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 Deok-Soo Kim's research lab specializes in computational geometry, materials science, and advanced manufacturing, with a strong focus on modeling and simulation of complex physical systems. The lab investigates nanoparticle plasmonics, particularly the optical properties and strong coupling in metallic nanostructures like gold nanocubes, using high-resolution near-field imaging and electrodynamics simulations. It also develops innovative geometric algorithms—such as β-shapes, quasi-triangulations, and ellipse-based hollowing—for 3D shape modeling, additive manufacturing, and proximity analysis in particle systems. Additionally, the lab contributes to the design of high-performance electronic systems, including all-digital phase-locked loops for precise frequency control in integrated circuits.
Professor Jung A Kim's research lab focuses on the pathophysiology of metabolic syndrome, with a particular emphasis on insulin resistance, body composition abnormalities such as low muscle mass and abdominal obesity, and their interplay with cardiometabolic disorders. The lab investigates biomarkers like the triglyceride-glucose (TyG) index and adipokines to understand metabolic dysregulation and identify early indicators of type 2 diabetes and related conditions. A key research direction involves evaluating the clinical implications of metabolic health trajectories and the impact of emerging therapies such as GLP-1 receptor agonists on metabolic outcomes and safety profiles. The lab integrates population-based epidemiological data with clinical and molecular insights to advance precision approaches in metabolic disease prevention and management.
Professor Ayoung Suh's research lab focuses on understanding the psychological and social dynamics underlying digital work environments, with a particular emphasis on telework, gamification in organizations, and information credibility in digital spaces. The lab investigates how technology design, user experience, and organizational systems influence employee engagement, job satisfaction, and knowledge sharing. Drawing on theories such as technostress, cognitive evaluation theory, and the Elaboration Likelihood Model, the lab develops and tests theoretical models grounded in empirical data from global enterprises. Current research directions include the role of psychological needs in gamified systems, the sustainability of user engagement, and the impact of virtual work contexts on social network formation.
Professor Seong Yun Kim's research lab specializes in the development and characterization of advanced polymer nanocomposites with enhanced thermal transport properties. The lab focuses on designing thermally conductive materials through strategic control of filler morphology, interfacial engineering, and microstructure optimization, particularly using carbon-based nanomaterials such as graphene, carbon nanotubes, and carbon fibers. Key research directions include thermal percolation behavior, interfacial phonon scattering, and synergistic effects in hybrid filler systems to achieve high thermal conductivity with low filler loading. The lab also explores innovative processing techniques to preserve nanostructure integrity and improve thermal performance in aerogel and epoxy-based composites.
Professor Dong Hoon Suh's research lab focuses on understanding the molecular mechanisms underlying cancer progression, particularly in gynecologic malignancies such as ovarian, cervical, and endometrial cancers. The lab investigates cellular stress responses, including the unfolded protein response and mitochondrial apoptosis regulation, with an emphasis on targeting metabolic reprogramming and organelle stress pathways for therapeutic intervention. Key research directions include overcoming chemoresistance through metabolic modulation, exploring the role of mitochondrial permeability transition pore (MPTP) in tumor cell death, and developing novel diagnostic and therapeutic strategies using molecular imaging and targeted agents. The lab also contributes to advancing clinical oncology through translational research on staging systems, biomarkers, and targeted therapies such as bevacizumab and PARP inhibitors.
Professor Jiwon Kim's research lab specializes in the design, synthesis, and characterization of advanced nanomaterials for sustainable energy and optoelectronic applications. Key research directions include the development of perovskite nanocrystals and quantum dots for high-efficiency lighting and photovoltaic devices, as well as the creation of functional carbon materials—particularly mesoporous carbons and electrocatalysts—for electrochemical processes such as methane oxidation and energy conversion. The lab combines ultrafast spectroscopy, computational modeling, and materials engineering to understand and optimize carrier dynamics and surface reactivity in nanomaterials.
Professor Jiwon Kim's research lab specializes in energy-efficient systems and intelligent power management for emerging technologies, with a strong focus on battery optimization, hybrid energy storage, and renewable energy harvesting. The lab develops advanced hardware-software co-design solutions—such as reconfigurable battery architectures, deep learning-based state-of-charge and temperature estimation, and energy-efficient photovoltaic systems—to enhance system reliability and performance in drones, electric vehicles, and IoT devices. Their work emphasizes real-time adaptability, low-latency operation, and minimizing energy loss through innovative sensing, control, and machine learning techniques. The lab also explores intelligent automation in industrial environments using deep reinforcement learning for logistics optimization.
Professor Young-Suk Lee's research lab focuses on post-transcriptional gene regulation, particularly the dynamic modifications of messenger RNA, including poly(A) tail remodeling and mRNA demethylation. The lab investigates the enzymatic mechanisms and functional implications of RNA modifications such as guanylation and m6A demethylation, with a strong emphasis on their roles in mRNA stability, translation, and signaling pathways like WNT. Using integrative approaches combining biochemistry, molecular biology, and systems-level analyses, the lab explores how these RNA modifications influence cellular physiology and disease, including infertility and metabolic disorders. The work bridges fundamental RNA biology with translational applications in human health and agriculture.
Professor Ki Hyun Lee's research lab focuses on infectious diseases, particularly HIV management and antimicrobial resistance in clinical settings. The lab investigates the real-world effectiveness and safety of antiretroviral therapies like dolutegravir/lamivudine in Asian populations, with a strong emphasis on treatment outcomes, resistance patterns, and metabolic safety. Additionally, the lab addresses critical challenges in infection control, including multidrug-resistant bacterial outbreaks in COVID-19 isolation units and the role of environmental infection control measures. The research also extends to diagnostic innovations, such as Aspergillus cfDNA detection, and vaccine responses in immunocompromised patients, particularly those with autoimmune diseases.
Professor Kwangmin Shin's research lab specializes in the development of transition-metal-catalyzed C–H activation and functionalization methodologies, with a strong focus on selective and sustainable C–N and C–C bond formation. The lab pioneers innovative strategies using nitrogen-based reagents such as azides, diazonium salts, and acyl azides to enable direct functionalization of inert C–H bonds under mild conditions. Key advances include rhodium- and iridium-catalyzed C–H amination and arylation, as well as electrocatalytic approaches for synthesizing nitrogen-containing heterocycles like azetidines. The work emphasizes atom economy, functional group tolerance, and mechanistic understanding through experimental and computational studies.
Professor Jin-Young Park's research lab specializes in rehabilitation medicine and musculoskeletal surgery, with a primary focus on neuromuscular recovery and functional restoration in patients with neurological and orthopedic conditions. The lab investigates innovative therapeutic interventions such as mirror therapy for stroke recovery and early isometric strengthening for limb function, emphasizing evidence-based, patient-centered rehabilitation strategies. Recent work also explores surgical complications in arthroscopic procedures, particularly nerve injuries, highlighting the importance of surgical technique and device selection in minimizing iatrogenic risk. The lab integrates clinical research with practical therapeutic applications to improve outcomes in chronic stroke and upper-limb dysfunction.
Professor Jinhee Lee's research lab focuses on infectious disease immunology, particularly tuberculosis (TB) pathogenesis and host-pathogen interactions, with an emphasis on myeloid cell responses and T cell immunity. The lab also investigates adolescent suicide risk using large-scale epidemiological data and develops predictive models for mental health interventions. Additionally, the lab explores humanized mouse models to study human immune responses to infections like TB and HIV, aiming to improve translational research. A growing interest in applying artificial intelligence to dermatological and cosmetic science further expands the lab’s interdisciplinary scope.
Professor Bo-Hyoung Jang's research lab specializes in health services research with a focus on the integration and utilization of traditional and complementary medicine within national health care systems. The lab investigates the role of traditional medicine in primary health care and universal health coverage, particularly in low- and middle-income countries, as well as in national health insurance systems such as those in South Korea and Taiwan. Key research directions include health policy evaluation, disease burden assessment incorporating traditional medicine diagnoses, and health system-level analysis of utilization patterns and health insurance impacts. The lab employs large-scale national health insurance data to inform evidence-based policy making and health system strengthening.
Professor Jaehong Key's research lab specializes in the design and fabrication of advanced functional nanomaterials for biomedical applications, with a focus on nanotheranostics—integrating diagnostics and therapy. The lab develops custom-engineered nanoparticles, including polymeric and iron oxide-based nanoconstructs, to enhance imaging contrast, improve drug delivery efficiency, and enable targeted cell homing. Key research directions include shape- and stiffness-controlled nanoparticle synthesis, multimodal imaging agents, and intranasal delivery systems for regenerative medicine. The lab emphasizes the correlation between nanoparticle physicochemical properties and biological performance to optimize in vivo efficacy.
Professor June Young Choi's research lab specializes in advanced minimally invasive thyroid surgery, with a focus on robotic-assisted techniques such as the bilateral axillo-breast approach (BABA) for thyroidectomy and modified radical neck dissection (MRND). The lab investigates the expansion of robotic surgery to treat well-differentiated thyroid cancer with lateral neck metastasis, emphasizing precision, cosmesis, and surgical outcomes. Research also explores the integration of robotic systems to overcome limitations in instrument access and surgical dexterity, enhancing safety and efficacy in complex head and neck procedures.
Professor Jechang Jeong's research lab specializes in image processing and computer vision, with a strong focus on enhancing image quality in medical and remote sensing imaging. The lab develops advanced algorithms for speckle noise reduction in ultrasound and synthetic aperture radar (SAR) images using techniques such as speckle reducing anisotropic diffusion (SRAD), wavelet transforms, and guided filtering. Additionally, the lab explores deep learning-based solutions for image dehazing and efficient image compression using deep neural networks with ReLU activation functions. The overarching goal is to improve diagnostic accuracy in medical imaging and real-time performance in intelligent transportation systems.
Professor Hanbyoul Cho's research lab focuses on identifying and validating novel biomarkers and therapeutic targets in gynecological cancers, particularly epithelial ovarian and cervical cancers. The lab employs integrated molecular approaches, including gene expression profiling, immunohistochemistry, and functional studies using in vitro and in vivo models, to explore the roles of molecules such as GLUT-1, LCN2, API5, ALDH1A2, and STIP1 in cancer progression and patient outcomes. A central theme is the translation of molecular findings into clinically relevant prognostic indicators and potential therapeutic strategies, with a strong emphasis on metabolism, stress response, and epigenetic regulation in tumor biology.
Professor Won Jai Lee's research lab specializes in regenerative medicine and fibrosis biology, with a focus on the molecular mechanisms underlying pathological scarring, particularly keloids and post-surgical fibrosis. The lab investigates key signaling pathways involving HMGB1, TGF-β1, and Wnt/β-catenin in fibroblast activation and endothelial-to-mesenchymal transition, aiming to develop novel therapeutic strategies using growth factors, anti-inflammatory agents like PDRN, and gene therapy with decorin. Their work also extends to craniofacial reconstruction and microsurgical techniques, particularly in pediatric craniosynostosis using distraction osteogenesis.
Professor Clément Cabanetos' research lab specializes in the design and synthesis of advanced organic semiconductors and functional materials for optoelectronic and biomedical applications. Key research directions include the development of π-conjugated polymers and small molecules for organic solar cells, with a focus on molecular engineering to control self-assembly, charge transfer, and film morphology. The lab also explores novel materials for photodynamic therapy, particularly G-quadruplex-targeting photosensitizers, combining fluorescence imaging with therapeutic function. Additionally, they investigate click chemistry and post-polymerization modifications to create tunable, cross-linkable materials with tailored optoelectronic and optical properties.
Professor Myung Jun Kim's research lab specializes in the fundamental understanding and control of anisotropic growth mechanisms in metal nanostructures, particularly copper, through electrochemical and surface science approaches. The lab investigates how organic capping agents and halide ions selectively influence facet-specific deposition kinetics, enabling precise shape control for applications in nanoelectronics, catalysis, and energy conversion. By combining single-crystal electrochemistry, in situ electrochemical analyses, and advanced characterization, the lab uncovers the molecular-level origins of nanostructure formation and develops strategies for bottom-up fabrication of functional nanomaterials. Their work also extends to electrochemical processes in nanostructured electrodes, such as Cu nanowire felts, for high-productivity electrocatalysis and energy storage devices.