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 Hoeil Chung's research lab specializes in advanced spectroscopic techniques and nanomaterials for analytical and environmental applications. The lab focuses on developing and optimizing near-infrared (NIR) and Raman spectroscopy for real-time, non-invasive monitoring in complex systems such as bioreactors, petroleum products, and pharmaceuticals. A key research direction involves designing functional nanomaterials—particularly graphene-based and gold nanoparticle-embedded hydrogels—for enhanced sensing performance, including selective doping and surface-enhanced Raman scattering (SERS). The lab also emphasizes improving spectral reliability and sample representation through innovative optical and material engineering strategies.
Shen Ye教授の研究室は、界面における分子構造と動的挙動を高感度な表面選択的分光法、特にSum Frequency Generation(SFG)を核に、液体・固体界面や自己組織化膜の分子レベルの構造を解明する研究を行っています。主に、酸化物半導体・金属・ポリマー表面における水分子の配向、有機分子の自己組織化膜、電極界面での赤酸化反応や吸着挙動の分子機構を、時間分解・電気的・pH依存的制御を含めたin situ・in situ SFGを用いて解明しています。その応用は、太陽電池、リチウムイオン電池、バイオセンサー、環境ホルモンの界面挙動など、エネルギー・環境・バイオ分野にまで広がっています。
Yasuhiro Takashima教授の研究室は、ヒト多能性幹細胞の状態制御とその分子機構の解明を柱としています。特に、ナノガストロインテンション(NANOG)とKLF2の一時的発現によってヒト幹細胞を「ナーヴィー状態」に再プログラミングする技術を開発し、エピジェネティック・メタボリズムの再編と、ERKシグナル非依存の自己複元を実現しました。また、ヒト由来のレトロウイルス的要素(HERV-H)が多能性維持に果たす役割についても解明を進めています。
Yukikazu Takeoka教授の研究室では、光の干渉を利用した構造色に着目し、角度に依存しない非褪色性の色素材料の開発を進めています。主にシリカコロイド粒子を用いた非周期的アモルファス構造を制御することで、広視野角で色が安定する反射型ディスプレイやセンサー材料の創出を目指しています。また、エラストマーをマトリクスに用いたソフトロボット材料や、温度応答性を示す多孔質ゲルの光学特性制御についても革新的な研究を展開しています。
Professor In-Ho Jung's research lab specializes in computational thermodynamics and materials modeling, focusing on the thermodynamic behavior of complex oxide and metal systems relevant to high-temperature metallurgical processes. The lab develops advanced thermodynamic databases and models—such as the Modified Quasichemical Model—for molten slags, steel, inclusions, and refractories, enabling accurate prediction of phase equilibria in multi-component systems. Their work supports industrial applications in steelmaking, particularly in optimizing deoxidation processes and understanding inclusion formation. The lab emphasizes the integration of experimental data with computational tools to enable predictive simulations under realistic processing conditions.
Professor Hyewon Youn's research lab specializes in the development of advanced nanocarriers and imaging technologies for precision medicine, with a focus on lipid nanoparticles (LNPs) and exosomes as delivery systems for RNA therapeutics and gene therapy. The lab integrates molecular imaging techniques—such as PET, optical imaging, and multimodal in vivo imaging—to track the biodistribution and therapeutic efficacy of these nanocarriers in preclinical models of cancer and genetic diseases. A key research direction involves optimizing the delivery and targeting of nucleic acid-based therapeutics while minimizing off-target effects and immune activation. The lab also investigates metabolic targets, such as hexokinase-II, to enhance the efficacy of cancer therapies in hepatocellular carcinoma.
Professor Gregory I. Peterson's research lab specializes in the design and development of smart, stimuli-responsive polymers and advanced manufacturing techniques for biomedical and functional materials. Key research directions include the creation of photo- and mechanochromic polymers, self-immolative polymers (SIPs) for amplified molecular responses, and biodegradable shape memory polymers for minimally invasive medical applications. The lab also pioneers innovative additive manufacturing strategies—such as vat photopolymerization with spatially controlled cross-linking and 3D printing of functionalized polymers—enabling precise control over material properties and performance. These efforts integrate polymer synthesis, materials characterization, and advanced fabrication to address challenges in healthcare and responsive materials engineering.
Professor Mi Seon Han's research lab specializes in pediatric infectious diseases, with a focus on viral and bacterial pathogenesis in children. The lab investigates the virological and immunological aspects of SARS-CoV-2 infection, particularly in pediatric populations, including viral persistence in feces and saliva, asymptomatic transmission, and immune responses. It also explores antimicrobial resistance mechanisms in pediatric bloodstream infections, such as piperacillin-tazobactam resistance in *Klebsiella pneumoniae*. The lab integrates clinical virology, microbiology, and molecular diagnostics to inform public health strategies and vaccine development.
Professor Sung Soo Kim's research lab specializes in regenerative medicine and neuroprotection, with a focus on cell-based therapies and neurotrophic factors for pediatric neurological disorders such as cerebral palsy. The lab investigates the synergistic effects of allogeneic umbilical cord blood and recombinant human erythropoietin (rhEPO) to enhance neural repair and functional recovery. Additional research interests include ocular imaging, particularly subfoveal choroidal thickness measured via enhanced depth imaging optical coherence tomography, and its relationship with ocular perfusion and refractive status in various populations. The lab integrates clinical trials with advanced imaging techniques to translate findings into practical therapeutic strategies.
Professor Kwan Soo Ko's research lab specializes in microbial genomics and molecular epidemiology, focusing on the population structure, evolutionary dynamics, and antimicrobial resistance mechanisms of pathogenic bacteria such as *Acinetobacter baumannii*, *Staphylococcus aureus*, and *Bacillus* species. The lab employs molecular typing techniques like multilocus sequence typing (MLST) and gene sequencing to investigate genetic diversity, horizontal gene transfer, and the emergence of multidrug-resistant strains. A key research direction involves developing molecular differentiation methods for accurate pathogen identification and guiding effective antimicrobial therapy.
Hayashi教授の研究室では、ヘモグロビンやミオグロビンをタンパク質工学のプラットフォームとして活用し、人工ヘムを用いたヘムタンパク質の再構成によって、新しい機能を導入する研究を展開しています。特に、ヘムのプロピオン酸鎖を化学的に修飾することでタンパク質表面に特異的な結合ドメインを形成し、電子移動反応や基質認識、触媒活性の制御を実現しています。また、フェロエレクトリック酸化チタン膜のスルゲル法による薄膜作製や、二鉄カルボニル錯体を用いた水素発生触媒の開発など、バイオ無機化学と材料科学の融合研究も進めています。
横山哲也教授の研究室は、高周波電源とヘリウムガスの希釈を用いた大気圧ガス放電の安定化機構を解明しており、誘電体板の挿入がパルス的放電を形成し、アーク放電への遷移を抑えるメカニズムを明らかにしている。また、ウラン・トリウニウムの分離技術の開発や、火山噴出物における放射性核種の崩壊系列解析を通じて、マグマの生成・移動プロセスの時間スケールを解明する研究も展開している。これらの研究は、プラズマ工学と地球化学の境界領域に位置し、材料科学や環境科学への応用も視野に入れている。
Professor Jang Wook Choi's research lab specializes in advanced materials and electrolyte engineering for next-generation batteries, with a strong focus on lithium-ion and lithium-metal batteries. The lab develops innovative solutions such as polydopamine-functionalized separators, silicon-based anodes with graphene encapsulation, and novel fluorinated ether electrolytes to enhance energy density, cycle life, and safety. Key research directions include interface engineering, dendrite suppression, and designing multifunctional materials that simultaneously improve ionic conductivity, mechanical stability, and electrochemical performance. The lab bridges fundamental materials science with practical battery applications, targeting scalable and commercially viable energy storage technologies.
Professor Chang Moo Kang's research lab specializes in pancreatic and biliary tract diseases, with a strong focus on surgical oncology, minimally invasive and robotic surgery, and the pathological and clinical characterization of rare pancreatic and biliary tumors such as solid pseudopapillary tumors (SPTs) and choledochal cysts. The lab emphasizes standardized pathological reporting, long-term survival outcomes, and the physiological and metabolic consequences of major pancreatic and biliary surgeries, including pancreaticoduodenectomy and distal pancreatectomy. Recent work also explores the application of robotic-assisted techniques in complex hepatobiliary and pancreatic procedures.
Professor Youngcheol Kang's research lab focuses on enhancing safety, sustainability, and performance in the construction industry through technology-driven solutions. Key research directions include fall accident prevention, green building implementation, and the integration of information technology and the Internet of Things (IoT) for improved project and site safety. The lab emphasizes data-driven analysis, performance measurement, and pre-project planning to address systemic challenges in construction management.
Professor Kai-Kit Wong's research lab specializes in advanced wireless communication systems, with a strong focus on innovative antenna technologies and spectral efficiency enhancement for next-generation mobile networks. The lab explores fluid antenna systems (FAS) that enable dynamic spatial reconfiguration to improve system reliability and capacity, particularly in challenging propagation environments. Research also extends to 6G mobile communications, emphasizing high energy and spectral efficiency, robust signal processing, and reliable performance over fading channels. The lab combines theoretical analysis with practical system design to address fundamental limits in wireless connectivity.
Professor Ji-Hun Seo's research lab specializes in stimuli-responsive soft materials, with a focus on supramolecular polymers, dynamic polymer networks, and functional biomaterials. The lab develops advanced materials such as polyrotaxane-based systems, conductive elastomers, and polymer electrolytes that exhibit tunable mechanical properties, reversible responsiveness, and enhanced performance in biomedical and energy applications. Key research directions include designing dynamic interfaces for cell-material interactions, creating stretchable ionic conductors, and engineering smart elastomers and solid electrolytes through supramolecular architecture.
Professor Sang J. Chung's research lab specializes in the development of advanced nanomaterials and bioactive molecules for biomedical applications, with a strong focus on drug delivery, enzyme inhibition, and biosensing. The lab explores stimuli-responsive polymeric nanoparticles for controlled and theranostic drug delivery, investigates small molecule inhibitors targeting key metabolic and signaling enzymes such as cytidine deaminase and protein tyrosine phosphatases, and develops novel nanomaterial-based platforms for ultrasensitive detection of biologically relevant molecules like hydrogen peroxide. A central theme is the design of smart, eco-friendly nanomaterials with enzyme-mimicking activities for point-of-care diagnostics and therapeutic intervention.
Professor Chunggi Baig's research lab specializes in computational materials science and molecular dynamics simulations, focusing on the design and characterization of advanced functional materials inspired by biological systems. The lab investigates hierarchical and gradient-structured materials—particularly for applications in flexible electronics, tactile sensing, and antifouling coatings—by leveraging nonequilibrium molecular dynamics to understand complex rheological and mechanical behaviors at the molecular level. Key research directions include the development of bioinspired electronic skins, stress and electron transfer control in gradient materials, and the synthesis and simulation of stimuli-responsive polymers such as PEG-based block copolymers with enhanced surface properties.
Professor JongSerl Chun's research lab specializes in adolescent mental health and behavioral health, with a focus on substance use, addiction, and psychological adjustment among vulnerable youth populations. The lab investigates risk and protective factors related to e-cigarette use, Internet addiction, smoking among opioid-dependent individuals, and stress-coping dynamics in runaway and international students. Using mixed-methods and meta-analytic approaches, the lab emphasizes culturally informed, ecologically grounded interventions to improve mental health outcomes.