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 Thathan Premkumar's research lab specializes in the design, synthesis, and application of functional nanomaterials with a focus on sustainable and green chemistry approaches. The lab develops innovative, eco-friendly methods for synthesizing nanoparticles—such as gold, silver, and copper oxide—using biocompatible agents, surfactants, or mechanochemical techniques under mild, solvent-free, or aqueous conditions. Key research directions include the controlled synthesis of nanomaterials with tailored size, shape, and surface properties for biomedical applications, particularly in cancer therapy, and the development of biomass-derived polymers like polyurethanes for advanced materials. The lab emphasizes green synthesis, supramolecular templating, and applications in nanomedicine and sustainable materials.
Professor Taejoon Kang's research lab specializes in the development of advanced nanomaterials and plasmonic platforms for highly sensitive biosensing and environmental monitoring. The lab focuses on surface-enhanced Raman scattering (SERS)-based detection systems, integrating nanomaterials such as gold nanowires, nanopopcorn, and metal-organic frameworks (MOFs) for applications in infectious disease diagnostics, antimicrobial resistance detection, and cancer biomarker identification. Key research directions include the design of multiplexed, quantitative, and field-deployable sensors for clinical and food safety applications.
Professor Yunseok Choi's research lab specializes in advanced energy storage systems and thermal management technologies, with a strong focus on lithium-ion batteries, rechargeable seawater batteries, and fire-safe battery designs. The lab develops cutting-edge machine learning and deep learning models—such as D-GELS—for accurate state-of-health (SOH) prediction across diverse battery chemistries and operating conditions. It also investigates thermal enhancement using metal foams for high-power electronics cooling and pioneers innovative fire suppression strategies through Water-in-Battery (WiB) concepts. The lab bridges materials science, electrochemistry, and data-driven modeling to enable safer, smarter, and more sustainable energy solutions.
Professor Ruchir Priyadarshi's research lab specializes in developing sustainable, biodegradable packaging solutions using biopolymers enhanced with natural and nanomaterial-based functional additives. The lab focuses on creating intelligent, pH-responsive, and active food packaging systems that incorporate natural colorants and nanomaterials such as sulfur quantum dots and silver nanoparticles for real-time quality monitoring and extended shelf life of perishable foods. Key research directions include the synthesis and characterization of eco-friendly nanofillers, antimicrobial and antioxidant functionalization of biopolymer films, and the application of these advanced materials in preserving fruits, meat, seafood, and dairy products.
Professor SeungJin Bae's research lab specializes in health technology assessment, regenerative medicine, and biosimilar therapeutics, with a strong focus on health policy, cost-effectiveness, and real-world outcomes in advanced medical treatments. The lab investigates the implementation challenges and policy implications of innovative therapies such as CAR T-cell therapy, biosimilar infliximab, and advanced regenerative medicine under Korea’s ARMAB legislation. Research also extends to clinical epidemiology, including rare conditions like chromonychia and PPU, emphasizing patient-specific factors such as age, comorbidities, and adverse event profiles. The lab bridges clinical science with health economics and regulatory policy to support safe, effective, and sustainable adoption of cutting-edge medical technologies.
Professor Jin Hur's research lab specializes in renewable energy integration, with a primary focus on improving the reliability and stability of power systems through advanced forecasting techniques. The lab develops machine learning and statistical models for short-term and day-ahead forecasting of wind and solar power, addressing the inherent variability and uncertainty of renewable energy sources. Emphasis is placed on ensemble methods, probabilistic modeling, and spatial-temporal data analysis to enhance grid integration and operational efficiency.
Professor Ji-Hyung Park's research lab specializes in watershed biogeochemistry, focusing on the impacts of climate change, land use, and anthropogenic stressors on carbon and nutrient dynamics in river systems. The lab investigates biogeochemical cycles in forested and urbanized watersheds, with particular emphasis on dissolved organic matter, greenhouse gas emissions (CO₂, CH₄, N₂O), and hydroclimatic controls during monsoon and snowmelt periods. Using field measurements, isotopic tracers, and optical properties of dissolved organic matter, the lab advances understanding of how environmental changes alter water quality and ecosystem function in Asian and North American river systems.
中澤清隆教授の研究室は、素粒子物理学と生体工学の分野で革新的な研究を展開しています。KEKの実験で観測された中性子と窒素14の強い結合状態や、超新星爆発に類似した核反応のメカニズム解明を目指しており、同時に人工肝臓支援システムの臨床応用に向けた前臨床研究も進めています。特に、多孔質フォームに包埋したヘパトサイトを用いた画期的な肝機能支援デバイスの開発が特徴です。
Kamitani教授の研究室は、脳の活動を機械学習を用いて解読することで、夢やイメージの内容を脳画像から再構築する画期的な研究を推進しています。特に、fMRIデータと深層ニューラルネットワーク(DNN)の階層的特徴を結びつけることで、睡眠時の視覚的イメージや感情の脳内表現を解明しています。この研究は、脳の情報処理メカニズムと人工知能の類似性を解明する「脳とDNNの対応性」の理解を深める基盤を提供しています。
Hashimoto教授の研究室は、脳内におけるペプチドホルモンPACAP(後pituitary腺リラス活性化ペプチド)の神経機能とストレス応答への役割を、遺伝子ノックアウトマウスを用いた行動・神経内分泌・分子生物学的手法で解明しています。特にPACAPがうつ様行動や不安行動、ストレス応答、神経可塑性に与える影響を、神経伝達物質系(セロトニン系など)と連携して研究しています。また、PACAPの神経保護的・栄養的機能や、神経疾患・精神疾患における意義についても探求しています。
Tiantian Zhang教授の研究室は、物質の電子構造と格子振動(フォノン)におけるトポロジカルな性質に注目し、特にWeyl点やノードラインを有する新規トポロジカル材料の理論的予測と実験的実証を進めています。特に、音響・光学フォノンに存在する「スピン-1 Weyル点」と「電荷-2ディラック点」の発見や、対称性保護されたヘリカルノードラインの実現など、ボソン的励起状態におけるトポロジカル物性の解明を主眼としています。また、第一原理計算と高分解能分光法を融合した手法で、ZrSiSなどの材料におけるディラック・ノード面とノードラインの共存を実証しています。
Uozumi教授の研究室では、植物のイオンアンモニウム・ナトリウム・カリウムの吸収と輸送機構に注目し、膜タンパク質の膜標的化や翻訳後修飾がイオンホメオスタシスに果たす役割を分子・細胞生物学的手法を用いて解明しています。特にHKT1型ナトリウムトランスポーターの細胞内局在とイオン選択性、ならびにカルシウムシグナル伝達に関与するキナーゼのジフルオライド化修飾の機能的意義を解明しています。
白谷正春教授の研究室では、非熱的プラズマ(NTP)とプラズマ処理水(PTW)の農業応用に注目し、種子の発芽促進や生育向上のメカニズムを、植物ホルモンや抗酸化物質の変化といった生化学的側面から解明しています。また、半導体プロセスに応用されるスパarkプラズマ中でのナノ粒子の生成・成長挙動や、粒子サイズ制御・輸送制御を実現する「プラズマ内ナノファクトリー」の構築にも取り組んでいます。これらの研究は、農業分野における新技術の開発と、ナノ材料の精密製造技術の両面で応用が期待されています。
田中恵二教授の研究室では、 chalcogenideガラスの構造・電子状態の組成依存性に着目し、平均結合数2.67における構造的相転移とその物性への影響を、トポロジー的・パーコレーション的視点から解明しています。光誘起流動性や光誘起膨張、可逆的光吸収変化(photodarkening)といった光物性のメカニズムを、X線回折や光学的測定を用いて詳細に解明しており、特に光による構造制御と物性制御の可能性に注目しています。微細加工応用や光エレクトロニクスへの展開も視野に入れた、物性と構造の相関を解明する研究が中心です。
Sugahara教授の研究室では、酸化タングステンや酸化チタンをはじめとする金属酸化物ナノ材料の創製とその機能制御に注力しています。特に、結晶構造の相似性を利用したトポケミカル変換法により、高比表面積を有する2次元ナノプレート型酸化物を精密に合成しています。また、ケイ酸塩層間へのモノマーのイオン交換とポリマー化を応用し、層状ケイ酸塩とポリマーのハイブリッド材料の創出にも成功しています。これらの研究は、光触媒やエネルギー関連材料の高性能化に貢献する基盤技術の確立を目的としています。
Ho Namkoong教授の研究室は、呼吸器疾患、特に非結核性アリューミン菌症(PNTMD)やCOVID-19の疫学的・遺伝的要因の解明を柱としています。特に日本国内におけるPNTMDの発症率の上昇や、SARS-CoV-2感染における重症化の遺伝的素因の同定に注力しており、アジア系集団に特有の遺伝的要因の解明も進めています。また、マクロライド系抗生物質の免疫調節作用や、造血幹細胞移植後の肺障害のメカニズムについても、臨床的・実験的アプローチを併用して研究を展開しています。
Professor Young Woon Lim's research lab specializes in fungal and microbial ecology, with a focus on the diversity, interactions, and ecological roles of fungi and bacteria in forest and coastal ecosystems. The lab employs molecular techniques such as pyrosequencing and 16S/18S rDNA sequencing to explore microbial communities associated with economically and ecologically important fungi like Tricholoma matsutake and Pinus thunbergii. Key research directions include understanding symbiotic and pathogenic interactions between fungi and bacteria, microbial community dynamics in mycorrhizal environments, and the functional roles of endophytes in stress resistance. The lab also investigates the biogeography and genetic diversity of ectomycorrhizal fungi, particularly within the Russulaceae family.
Professor Soo-Yeon Lee's research lab specializes in brain-inspired neuromorphic computing, focusing on the development of oxide-based thin-film transistors for artificial synaptic devices. The lab explores advanced materials such as amorphous InGaZnO (IGZO) and ZnON thin films to enable energy-efficient, high-performance neuromorphic systems with low power consumption and robust reliability. Key research directions include optimizing charge trapping mechanisms, minimizing persistent photoconductivity, and enhancing device stability under optical and electrical stress for next-generation optoelectronic neuromorphic applications.
Professor Sanghee Kim's research lab specializes in palliative and end-of-life care, with a focus on improving nursing education, ethical decision-making, and tailored care models for non-cancer patients. The lab investigates knowledge gaps, confidence levels, and educational needs among nurses, particularly in the context of hospice and palliative care. It also explores the impact of structured training programs and ethics education on clinical practice and patient outcomes. Additionally, the lab examines evolving healthcare delivery models, including sustainable consumer behaviors in healthcare-related markets.
Professor Jung Hyun Yoon's research lab specializes in medical imaging and artificial intelligence, focusing on improving diagnostic accuracy and efficiency in breast and thyroid cancer screening. The lab investigates AI-driven applications in mammography, including digital mammography and tomosynthesis, to enhance early detection and risk stratification. Key research directions include elastography for improved specificity in ultrasound, computer-aided diagnosis systems, and the integration of AI tools like S-Detect to support radiologists across varying levels of expertise. The lab also evaluates the clinical feasibility and performance of emerging technologies to optimize patient management and reduce diagnostic variability.