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 Kim Hyungdae's research lab specializes in advanced heat transfer phenomena, particularly focusing on nucleate boiling and critical heat flux (CHF) enhancement in nanofluids and structured surfaces. The lab investigates the interplay between surface micro/nanotexturing, nanoparticle deposition, and interfacial phenomena to understand and optimize boiling heat transfer performance. Key research directions include the role of surface wettability, porosity, and roughness at the nanoscale, as well as the development of in-situ diagnostic techniques such as laser interferometry and infrared thermometry for real-time microlayer analysis. The lab also explores fundamental mechanisms behind boiling crisis mitigation using microstructured and nanoparticle-coated surfaces.
Professor Sungsoo Park's research lab specializes in optimization and resource management in wireless and networked systems, with a strong focus on energy efficiency and spectral efficiency in cognitive radio networks. The lab investigates energy-harvesting enabled communication systems, where devices dynamically decide between spectrum sensing, energy harvesting, and transmission based on uncertain environmental conditions. Key research directions include optimal mode selection, spectrum sensing policies, and robust network design under uncertainty, often framed within stochastic and dynamic programming models. The lab also explores complex network optimization problems such as hub location and weapon-target allocation, emphasizing practical scalability and algorithmic innovation.
Professor Kun Woo Park's research lab specializes in neurological and musculoskeletal disorders, with a focus on cerebrovascular diseases, neurodegenerative conditions such as Alzheimer’s and Parkinson’s disease, and spinal/vertebral disorders like osteoporotic vertebral compression fractures. The lab integrates clinical imaging, stem cell biology, and advanced computational models—such as deep learning and recurrent neural networks—to explore disease mechanisms, functional outcomes, and potential therapeutic strategies. A key emphasis is placed on translational research, including cell-based therapies and sensory stimulation for neurodegenerative conditions.
Professor Yoonsoo Kim's research lab specializes in the development of advanced functional materials for next-generation electronic and energy applications. The lab focuses on designing novel conductive hydrogels, self-oscillating polymers, and high-performance nanomaterials through innovative synthesis and deposition techniques such as atomic layer deposition (ALD) and metal-organic chemical vapor deposition (MOCVD). Key research directions include flexible bioelectronics, sustainable energy storage materials—particularly high-capacity anodes for lithium-ion batteries—and stimuli-responsive materials based on the Belousov–Zhabotinsky reaction. The lab emphasizes materials with tailored mechanical, electrical, and interfacial properties for reliable performance in complex biological and electrochemical environments.
Professor Jae Seung Bang's research lab specializes in biomedical engineering and neurotechnology, focusing on the development of advanced neuroimaging and brain-computer interface systems. The lab investigates quantitative assessment of cerebrovascular revascularization, eye fatigue in 3D display environments, and multimodal physiological signal integration for human-computer interaction. Key research directions include EEG-based diagnostics, real-time gaze tracking with artifact suppression, and improving endovascular treatment outcomes for cerebral aneurysms using statistical and imaging techniques.
Professor Choi, In-Suk's research lab specializes in the design and engineering of advanced functional materials for next-generation flexible and stretchable electronics. The lab focuses on understanding and manipulating mechanical-electrical coupling in nanomaterials, with key research directions including strain-engineered conductive films, fatigue-resistant electrode architectures, and conformal device integration on complex 3D surfaces. By combining nanofabrication, mechanical characterization, and computational modeling, the lab develops materials and structures that maintain high performance under extreme deformation.
Professor In Ho Park's research lab specializes in microbial pathogenesis, with a primary focus on Streptococcus pneumoniae, particularly the molecular and genetic mechanisms underlying pneumococcal capsule diversity and virulence. The lab investigates the biochemical and genetic basis of serotype variation, including the identification of novel serotypes (e.g., 6C) and hybrid serotypes resulting from mutations in glycosyltransferases like WciP. They also explore the pathogenesis of non-typeable pneumococci, especially those with defective or absent capsules, using molecular typing and comparative genomics. Additionally, the lab contributes to translational research by examining host-pathogen interactions and host responses in infection, including the role of hypoxia and Hif-1α in mesenchymal stromal cell function.
Professor Sung-won Chae's research lab focuses on the intersection of otolaryngology, aging, and systemic health, with key research directions including the impact of lifestyle factors—such as smoking—on hearing impairment, the role of systemic diseases (e.g., chronic myelogenous leukemia) in sudden sensorineural hearing loss, and the association between hearing loss and postural instability in older adults. The lab also investigates inflammatory pathways in otologic conditions, particularly the anti-inflammatory effects of compounds like CAPE on cytokine production, and conducts epidemiological studies on antibiotic-resistant pathogens in chronic ear infections. These multidisciplinary efforts aim to uncover biological mechanisms linking sensory function, systemic disease, and age-related physical decline.
Professor In-Kyu Choi's research lab specializes in fungal biotechnology and sustainable bioprocessing, focusing on the application of white rot fungi for environmental remediation and the biotransformation of natural compounds. The lab investigates lignin degradation and biomodification using ligninolytic enzymes, explores the biocatalytic conversion of terpenes into high-value chemicals, and evaluates natural products—particularly from *Chamaecyparis obtusa*—for antimicrobial and antioxidant activities. Additionally, the lab is advancing renewable biofuels, including high-energy-density bio-aviation fuels derived from terpenes via Diels–Alder chemistry and catalytic upgrading.
Professor Ki-Joon Kim's research lab specializes in advanced materials and biomedical engineering, with a focus on developing functional nanomaterials for biosensing and medical applications. The lab investigates metal-organic frameworks (MOFs) for high-performance nonenzymatic glucose sensors, emphasizing electrocatalytic activity and chemical stability. In parallel, the lab explores biomedical interventions, particularly in optimizing postoperative pain management and reducing side effects such as nausea, vomiting, and pruritus through targeted drug delivery and receptor antagonism. The integration of materials science with clinical applications defines the lab’s interdisciplinary approach.
Professor Woo Young Jang's research lab specializes in orthopedic biomaterials and surgical innovation, focusing on developing advanced anti-infection and anti-fouling solutions for orthopedic implants and surgical applications. The lab investigates mechanical durability and biological performance of novel surface coatings, such as LOIS, to prevent surgical site infections and biofilm formation. Additionally, the lab explores clinical outcomes and biomechanical factors in pediatric and adult musculoskeletal disorders, including meniscal injuries and chronic ankle instability, with an emphasis on functional recovery and long-term joint health. Their work bridges materials science, surgical technology, and clinical outcomes research to improve patient safety and surgical efficacy.
Professor Hongsung Hwang's research lab focuses on the molecular and genetic mechanisms underlying chronic inflammatory and degenerative diseases, with a particular emphasis on the role of microbiome-host interactions, genetic polymorphisms, and systemic inflammation in conditions such as rheumatoid arthritis, osteoarthritis, and fibromyalgia. The lab investigates how host genetic variations—especially in genes like ACE and adiponectin—interact with environmental and microbial factors to influence disease susceptibility, progression, and health-related quality of life. A key research direction involves translating genetic and microbiological findings into clinical biomarkers and personalized medicine approaches for early diagnosis and intervention.
Professor Jeongho Han's research lab specializes in advanced materials processing and surface engineering, with a focus on superplasticity in medium-Mn steels, nanostructured surface layers via high-energy shot peening, and diffusion bonding of dissimilar metals such as titanium and stainless steel. The lab investigates microstructure-property relationships, grain refinement mechanisms, and high-temperature joining techniques for structural materials, aiming to develop cost-effective, high-performance alloys for aerospace, nuclear, and automotive applications. Key research directions include enhancing ductility and strength through microstructural design and surface engineering.
Professor Yun Soo Jang's research lab focuses on molecular oncology and translational cancer research, with a primary emphasis on identifying and characterizing molecular biomarkers and signaling pathways in non-small cell lung cancer (NSCLC). The lab investigates the roles of insulin-like growth factor-binding protein 3 (IGFBP-3), EGFR compound mutations, enolase-alpha, and CEACAM6 in tumor progression, treatment response, and patient prognosis. Utilizing advanced genomic technologies such as next-generation sequencing and single-cell RNA sequencing, the lab aims to uncover novel therapeutic targets and mechanisms of drug resistance in lung cancer.
Professor Wei Wang's research lab specializes in biomedical engineering and bio-inspired robotics, focusing on the molecular mechanisms of disease and the development of advanced soft robotic systems. Key research directions include understanding the role of proteins like TAFI and α-synuclein in fibrinolysis and Parkinson’s disease, respectively, as well as exploring immunological antigens such as H-Y in transplantation. The lab also pioneers innovative soft robotics using shape memory alloys and smart materials to create compact, lightweight, and highly adaptable robotic actuators for medical and industrial applications.
Professor Tae Hoon Kim's research lab specializes in medical imaging, biomedical engineering, and computational diagnostics, with a focus on advancing cardiovascular and oncological imaging through innovative MRI techniques and machine learning. The lab investigates quantitative cardiac MRI parameters, such as T1 mapping, to improve the assessment of myocardial tissue changes in heart disease. It also explores the application of artificial intelligence and quantum machine learning in enhancing diagnostic accuracy for skin cancer and cybersecurity threats, demonstrating a strong interdisciplinary approach. Additionally, the lab examines biomaterials and UV protection strategies, particularly using bio-based polymers like lignin and cellulose, to address environmental and health challenges related to UV degradation.
Professor Won-Jung Kim's research lab specializes in biomedical engineering and advanced materials, with a focus on spinal deformity treatment, regenerative medicine, and nanofabrication technologies. The lab investigates clinical conditions such as double thoracic scoliosis and juxtafusional degeneration, developing innovative surgical and interventional approaches like artificial disc replacement and ultrasound-guided prolotherapy. In parallel, the lab explores low-cost, high-efficiency fabrication methods for photonic devices, particularly metasurfaces using nanocomposite printing, aiming to enable scalable production of high-performance optical components. The integration of clinical applications with materials science and nanotechnology defines the lab’s interdisciplinary research direction.
Professor Sangwook Lee's research lab specializes in nanomaterials and nanomechanical systems, with a focus on developing advanced 2D materials and carbon-based nanodevices for high-precision sensing and next-generation electronics. Key research directions include graphene-based nanomechanical resonators for sub-attogram mass sensing, strain-engineered carbon nanotubes for Raman-based strain sensing, and novel non-volatile memory devices using electromechanical actuation. The lab also explores applications in biomedical diagnostics through ratiometric fluorescent probes and leverages machine learning and optimization techniques for improving energy-efficient electric machines.
Professor Jong-Woo Kim's research lab specializes in the design and fabrication of advanced nanomaterials for environmental and energy applications. The lab focuses on developing efficient photocatalysts, particularly titanium dioxide-based nanostructures modified with carbon materials and metal co-catalysts, for the degradation of organic pollutants and solar energy conversion. Key research directions include nanostructured photoelectrodes, surface engineering of semiconductors, and the integration of 2D materials like graphene oxide and reduced graphene oxide to enhance charge separation and catalytic activity. The lab also explores continuous-flow photocatalytic systems for practical environmental remediation applications.
Professor Gihak Lee's research lab specializes in clinical and developmental psychology, with a strong focus on mental health, well-being, and psychological adjustment across the lifespan. The lab investigates key factors influencing psychological resilience, such as stress, motivation, self-regulation, and emotional regulation, particularly in educational and transitional contexts like schools and universities. Major research directions include the impact of work-related stress on professional satisfaction among counselors, the role of motivation and self-regulation in career readiness among college students, and the interplay between attachment, emotional regulation, and psychological distress in young adults. The lab also develops and validates psychological assessment tools to support mental health promotion and early intervention in academic settings.