Kyoto University · 공학
이 교수의 연구실은 원자해상도 AFM를 활용한 이온 액체 및 고점도 전해질 내의 고체-액체 인터페이스 구조를 정밀하게 분석하는 데 초점을 맞추고 있습니다. 특히 qPlus 센서를 활용한 주파수 변조 AFM를 통해 높은 점도를 가진 환경에서도 원자 해상도의 표면 구조 및 국소 용매 구조를 해석하는 데 성공했으며, 에너지 저장 소재의 표면 인터페이스 거동을 이해하는 데 기여하고 있습니다. 최근에는 물-염 전해질, 폴리머/고체 인터페이스 등 다양한 고체-액체 시스템에서도 나노스케일의 표면 전위 및 밀도 분포를 정량적으로 분석하는 데 성공했습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Frequency modulation atomic force microscopy (FM-AFM) imaging in ionic liquids (ILs) were carried out. A quartz tuning fork sensor with a sharpened tungsten tip was used as a force sensor instead of a Si cantilever. Only the tip apex was immersed in ILs and the quality factor of the sensors was kept more than 100 in spite of the high viscosity of ILs. Atomic-resolution topographic imaging was successfully achieved in an IL as well as in an aqueous solution. In addition, frequency shift versus ti
Structural analysis of interfaces between ionic liquid (IL) and alkali-halide (100) surface was demonstrated by frequency modulation atomic force microscopy (FM-AFM). A quartz tuning fork sensor with a sharpened tungsten tip, the so-called qPlus sensor, was used as a force sensor. Atomic-resolution topographic imaging on a KCl(100) surface was successfully achieved in a viscous IL. The square lattice structure with a period of ∼0.4 nm was clearly imaged, which indicated that only K+ or Cl– ions
We investigated alkanethiol phase-separated self-assembled monolayers (PS-SAMs) using the Kelvin probe force microscope (KFM) combined with the non-contact atomic force microscope (NC-AFM). PS-SAMs were composed of two species of different chain-length alkanethiol. The surface potential (SP) measurements showed that the value of SP was linearly increased as a function of the chain length and that the gradient was about 9 mV per CH2 unit. In addition, we succeeded in obtaining nanometre-scale var
Frequency modulation atomic force microscopy (FM-AFM) imaging in ionic liquids (ILs) were carried out. A quartz tuning fork sensor with a sharpened tungsten tip was used as a force sensor instead of a Si cantilever. Only the tip apex was immersed in ILs and the quality factor of the sensors was kept more than 100 in spite of the high viscosity of ILs. Atomic-resolution topographic imaging was successfully achieved in an IL as well as in an aqueous solution. In addition, frequency shift versus ti
Abstract We investigated a polymeric liquid/solid interface by frequency modulation atomic force microscopy (FM-AFM) using a quartz tuning fork sensor, so-called qPlus sensor. We carried out topographic imaging on a muscovite mica surface in poly(dimethylsiloxane) (PDMS) which has 1000 times higher viscosity than that of water and the crystal structure of the mica surface was successfully imaged. Two-dimensional frequency shift mapping was also demonstrated at the interface and the layered struc
Abstract Water-in-salt electrolytes (WiSEs), which contain salt with extremely high concentration (>20 mol kg −1 ), are attracting much interest as new electrolytes for energy storage systems, especially for lithium-ion batteries (LIBs), because they are considered to be suitable for developing safer systems. Structural analysis on WiSE/solid interfaces would provide beneficial information for developing LIBs. Whereas the interfacial structures of diluted aqueous electrolytes (less than 1 mol
Abstract Simultaneous detection of vertical and lateral forces at the nanoscale by atomic force microscopy (AFM) yields important knowledge on nanotribology. Although silicon (Si) cantilevers are capable of detecting both the forces, it has not been achieved by quartz tuning fork sensors including qPlus sensors. In this study, we found that the tip apex of the qPlus sensor with a long tip oscillates vertically at the lowest resonance frequency (ƒ 1 ) and laterally at the second lowest resonance
Abstract Molecular-resolution imaging on an alkanethiol self-assembled monolayer (SAM) in an ionic liquid (IL) was demonstrated using frequency modulation atomic force microscopy (FM-AFM). A quartz tuning fork sensor with a sharpened tungsten tip, the so-called qPlus sensor, was used as a force sensor. Etch pits, which are a typical structure of alkanethiol SAMs, individual alkanethiol molecules, and single molecular defects were clearly imaged; that is, true molecular-resolution imaging was suc
Lead phthalocyanine molecules on MoS2(0001) substrates were imaged using an ultrahigh-vacuum AFM apparatus equipped with an optical beam deflection (OBD) sensor. The second flexural mode was employed to utilize its high effective spring constant in order to reduce the oscillation amplitude to 0.5 nm without oscillation instability. Submolecular-resolution images were obtained when a shorter cantilever, which had a very high resonance frequency and a low noise equivalent deflection in the OBD sen
The detection of vertical and lateral forces at the nanoscale by atomic force microscopy (AFM) reveals various mechanical properties on surfaces. The qPlus sensor is a widely used force sensor, which is built from a quartz tuning fork (QTF) and a sharpened metal probe, capable of high-resolution imaging in viscous liquids such as lubricant oils. Although a simultaneous detection technique of vertical and lateral forces by using a qPlus sensor is required in the field of nanotribology, it has sti