Nagoya University · Engineering
Professor Tetsuya Yamamoto's research lab specializes in polymer science and materials engineering, focusing on the fundamental mechanisms of soap-free emulsion polymerization, particle nucleation, and growth dynamics. The lab employs advanced in situ characterization techniques such as atomic force microscopy (AFM), dynamic light scattering (DLS), and scanning electron microscopy (SEM) to investigate the formation and interfacial behavior of polymer particles. Key research directions include the development of functional polymer particles with tailored surface charges for enhanced adhesion in composite materials and the application of these particles in high-performance carbon fiber-reinforced thermoplastics. The lab also explores sustainable materials and processes, including the use of low-grade raw materials in ironmaking, reflecting a broader interest in green materials science and industrial sustainability.
Figures are computed from collected data and may differ slightly.
In recent years, the reduction of CO2 emissions and the stable supply of raw materials are two major issues for the steel industry. Low reducing agent operation in the blast furnace is required to reduce CO2 emissions in ironmaking. As a mean of realizing low reducing agent operation with using low-grade raw materials, ferro coke characterized by high coke reactivity is considered to be useful. Theoretical and experimental studies were carried out to verify the effect of the ferro coke usage on
To clarify the mechanism of the nucleation process in the soap-free polymerization of styrene in water, the polymerization process of styrene mainly at a temperature 46 degrees C was investigated on a molecular scale using an atomic force microscope (AFM) as well as a scanning electron microscope (SEM) and a dynamic light scattering apparatus (DLS). A cationic initiator was employed to make polymerized styrene adsorb electrostatically on the negatively charged mica plate with molecular-scale smo
Abstract The growth process of poly(isobutyl methacrylate) (PiBMA) particle prepared in soap-free polymerization using V-50 as an initiator was observed by atomic force microscopy (AFM) to clarify the growth mechanism. As a result, it was found that PiBMA particles were capable of growing by the adhesion of smaller particles, which generated freshly during the particle growth period, to their surfaces.
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