Tokyo Institute of Technology · 재료과학
Manabu Watanabe 교수의 연구실은 고온 액체 금속 합금의 열물성 특성에 중점을 두고 있으며, 전자기 유도 및 정전기 유도를 이용한 비접촉식 고온 실험 기법을 핵심으로 합니다. 주로 Pt–X, Co–Cr–Mo, Au–X 계 합금의 밀도, 표면장력, 점도 등 열역학적 성질을 정밀 측정하여, 첨단 제조 공정(예: 적층 제조, 나노소재 공정)의 모델링과 최적화를 지원합니다. 특히 초냉각 상태의 액체 금속에서의 행동과 상도형상 및 오더-디스오더 전이 현상과의 연관성에 대한 깊은 분석을 수행하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
The densities of liquid binary Pt–X (X: Fe, Co, Ni and Cu) alloys were measured over a wide temperature range including the supercooled liquid region, using electromagnetic levitation under a static magnetic field. The static magnetic field effectively suppressed translational motion and surface oscillation of the levitated Pt–X sample droplets, enabling high-accuracy density measurement in a non-contact manner. The excess molar volumes (VE) of the liquid alloys were evaluated from the density m
This study aimed to provide thermophysical property data of Co–Cr–Mo (CCM) alloys that are used as biomedical materials to understand and improve additive manufacturing processes. The density, surface tension, normal spectral emissivity, specific heat capacity and thermal conductivity of two CCM alloys that contained a low (0.053 mass%) and a high (0.251 mass%) carbon content were measured in a liquid state using an electromagnetic levitation technique. The liquidus temperatures of the CCM alloy
Our group has previously investigated the correlations between the excess volumes, thermodynamic functions and phase diagrams of binary alloy melts, and the present study focused on binary Au-X (X = Cu, Pd and Ni) alloy melts. The Au-Cu and Au-Pd systems have intermetallic compounds with order–disorder transitions. The densities of these alloy melts were determined with small uncertainties using a combination of an electromagnetic levitation technique and a static magnetic field. The densities o
Co-Cr-Mo (CCM) alloys, which are used in biomedical implants, are currently produced by additive manufacturing, for which accurate modeling of the process is required to attain the desired thermophysical properties of the melts. For the purpose of modeling, the density, surface tension, and viscosity of two CCM melts of distinct carbon content (0.05 and 0.25% by mass) were measured using an electrostatic levitation technique. The temperature dependence of both density and surface tension of the
In this study, we investigated resist pattern collapse during the resist development process. We evaluated the effect of a simple improvement such as rinse-liquid sequencing and rinsing using surfactants. First, we controlled the wafer spinning speed during the rinse-liquid flow step to reduce liquid flow shock. Using this approach, we obtained a 110-nm L/S (line and space) structure with no pattern collapse. However, this technique has only a small effect on preventing pattern collapse with sub
Gold nanowires were fabricated using a contact mode atomic force microscope (AFM), the tip of which scans a thin gold layer predeposited on a mica substrate. The nanowires are spaced with an interval in the range of 130–590 nm. Their widths and heights are distributed in the range of 70–110 nm and 4–7 nm, respectively. By adjusting the strength of the force applied by the AFM tip, the spacing, width and height of the nanowires can be controlled and made to increase as the applied force increases
Abstract This study aimed to accurately measure the density ( ρ ), normal spectral emissivity ( ε ), heat capacity at constant pressure ( C p ), and thermal conductivity ( κ ) of the Ti–6 mass % Al–4 mass % V (Ti64) melt by electromagnetic levitation with a static magnetic field and laser modulation calorimetry. A static magnetic field was applied to the levitated Ti64 melt to suppress the surface oscillation and translational motion of the droplets, and to suppress the convection flow inside th