東京大学 · 工学
Kazuma Mawatari教授の研究室では、10〜1000nmのナノスケールの液体系を制御・分析する「エクステンデッド・ナノフルイディクス」を基盤技術として、超微小体積液体(フェムトリットル〜アトトリットル)における液体の物理的性質の解明と、それを応用した超高感度分析技術の開発を進めています。特に、熱レンズ顕微鏡を用いた単一ナノ粒子の検出や、MEMS技術に代わる非機械的ナノバルブ(ラプラスナノバルブ)の開発により、ナノスケールでの液体の制御と化学反応の実現を目指しています。医療診断やバイオセンシングへの応用も視野に入れた、次世代のマイクロフルイディクス技術の創出が研究の柱です。
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Engineering using liquids confined in channels 10-1000 nm in dimension, or "extended-nanofluidics," is the next target of microfluidic science. Liquid properties at this scale were unrevealed until recently because of the lack of fundamental technologies for investigating these ultrasmall spaces. In this article, the fundamental technologies are reviewed, and the emerging science and technology in the extended-nanospace are discussed.
We have developed a thermal lens microscope for liquid-phase and surface microanalyses. By applying the thermal lens microscope to particle detection, we succeeded in detecting a pulsed photothermal signal from single-nanometer-sized particles in liquid and counting them individually. The samples were polystyrene latex particles (190 and 80 nm in diameter) and colloidal Ag particles (10 nm in diameter). To verify that the detected pulsed signals corresponded to the single-particle photothermal e
Cell analysis and clinical diagnosis systems are now becoming the largest field of application for microchip-based analytical systems. Technological advantages include: small volume, fast analysis time, highly integrated analytical functions, easy operation and small size. For these purposes, basic methodologies for general micro-integration and basic technologies, including fluidic control and ultrasensitive detection, are required. In this review, we introduce our approach to the general integ
Analytical technologies of ultrasmall volume liquid, in particular femtoliter to attoliter liquid, is essential for single-cell and single-molecule analysis, which is becoming highly important in biology and medical diagnosis. Nanofluidic chips will be a powerful tool to realize chemical processes for such a small volume sample. However, a technical challenge exists in fluidic control, which is femtoliter to attoliter liquid generation in air and handling for further chemical analysis. Integrati
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