseases, with an emphasis on enhancing drug delivery efficiency and reducing systemic toxicity. The lab also pioneers innovative prodrug strategies to improve the pharmacokinetics and safety profiles of existing drugs like celecoxib.
Professor Sehhoon Park's research lab specializes in translational oncology, focusing on integrating advanced imaging, liquid biopsies, and genomic profiling to improve precision medicine in non-small cell lung cancer (NSCLC). The lab investigates tumor microenvironment dynamics, including tumor-infiltrating lymphocytes (TILs), PD-L1 expression, and intratumoral heterogeneity, using AI-powered spatial analysis and radiomic features from PET/CT. A key focus is leveraging circulating tumor DNA (ctDNA) and tissue-based next-generation sequencing (NGS) to identify actionable genomic alterations and predict immunotherapy response. The lab also explores combination therapies, such as anti-PD-L1 with chemotherapy and anti-angiogenics, in both treatment-naïve and resistant NSCLC populations.
Professor Sehhoon Park's research lab specializes in translational cancer genomics, focusing on identifying molecular biomarkers and therapeutic vulnerabilities in aggressive solid tumors. The lab investigates the immunogenomic and genomic landscapes of esophageal, pancreatic, and small cell lung cancers to guide biomarker-driven clinical trials and combination therapies. Key research directions include the role of DNA damage response pathways, cell cycle regulators, and circulating tumor DNA in predicting treatment response and recurrence. The lab integrates multi-omics approaches with clinical data to develop precision oncology strategies for high-risk cancers.
Professor Phuong V. Pham's research lab specializes in the design, synthesis, and application of two-dimensional (2D) nanomaterials and their heterostructures, with a focus on transition metal dichalcogenides, graphene, and black phosphorus. The lab explores advanced doping strategies, direct growth techniques, and green synthesis methods to develop high-performance materials for optoelectronics, photodetectors, and energy harvesting devices. Key research directions include engineering van der Waals heterostructures, defect control in 2D materials, and the development of composite nanomaterials with tailored functionalities. The lab emphasizes scalable, low-cost, and environmentally friendly fabrication processes to bridge the gap between nanomaterial innovation and real-world technological applications.
Professor Wook Park's research lab specializes in developing advanced anti-counterfeiting technologies and secure authentication systems using novel nanomaterials and physical unclonable functions (PUFs). The lab focuses on creating highly unique, irreproducible micro- and nanostructures—such as wrinkle-based codes, QR-coded microtaggants, and chaotic phosphorescent patterns—enabling robust product authentication in pharmaceuticals, IoT devices, and high-security labeling. By integrating optical decoding, DNA-based data storage, and self-organized 3D microstructures, the lab pioneers smart, scalable, and tamper-resistant security solutions for real-world applications.
Professor Jae-Jun Ryu's research lab specializes in biomaterials and tissue engineering for dental and orthopedic applications, with a focus on enhancing osseointegration and bone regeneration. Key research directions include the development of bioactive implant surfaces—particularly RGD-immobilized titanium substrates—and the optimization of growth factor delivery systems using bioceramics like biphasic calcium phosphate and calcium pyrophosphate as carriers for rhBMP-2. The lab also investigates the biological impact of environmental factors, such as tobacco compounds, on cell behavior, using in vitro models to understand molecular mechanisms affecting tissue repair. These interdisciplinary efforts aim to improve clinical outcomes in dental implantology and regenerative medicine.
Professor Beakcheol Jang's research lab specializes in wireless networking, machine learning, and intelligent data processing, with a focus on developing energy-efficient communication protocols, advanced indoor positioning systems, and deep learning-based text and signal classification techniques. The lab explores practical applications of reinforcement learning, such as Q-learning optimization, and leverages neural networks—including CNNs and LSTMs—for natural language processing and big data analytics. A key research direction involves enhancing the accuracy and efficiency of wireless systems, particularly in challenging environments like indoor spaces and sensor networks.
Professor Joon Yong Yoon's research lab specializes in fluid dynamics and environmental fluid mechanics, focusing on numerical modeling of complex flow behaviors in natural and engineered systems. Key research directions include the simulation of turbulent flows over dune-bed channels and the impact of bed roughness and ice covers on flow resistance and sediment transport. The lab also investigates advanced applications of hydrodynamic cavitation for environmental remediation, particularly in sludge treatment and waste minimization. Their work bridges computational fluid dynamics with practical environmental engineering solutions.