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 Suckchang Hong's research lab specializes in the development of sustainable and efficient catalytic methodologies for the synthesis of complex organic molecules, with a strong focus on transition-metal-catalyzed C–H functionalization, transfer hydrogenation, and heterocycle formation. The lab pioneers iron-catalyzed transformations that avoid stoichiometric oxidants or reductants, emphasizing atom economy, functional group tolerance, and green chemistry principles. Key research directions include the synthesis of biologically relevant heterocycles such as quinazolinones, benzoxazoles, benzimidazoles, and quinoxalines, as well as the discovery of novel anticancer agents targeting critical pathways like STAT3 in triple-negative breast cancer.
Professor Aesun Shin's research lab focuses on epidemiological and molecular investigations into the etiology and prevention of gastrointestinal cancers, particularly gastric and colorectal cancers, with an emphasis on population-based cohort and case-control studies in Asian populations. The lab explores the roles of environmental, dietary, and genetic factors—such as *H. pylori* infection, dietary nutrients (e.g., calcium, fiber), and genetic polymorphisms (e.g., TGF-beta1) —in cancer development. A key research direction involves understanding etiological heterogeneity across colorectal cancer subsites (proximal colon, distal colon, rectum) and identifying modifiable risk factors for early intervention. The lab also examines psychological comorbidities in chronic conditions, such as atopic dermatitis in adolescents, highlighting a growing interest in the intersection of physical and mental health in chronic disease.
Professor Hainan Sun's research lab specializes in the design and development of advanced electrocatalysts for sustainable energy conversion, with a primary focus on electrochemical water splitting for green hydrogen production. The lab explores novel active sites—particularly high-valence metal cations and unconventional catalytic centers—in both noble and non-noble metal-based materials to enhance catalytic activity, selectivity, and durability. A key research direction involves bridging fundamental electrocatalysis with industrial-scale applications, including the use of small molecules as alternative substrates to improve energy efficiency and enable simultaneous pollutant degradation or chemical synthesis. The lab also investigates the biological interactions of nanomaterials, particularly nanoparticle-induced cytotoxicity, to guide the safe design of nanomaterials for energy and biomedical applications.
Professor Chang-Soo Han's research lab specializes in the development of advanced nanomaterials and flexible electronic systems inspired by biological sensory mechanisms. The lab focuses on creating high-performance transparent conductive films, quantum dot nanocomposites, and wearable multimodal sensors for biomedical and human-machine interface applications. Key research directions include the scalable synthesis of II-VI and III-V semiconductors, self-powered sensing devices, and graphene-based transparent and flexible electronics. The lab emphasizes materials innovation for real-world applications in health monitoring, smart textiles, and next-generation optoelectronics.
Professor Ji Hye Kim's research lab focuses on molecular mechanisms underlying skin health, aging, and cancer progression, with a strong emphasis on identifying bioactive compounds from natural sources—particularly ginseng derivatives—for therapeutic and cosmetic applications. The lab investigates signaling pathways involved in inflammation, oxidative stress, and autophagy, as well as the regulatory roles of microRNAs and epigenetic enzymes such as PRMTs in disease development. Key research directions include the development of ginseng-derived nanoformulations and natural compounds for skin protection and anti-aging, and exploring their molecular targets in cancer and metabolic diseases. The lab integrates molecular biology, cell signaling, and translational research to advance cosmeceutical and pharmaceutical applications.
Professor Hiroyuki Katayama's research lab specializes in advanced membrane technologies for water purification, with a focus on developing novel nanostructured materials for efficient virus removal and concentration. The lab pioneers innovative approaches using liquid crystal-based membranes with precisely controlled nanoscale pore structures to achieve exceptional virus rejection, particularly for pathogens like the Qβ bacteriophage. Another key research direction involves optimizing virus recovery from complex water matrices using charged membranes, significantly improving detection sensitivity for environmental and public health monitoring. The lab's work bridges materials science, environmental engineering, and virology to address critical challenges in water safety and treatment.
Professor Naoki Komatsu's research lab specializes in the development and functionalization of nanodiamonds and other nanomaterials for biomedical applications. The lab focuses on creating biocompatible, water-soluble, and stealth nanoparticles through advanced surface engineering, particularly using hyperbranched polyglycerol (PG) grafting to minimize immune recognition and enhance targeting. Key research directions include designing stimuli-responsive drug delivery systems, improving nanoparticle stability in physiological environments, and exploring the use of FRET-based biosensors for real-time monitoring of cellular signaling. The lab also investigates alternative surface coatings to PEG, such as PG, to overcome limitations in protein resistance and in vivo performance.
Professor Huakang Bian's research lab specializes in the design, synthesis, and characterization of advanced high-entropy and superalloy materials with a focus on microstructure engineering for enhanced high-temperature performance. The lab explores novel nanostructured phases, such as coherent γ′ precipitates and high-entropy nanoscale phases, to improve creep resistance and thermal stability in superalloys and refractory high-entropy alloys. Key research directions include understanding the role of atomic segregation, local disorder, and heterogeneous nucleation in microstructure evolution during solidification and additive manufacturing.
Professor Pil Joon Seo's research lab focuses on plant molecular biology and stress adaptation, with a central emphasis on how transcription factors and epigenetic regulators coordinate plant responses to environmental stresses such as drought, cold, and pathogen attack. The lab investigates key signaling networks involving phytohormones like abscisic acid (ABA), auxin, and salicylic acid, particularly through transcription factors such as MYB96 and clock components like CCA1. A major research direction involves understanding the molecular mechanisms of cellular reprogramming, including dedifferentiation and callus formation, with a focus on epigenetic regulation by histone modifiers such as ATXR2. The lab also explores the integration of circadian rhythms with stress responses, revealing how biological clocks modulate plant resilience.
Professor Young Joo Park's research lab specializes in molecular oncology and thyroid cancer biology, with a focus on identifying genetic and molecular markers that improve risk stratification and prognosis prediction in differentiated thyroid cancer (DTC). The lab investigates the synergistic effects of key mutations such as BRAF V600E and TERT promoter mutations, as well as the role of immune-related genes like CTLA-4 in autoimmune thyroid diseases. Additionally, the lab explores diagnostic biomarkers—such as galectin-3, HBME-1, and CK19—through immunohistochemical analysis to enhance the accuracy of distinguishing benign from malignant thyroid nodules. The research also extends to the clinical implications of subclinical hypothyroidism on cardiovascular outcomes and mortality, particularly in high-risk populations.
Professor Dong Chan Kim's research lab specializes in the development of advanced nanomaterials and flexible, stretchable, and ultrathin electronic systems for next-generation wearable and implantable devices. The lab focuses on integrating novel materials such as graphene, quantum dots, perovskites, and nanowires into high-performance optoelectronic and electronic devices with exceptional mechanical compliance and functionality. Key research directions include the design of ultrathin, skin-conformal displays, stretchable transistors, and high-sensitivity photodetectors through innovative fabrication techniques like transfer printing and spin-on-patterning. The lab emphasizes materials engineering, device integration, and scalable processing for real-world applications in healthcare, human-machine interfaces, and smart electronics.
Professor Junghye Lee's research lab specializes in data-driven technology innovation and intelligent systems, focusing on advanced analytics for healthcare informatics, blockchain technology trends, and gene expression data mining. The lab develops cutting-edge methods in natural language processing, topic modeling, and knowledge graph construction to support technology opportunity discovery and federated data analysis in a privacy-preserving manner. Key research directions include deep learning-based text mining, feature selection in high-dimensional biological data, and the integration of multi-source data (e.g., technology, startups, and investor information) for strategic decision-making. The lab also emphasizes practical applications in precision medicine, Industry 4.0, and emerging technology forecasting.
Professor Himanshu Kumar's research lab specializes in innate immunity and host-pathogen interactions, with a focus on the molecular mechanisms underlying pathogen recognition and immune activation. The lab investigates pattern recognition receptors (PRRs) such as RIG-I, Mda5, NLRP3, and their downstream signaling adaptors like IPS-1, in shaping antiviral and antifungal immune responses. A key area of interest is the role of microRNAs—both host and viral—in fine-tuning innate immune responses and immune evasion strategies. The lab also explores how microbial components such as viral RNA and fungal beta-glucan activate inflammasomes and cytokine production to bridge innate and adaptive immunity.
Professor Nguyen Tuan Hung's research lab specializes in the theoretical and computational investigation of low-dimensional quantum materials for advanced energy conversion applications. The lab focuses on optimizing thermoelectric performance in two-dimensional materials like monolayer InSe and carbon nanotubes through quantum confinement, band engineering, and strain engineering. Key research directions include understanding the interplay between electronic structure, dimensionality, and transport properties to enhance power factor and figure of merit (ZT). The lab also contributes to quantitative phase imaging theory, linking optical coherence to imaging artifacts in microscopy.
Professor Ohsang Kwon's research lab specializes in dermatological therapeutics and hair loss disorders, with a strong focus on identifying and evaluating novel pharmacological and biophysical interventions for alopecia areata, androgenetic alopecia, and other hair cycle-related conditions. The lab investigates molecular mechanisms underlying hair growth regulation, particularly through pathways such as Wnt/β-catenin and IGF-1, and explores the therapeutic potential of drugs like baricitinib, valproic acid, minoxidil, and retinoids. Additionally, the lab examines the biological effects of non-ionizing radiation, such as radiofrequency, on dermal papilla cells, aiming to uncover safe and effective stimulation methods for hair regeneration. Their work combines clinical trials with in vitro and ex vivo models to translate basic science findings into practical dermatological treatments.
Professor Deokjung Lee's research lab at Ulsan National Institute of Science and Technology (UNIST) specializes in computational reactor physics, with a focus on advanced nuclear reactor analysis, neutron transport, and core simulation. The lab develops high-fidelity simulation tools such as the STREAM and RAST-K codes for pressurized water reactors (PWRs), and applies these to whole-core depletion, resonance self-shielding, and advanced fuel cycle analysis. Research also extends to molten salt breeder reactors (MSBRs), where online reprocessing and equilibrium fuel cycles are modeled using MCNP6 and CINDER90. The lab emphasizes innovation in numerical methods, including improved resonance treatment, detector sensitivity modeling, and efficient iterative solvers for neutron diffusion problems.
Professor Moonhyun Oh's research lab specializes in the design, synthesis, and functional transformation of metal-organic frameworks (MOFs) and coordination polymers with tailored structures and properties. The lab focuses on advanced strategies such as MOF-on-MOF growth, ion-exchange transformations, and templated etching to create hybrid, hollow, or core-shell MOF architectures with precise control over morphology and composition. These materials are engineered for applications in catalysis, sensing, and energy-related technologies, emphasizing structural complexity and functional versatility.
Professor Chang Won Lee's research lab focuses on the intersection of healthcare systems, digital transformation, and emerging technologies. The lab explores strategic information resource planning, supply chain performance, and the application of advanced technologies such as artificial intelligence, the metaverse, and IoT in healthcare and industrial settings. Key research directions include techno-stress in digital work environments, the role of ICT in organizational productivity, and the development of decision-support models for sustainable healthcare operations.
Professor Mitsuhiro Nakamura's research lab specializes in advanced radiation oncology, focusing on improving the accuracy and efficiency of radiotherapy through innovative imaging and dosimetry techniques. The lab investigates respiratory motion management in stereotactic body radiotherapy (SBRT), particularly using 4D CT and real-time imaging guidance to optimize target volume delineation. They also develop and validate advanced dose calculation algorithms—such as AXB and XVMC—that enhance dosimetric accuracy while maintaining computational efficiency for clinical implementation. Their work further extends into predictive modeling using dosiomics to forecast radiation-induced toxicity, such as pneumonitis, improving personalized treatment planning.
Professor Makoto Yamashita's research lab specializes in the development of novel bioactive compounds, particularly antiviral agents targeting influenza neuraminidase, with a focus on long-acting inhibitors such as laninamivir and its prodrug CS-8958. The lab also conducts advanced organometallic chemistry, exploring the synthesis and reactivity of boryl and borane-based reagents, including boryl Grignard reagents and acylboranes, for use in organic synthesis. Structural and computational studies on pentacoordinate carbon and boron compounds, especially those with anthracene-based ligands, further highlight the lab’s expertise in main-group chemistry and stereochemical control. The integration of synthetic methodology, structural characterization, and biological evaluation defines the lab’s interdisciplinary approach.