Tohoku University · 물리·천문학
미카오 뉴와노 교수의 연구실은 실리콘 기반 표면 과학과 나노재료의 표면 반응 메커니즘을 중심으로 연구를 진행합니다. 특히 수소 종결된 실리콘 표면의 산화 거동, 산화막 형성 메커니즘, 그리고 HF 및 UV 오존 처리에 의한 표면 구조 변화를 고해상도 분광법을 통해 정밀하게 분석하고 있습니다. 또한 타이타니아 기반 광촉매의 세균 제거 능력 등 응용 분야로의 확장도 함께 연구하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
We have studied the initial stages of oxidation of the hydrogen-terminated Si(111) and (100) surfaces stored in air, using infrared spectroscopy in the multiple internal reflection geometry. We investigate the effect of surface roughness and humidity of air on the oxidation of the hydrogen-terminated Si surfaces. We suggest that surface roughness on a microscopic scale does not significantly affect the oxidation of the hydrogen-terminated Si surface and the oxidation occurs on the entire surface
The SiO2/Si interface structure of thin oxide films thermally grown on Si(100), (111), and (110) surfaces under device processing conditions has been investigated using high-resolution photoemission spectroscopy with synchrotron radiation. The intensity distribution of the so-called suboxides, Si1+, Si2+, Si3+, displays a strong dependence on the crystallographic orientation of the substrate over the oxidation temperature range from 600 to 900 °C; Si1+ is enhanced in intensity on Si(111) and (11
We have investigated the initial stages of UV ozone oxidation of hydrogen-terminated Si(100) and (111) surfaces using infrared spectroscopy in the multiple internal reflection geometry. Spectral features due to intermediate oxidation species such as SiH2(O2) and SiH(O3), which are generated by the attack of the back bonds of a surface Si atom by oxygen, are clearly observed. Upon UV ozone oxidation the concentration of the intermediate oxidation species initially increases and then drops, while
The chemical nature of Si(100) and (111) surfaces during immersion in dilute hydrofluoric acid (HF) solution was investigated ‘‘in situ’’ and in real time using infrared absorption spectroscopy in the multiple internal reflection geometry. In dilute HF solution, the Si surface is not completely terminated with hydrogen, but may be covered in part with hydrogen-associated Si fluorides, such as SiH2(SiF) and SiH2F2. It is found that the hydrogen coverage of the surface depends on the HF concentrat
The photocatalytic bactericidal activity of titanium dioxide (TiO<sub>2</sub>) thin films has been extensively studied. In this study, we investigated the bactericidal activities of TiO<sub>2</sub> nanotube (NT) thin films using <i>Escherichia coli</i> and <i>Staphylococcus aureus</i> cells as the model bacteria. Metallic titanium (Ti) thin films were anodized on a silicon (Si) wafer substrate to form TiO<sub>2</sub> NT thin films. To evaluate the bactericidal activity of the TiO<sub>2</sub> NT
Morphologies of Si surfaces treated with aqueous solutions of hydrofluoric acid (HF) and ammonium fluoride (NH4F) have been investigated using surface infrared spectroscopy. We confirm that HF-treated Si(111) surfaces are terminated with a monohydride (Si—H), dihydride (Si—H2), and trihydride (Si–H3), whereas NH4F-treated Si(111) surfaces are dominantly terminated with Si—H. For Si(100), treatment in NH4F produces a surface for which the dihydride mode is enhanced compared to HF treatment, sugge
Nanobubbles (NBs), with their unique physicochemical properties and promising applications, have become an important research topic. Generation of monodispersed bulk NBs with specified gas content remains a challenge. We developed a simple method for generating bulk NBs, using porous alumina films with ordered straight nanoscaled holes. Different techniques, such as nanoparticle tracking analysis (NTA), atomic force microscopy (AFM), and infrared absorption spectroscopy (IRAS), are used to confi
We investigated the bactericidal activity of bulk nanobubbles (NBs) using <i>E. coli</i>, a model bacterium. Bulk NBs were produced by forcing gas through a porous alumina membrane with an ordered arrangement of nanoscale straight holes in contact with water. NBs with different gas contents, including CO<sub>2</sub>, O<sub>2</sub>, and N<sub>2</sub>, were generated and evaluated for their bactericidal effects. The survival rate of <i>E. coli</i> was significantly reduced in a suspension of CO<su