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 Wei Tao's research lab specializes in the design and application of advanced two-dimensional nanomaterials for biomedical theranostics, with a strong focus on cancer therapy and regenerative medicine. The lab develops smart nanomaterials—such as black phosphorus, antimonene, and their PEGylated derivatives—that enable multimodal imaging, stimuli-responsive drug delivery, and photothermal therapy with high precision and biocompatibility. Key research directions include the development of nanotheranostic platforms for tumor targeting, wound healing, and gene therapy, particularly through redox-responsive delivery of therapeutic mRNA. The lab integrates materials science, nanotechnology, and translational medicine to create minimally invasive, highly effective treatments for cancer and chronic diseases.
Professor Heejoon Ahn's research lab specializes in the design and fabrication of advanced nanomaterials for sustainable energy applications, with a strong focus on energy storage and conversion technologies. Key research directions include the development of 3D nanostructured electrodes for supercapacitors and aqueous zinc-ion batteries, leveraging hybrid materials such as metal oxides/hydroxides, carbon nanotubes, and graphitic carbon nitride with layered double hydroxides. The lab also investigates functional nanomaterials for chemical and vapor sensing, particularly using gold nanoparticles and conjugated polymers. Their work emphasizes scalable, low-cost synthesis methods and fundamental understanding of interfacial and electronic properties to enhance device performance.
Professor Dong-Soon Im's research lab focuses on the molecular mechanisms of bioactive natural compounds, particularly ginseng-derived molecules, and their interactions with G protein-coupled receptors (GPCRs). The lab investigates the roles of sphingosine 1-phosphate and lysophosphatidic acid receptors in cellular signaling, inflammation, and neurodegenerative diseases. Key research directions include the identification of novel lipid mediators and their receptors, such as the psychosine receptor in globoid cell leukodystrophy, and the characterization of gintonin as a GPCR-activating component of ginseng. The lab also explores viral protein functions, particularly the Rep proteins of adeno-associated virus, in viral replication and gene regulation.
Professor Ali Bahadur's research lab specializes in the design and synthesis of advanced nanomaterials for environmental remediation and biomedical applications. Key research directions include the development of visible-light-responsive photocatalysts based on doped metal oxide and carbon nitride heterostructures for dye degradation and water splitting, as well as the engineering of multifunctional nanocarriers for combined cancer therapy through chemotherapy and hyperthermia. The lab also explores sustainable polymer-based coatings and ionomer-modified polyurethanes for enhanced durability and chemical resistance. These efforts are underpinned by a strong focus on materials synthesis, structural characterization, and performance optimization under real-world conditions.
大塚貴春教授の研究室は、ハドロン・核子間力の微視的構造に着目し、特にテンソル力とスピン・アイソスピン依存相互作用が核殻構造の進化に与える影響を理論的に解明しています。特に、不安定な陽子過剰・中性子過剰核における魔法数の消失・出現、および酸素同位体の異常な中性子滴線位置のメカニズムを、三体力や低エネルギー効果的場理論に基づいて初めて微視的に解明しました。この研究は、核物理学と宇宙核物理学の両分野に広く影響を与え、次世代ラジオアイソトープビーム実験の解釈を支える基盤を提供しています。
Professor Inki Kim's research lab specializes in advanced metasurface engineering for next-generation optical technologies, focusing on flat optics, structural coloration, and multifunctional holography. The lab pioneers innovations in polarization-multiplexed holography, electrically tunable optical components, and broadband metasurfaces for applications in optical security, 3D sensing, and energy-efficient displays. By leveraging materials such as amorphous silicon, titanium nitride, and IGZO semiconductors, the lab develops subwavelength structures that enable dynamic control of light across visible and near-infrared wavelengths. Their work bridges fundamental nanophotonics with practical applications in anti-counterfeiting, augmented reality, and high-efficiency optical systems.
Professor Jeong Woo Han's research lab specializes in the design and development of advanced functional materials for sustainable energy and environmental applications. The lab focuses on rational catalyst engineering—particularly single-atom and nanostructured catalysts—using advanced synthesis techniques like atomic layer deposition and exsolution, combined with theoretical modeling via DFT. Key research directions include electrocatalysis for fuel cells, water splitting, and metal–air batteries, as well as low-temperature CO oxidation and multi-enzyme mimicking nanozymes. The lab emphasizes the atomic-level understanding of catalytic activity and stability through synergistic experimental and computational approaches.
Professor Younghoon Kim's research lab focuses on host-microbe interactions, particularly the molecular mechanisms underlying probiotic bacteria-host crosstalk in health and disease. The lab investigates the roles of bacterial toxin-antitoxin systems in biofilm formation, persistence, and stress response, as well as the immunomodulatory and protective effects of probiotics such as *Lactobacillus acidophilus* in model hosts like *C. elegans* and intestinal epithelial cells. Additional research explores the impact of milk-derived exosomes and probiotic strains on bone metabolism and cholesterol reduction, highlighting translational applications in metabolic and infectious diseases. The lab integrates multi-omics approaches, including transcriptomics, proteomics, and functional genomics, to dissect microbial and host factors involved in host defense and homeostasis.
Professor Tae-Young Pak's research lab focuses on the intersection of social welfare, financial well-being, and health outcomes in aging populations, with a particular emphasis on socioeconomic determinants of health and financial security in later life. The lab investigates how social policies—such as food assistance programs, social pensions, and health insurance—affect health trajectories, financial resilience, and life satisfaction among older adults in South Korea and the U.S. Using longitudinal data and advanced statistical methods, including machine learning, the lab explores the mechanisms linking economic insecurity, asset accumulation, and mental health. A central theme is understanding how social protection programs can mitigate health and financial risks in vulnerable populations.
Professor Doory Kim's research lab specializes in advanced optical microscopy and nanoscale imaging, focusing on the development and application of super-resolution fluorescence microscopy, correlative light and electron microscopy (CLEM), and single-molecule spectroscopy. The lab investigates molecular dynamics, protein organization, and cellular ultrastructure with nanometer precision, particularly in platelet activation, bacterial extracellular vesicle biogenesis, and the photophysics of fluorescent molecules like spiropyrans. By integrating cutting-edge imaging techniques with deep learning-based image analysis, the lab advances quantitative understanding of biological nanostructures and molecular mechanisms.
Professor Tae Seok Seo's research lab specializes in nanomaterials synthesis and their applications in biomedicine and diagnostics. The lab focuses on developing advanced carbon-based nanomaterials such as graphene quantum dots, graphene oxide sponges, and graphene-based nanocomposites for sensing and imaging. A key research direction involves integrating these nanomaterials into lab-on-a-disc microfluidic systems for rapid, automated, and colorimetric detection of foodborne pathogens. The lab also pioneers innovative DNA sequencing technologies using photocleavable fluorescent nucleotides and surface-immobilized DNA arrays for high-throughput, accurate genetic analysis.
Yoji Hirano教授の研究室は、てんかんや統合失調症をはじめとする神経精神疾患における脳のリズミカルな電気的活動の異常を、脳波(EEG)を用いた非侵襲的計測と動物モデルを組み合わせて解明しています。特に40Hzの聴覚ステディステート応答(ASSR)や広帯域γ波の異常が、認知機能障害や幻聴と関連するメカニズムの解明を進めています。また、リアルタイム脳波フィードバック(NFB)を用いた症状制御の新規治療法の開発にも注力しており、臨床応用に向けたブリッジを築いています。
長岡力教授の研究室は、アンモニアの効率的合成とアンモニアからの水素回収に注力する。特に、酸化物支持ルトヘニューム触媒を用いた低温・低圧下でのアンモニア合成反応の高活性化を実現し、水素の炭素フリーな供給源としての可能性を追求している。また、触媒の高温還元処理や界面制御による反応機構の解明も重要な研究テーマである。
Professor Muddaser Shah's research lab specializes in the development and application of natural bioactive compounds—particularly curcumin and plant polyphenols—through advanced nanotechnological approaches. The lab focuses on enhancing the therapeutic potential of these compounds by improving their solubility, bioavailability, and target specificity using nanocarrier systems such as nanocurcumin and nanozymes. Key research directions include cancer therapy, particularly breast cancer and radiosensitization, as well as antimicrobial and antioxidant applications. The lab also investigates natural enzyme mimics (nanozymes) for biomedical and environmental applications.
Professor Hyung Koun Cho's research lab specializes in semiconductor materials and optoelectronic devices, with a primary focus on III-nitride semiconductors such as InGaN/GaN multiple quantum wells. The lab investigates the structural and optical properties of these materials, particularly the impact of defects like threading dislocations and stacking faults on device performance. Key research directions include strain engineering, defect control, and the development of high-efficiency nitride-based light-emitting devices and gas sensors using amorphous oxide semiconductors like a-IGZO. The lab also applies advanced characterization techniques such as transmission electron microscopy and photoluminescence to understand fundamental material behaviors.
Kazuhide Kamiya教授の研究室は、金属ナノ粒子や単原子型触媒を担持したポーラスな有機フレームワーク材料を設計・開発することで、電気化学的反応、特に二酸化炭素の還元反応(CO₂RR)と酸素還元反応(ORR)の高効率化をめざしています。特に、コアルインシスチントリアチンフレームワーク(CTF)やコvalent有機フレームワーク(COF)を基体にした単原子触媒の精密制御が特徴で、反応選択性や活性を分子レベルで最適化しています。酸性・中性溶液における高効率な電触媒としての実用性も目指しており、持続可能なエネルギー変換技術の実現に貢献しています。
Yoshiki Sawa教授の研究室は、再生医療を基盤にした心筋再生治療の実現を目指しており、特にiPS細胞を用いた心筋シートや人工心筋組織の開発に注力しています。心筋梗塞後の心機能改善を目的とした細胞治療の臨床的応用や、ヒトiPS由来心筋細胞を用いた薬剤性心毒性スクリーニング技術の構築も進めています。また、細胞治療の有効性を高めるための3次元人工心筋組織の迅速作製法の開発や、内皮内皮球(EPC)の機能的役割の解明も重要な研究テーマです。
王倩教授の研究室は、太陽光を用いた効率的で持続可能な水素生成技術の開発を主眼としています。特に、粉末状の光触媒を用いたZ-スキーム全般水分解系の構築や、レアメタルを不使用で高効率な水素生成を実現するためのナノ構造材料の設計・合成に注力しています。また、ドーピングやナノスケールの構造制御により、光吸収性と表面反応性を向上させる材料工学的手法を駆使しています。
Professor Yong Sang Song's research lab focuses on the molecular mechanisms underlying ovarian cancer progression, with a particular emphasis on the tumor microenvironment, endoplasmic reticulum stress, and redox regulation. The lab investigates key signaling pathways such as NF-κB and the unfolded protein response, exploring their dual roles in cancer cell survival, apoptosis, and therapy resistance. Current research also examines the impact of natural compounds like curcumin and resveratrol in modulating cancer cell behavior under stress conditions, including oxidative and endoplasmic reticulum stress. Additionally, the lab studies mitochondrial dynamics and their role in cancer metabolism and cell death.
Professor Seung-Jae Shin's research lab specializes in the atomic-scale understanding of electrochemical interfaces, with a focus on electric double layer (EDL) structure and its impact on electrochemical reactivity. The lab employs advanced first-principles and multiscale quantum-mechanics/molecular-mechanics (QM/MM) simulations to investigate ion adsorption, electron transfer mechanisms, and charge storage in next-generation electrode materials. Key research directions include the design of high-performance supercapacitor materials—particularly metal-organic frameworks (MOFs)—and elucidating the role of cations in electrocatalytic reactions such as CO₂ reduction. The lab bridges molecular-level simulation with experimental electrochemistry to uncover fundamental mechanisms governing energy conversion and storage.