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 Hye Sun Gwak's research lab specializes in pharmaceutical and clinical pharmacology, with a focus on optimizing drug delivery systems and understanding genetic influences on drug response. The lab investigates transdermal drug permeation using various vehicles and penetration enhancers, particularly for medications like ondansetron and rosuvastatin. It also explores the clinical implications of pharmacogenomics, such as the ABCG2 421C>A polymorphism's impact on rosuvastatin pharmacokinetics, and examines the relationship between mental health factors—like anxiety and smartphone addiction—and adolescent health outcomes. The lab integrates preclinical studies with large-scale epidemiological data to support personalized medicine and public health interventions.
Professor Kyoungdoug Min's research lab specializes in internal combustion engine combustion, with a focus on emissions control, knock phenomena, and fuel efficiency. The lab investigates fundamental combustion processes, including crevice flow effects on hydrocarbon emissions, in-cylinder pressure analysis for knock detection, and advanced modeling of diesel engine combustion. Research also extends to polymer electrolyte membrane (PEM) fuel cells, particularly resistance separation in fuel cell performance using electrochemical impedance spectroscopy and polarization curves.
Professor Kyeong Kyu Kim's research lab focuses on molecular microbiology, structural biology, and bioinorganic hybrid systems, with a strong emphasis on understanding virulence mechanisms in pathogenic bacteria such as *Pseudomonas aeruginosa*, the role of key regulatory proteins like eIF-5A and USP4 in cellular signaling and disease, and the structural basis of receptor-ligand interactions in immune and bone metabolism. The lab also pioneers innovative bioinorganic integration strategies, developing multifunctional nanomaterials by combining enzymes with inorganic nanoparticles for advanced catalytic applications. These interdisciplinary efforts bridge structural biology, pathogenesis, and nanotechnology to address challenges in infectious diseases and sustainable synthesis.
Professor Ji Won Suk's research lab specializes in the fundamental and applied science of two-dimensional nanomaterials, particularly graphene and graphene oxide, with a focus on their mechanical, electrical, and thermal properties. The lab develops advanced transfer techniques for large-area graphene, investigates the mechanics of ultrathin 2D membranes using atomic force microscopy and modeling, and explores applications in flexible and transparent electronics, such as graphene-based loudspeakers and high-performance field-effect transistors. A key emphasis is placed on minimizing contamination—especially polymer residues—during fabrication to preserve intrinsic material properties and enable next-generation nanoelectromechanical systems and devices.
Professor Jin-Kyung Kim's research lab specializes in advanced structural materials, focusing on the design and strengthening mechanisms of lightweight alloys such as magnesium and high-manganese steels. The lab investigates atomic-scale phase transformations, including the formation of long-period stacking ordered (LPSO) structures in Mg alloys and twinning-induced plasticity (TWIP) in high-strength steels, aiming to enhance strength without sacrificing ductility. Additionally, the lab explores bioinspired functional materials, exemplified by the development of silanediol-based arginase inhibitors with tailored stability and reactivity. The research integrates materials synthesis, advanced characterization, and theoretical modeling to enable next-generation engineering materials for automotive and biomedical applications.
Hayami教授の研究室は、スピンと電子状態の相互作用に着目し、スピン軌道結合がなくても強いスピン依存性を示す電子バンド構造を設計・制御する新しい理論的手法を開発しています。特に、非磁性系における磁気モーメントの配置がもたらす非反復的輸送や磁電効果、トルォイド秩序の発現を多極子の視点から統一的に理解する研究が特徴です。非平面的スピン配置や多重Q秩序、スピントロイドモーメントの役割を解明することで、新素材の創出と物性の制御を目指しています。
Ataru Tanikawa教授の研究室は、宇宙における恒星の進化とブラックホールの形成・合体メカニズムを、数値シミュレーションとバイナリープルーブレーションシンセシスを用いて解明しています。特に、原始星系(Pop III)における高質量ブラックホールの形成や、ペア不安定性質量ギャップを跨ぐブラックホール二重星系の生成メカニズムに注力しています。また、重力波観測と照らし合わせた理論的予測や、白色矮星合体による超新星のメカニズムの解明も行っています。
高尾貴志教授の研究室は、関節炎や骨代謝疾患の病態解明に焦点を当て、特に骨・軟部組織と免疫系のクロストークを解明する。特に、骨破壊の中心的役割を果たす多核巨細胞(破骨細胞)の形成機構や、IL-23/IL-17軸が関与するスpondyloarthritisの炎症反応の分子メカニズムを、細胞・分子生物学的手法を用いて解明している。また、脊椎固定術における合併症(例:硬膜損傷、ASD)のリスク要因の解明にも貢献している。
Professor Sukjoon Hong's research lab specializes in the development of advanced functional materials and devices for next-generation wearable and flexible electronics. The lab focuses on transparent and stretchable conductors, particularly using silver nanowires and liquid metal-based materials, to enable high-performance, biocompatible, and mechanically robust electronic systems. Key research directions include stretchable heaters, patterned transparent conductors via laser processing, and energy storage devices with conducting polymers and nanowire architectures. The lab emphasizes scalable, low-cost fabrication techniques such as laser sintering and ablation, enabling precise, maskless patterning without high-temperature or vacuum processes.
Professor YongKeun Park's research lab specializes in developing advanced optical imaging techniques to study the biophysical properties of living cells, with a primary focus on red blood cells. The lab pioneers noninvasive, quantitative phase imaging and interferometric methods to probe intrinsic cellular features such as refractive index, membrane fluctuations, and mechanical dynamics at nanoscale resolution. Key research directions include understanding the role of spectrin cytoskeleton and ATP in regulating red blood cell mechanics and morphology, as well as applying these optical tools for label-free, real-time monitoring of cellular physiology and pathology. The lab also develops innovative imaging systems—such as DPF microscopy and DMD-based illumination—for high-precision, multimodal live-cell analysis.
Professor Sung-Hoon Kim's research lab specializes in molecular oncology and cancer pharmacology, focusing on the anticancer mechanisms of natural compounds and nanomaterials in colorectal and other cancers. The lab investigates how phytochemicals such as kaempferol, ursolic acid, beta-sitosterol, and decursin induce apoptosis, cell cycle arrest, and endoplasmic reticulum stress through ROS-dependent signaling pathways involving MAPK, p53, STAT3, and AMPK. A key research direction involves enhancing the therapeutic efficacy of natural compounds by overcoming poor bioavailability through advanced drug delivery systems, including biocompatible nanoparticles. The lab also explores the regulation of cancer-related genes, such as MUC2, in response to environmental factors like bile acids.
Miyata教授の研究室は、がんや感染症などの深刻な疾患に直面する人々の心理的・社会的影響に注目し、医療情報の伝え方や精神的ケアのあり方を、一般住民の意思決定やニーズに基づいて科学的に解明することを目的としています。特に、がんの診断・予後に関する情報提供のあり方や、COVID-19の家族・周囲の人々の心理的ストレスの実態を、大規模なアンケート調査を活用して分析しています。こうした研究を通じて、患者本人とその周囲の人々の心の健康を支える、根拠に基づいた支援策の構築を目指しています。
Professor Seung-Baik Kang's research lab specializes in orthopedic biomaterials and regenerative medicine, focusing on the development and evaluation of advanced implant materials such as porous titanium-nickel shape memory alloys for bone regeneration and orthopedic applications. The lab investigates disease-modifying osteoarthritis drugs (DMOADs) targeting key pathological pathways including inflammation, cartilage degradation, and pain signaling. It also explores novel nutraceutical formulations, such as FlexPro MD®, to provide non-pharmacological alternatives for managing osteoarthritis symptoms. The lab integrates preclinical and clinical research to translate innovative solutions for musculoskeletal disorders, particularly in pediatric and adult patients with bone defects or joint degeneration.
Professor Kyoung Heon Kim's research lab specializes in the discovery and application of bioactive compounds from natural sources, particularly marine algae and microbial enzymes. The lab focuses on enzymatic conversion of biopolymers such as cellulose and poly(ethylene terephthalate) (PET) into valuable products, emphasizing sustainable biocatalysis and circular economy approaches. Key research directions include the identification and functional characterization of novel enzymes like expansin-like proteins and agarases, as well as the development of biocompatible processes for producing high-value cosmetics and biodegradable materials.
Professor Seungho Yu's research lab specializes in computational materials science with a focus on solid-state ionics and energy storage materials. The lab investigates the atomic-scale mechanisms governing ionic conductivity, interfacial stability, and defect engineering in solid electrolytes—particularly garnet-type LLZO and chalcogenide-based argyrodites—for all-solid-state batteries. Key research directions include understanding grain boundary effects, elastic softening at nanoscale interfaces, and designing high-conductivity, stable electrolytes through first-principles calculations and molecular dynamics simulations. The lab also explores novel materials such as lithium halides and low-melting-point liquid metal alloys for advanced electrochemical applications.
Ota教授の研究室は、自己免疫疾患の発症メカニズムと治療戦略の解明を柱としており、特に加齢に伴うT細胞の機能変化(T<sub>H</sub>A細胞)やB細胞受容体リパertoイレジストリの解析を通じて、自己免疫疾患の病態理解を深めています。高スループットシーケンシングとシステムバイオロジー的手法を駆使し、ゲノム・エピジェネティクス・トランスクリプトームの統合的解析から、疾患リスクの予測や治療反応のバイオマーカーの同定を目指しています。特にリウマチ性肺疾患(RA-ILD)の治療戦略や、遺伝的要因と細胞機能の因果関係を解明する新規アプローチの開発が進んでいます。
Professor Heejung Yu's research lab specializes in next-generation wireless communication systems, with a strong focus on 5G and beyond technologies, including ultra-reliable low-latency communications (URLLC), massive machine-type communications (mMTC), and enhanced mobile broadband (eMBB). The lab investigates key enablers for the Internet of Things (IoT), such as interference alignment, spectral efficiency, and network coexistence, while also advancing intelligent human-machine interaction through speech emotion recognition using deep learning. A central theme across the research is the development of reliable, efficient, and secure communication frameworks to support future smart societies and ubiquitous connectivity.
Professor Jaekyun Kim's research lab specializes in advanced semiconductor materials and thin-film devices, with a focus on enhancing the performance and reliability of optoelectronic and energy storage systems. Key research directions include optimizing InGaN-based light-emitting diodes through nanostructure engineering—particularly V-pits and quantum wells—to improve luminescence efficiency and reduce leakage currents. The lab also develops novel ion gel polymer electrolytes (IGPEs) for flexible, all-solid-state energy storage devices, emphasizing high ionic conductivity, mechanical robustness, and stability. Additionally, the group explores solution-processed amorphous oxide semiconductors for low-cost, high-performance thin-film transistors in next-generation displays.
Professor Choong Seon Hong's research lab specializes in healthcare informatics and intelligent systems, focusing on the development of context-aware monitoring frameworks and QoS-aware routing protocols for wireless body sensor networks. The lab integrates human-computer interaction, health behavior analysis, and advanced networking to improve patient wellness and clinical decision-making. Research also extends to technology adoption in healthcare organizations, particularly in emerging economies, using theoretical models to understand HRIS implementation challenges.
玉井康成教授の研究室は、有機太陽電池における励起子の拡散ダイナミクスと電荷生成メカニズムを、時間分解吸光分光法(TAS)を核に解明する研究を展開しています。特に、ポリマーとフルーレン、および非フラーレン受体を用いたシステムにおける長距離電荷分離や励起子の拡散挙動の解明に注力しており、効率的で安定な有機太陽電池の開発に貢献することを目的としています。