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Yuto Nishiwaki

Publications and source records attributed to Yuto Nishiwaki.

4 recordsLinked to original sources

High-Temperature and High-Speed Atomic Force Microscopy Using a qPlus Sensor in Liquid via Quadpod Scanner and Hybrid-Loop Frequency Demodulation

Atomic-resolution imaging on molten metal/solid interfaces at temperatures above 200 °C was achieved using a high-temperature, high-speed atomic force microscope (AFM) equipped with a qPlus sensor. A tip-scanning high-speed Quadpod scanner for a large mass load of qPlus sensor (2.3 g) was developed to enhance thermal drift tolerance by high-speed scanning and thermal insulation from the heated specimen. This scanner has dominant resonant frequencies of 7.05 kHz (lateral) / 29.7 kHz (vertical) without a load. In addition, the Hybrid-loop frequency demodulation technique for low-resonant-frequency ($f_0$) sensors with a wider bandwidth than conventional phase-locked loop was also established, providing a demodulation bandwidth of $B_{Δf_\mathrm{inst}}\sim 0.26 f_0$ without exceeding the theoretical noise of the input deflection signal. Combining these techniques enabled atomic-resolution imaging on the molten $\mathrm{Ga/PtGa_x}$ interface at $\sim$210 °C. The topographic images obtained at $\sim$210 °C showed a relatively low-symmetry surface with an oblique lattice with a superstructure, which differed from the primitive rectangular lattice observed in the non-heated sample left at room temperature for 96 h. This demonstrates that the developed high-temperature, high-speed AFM techniques for qPlus sensors enable visualization of non-aqueous liquid/solid interfaces above 200 °C at atomic resolution, which has various potential applications, such as injection modeling, soldering, and the fabrication of liquid-metal-based catalysts.

physics.ins-det

Optimization of qPlus sensor geometry and circuit for high-speed atomic force microscopy in liquid environments

Atomic force microscopy (AFM) using qPlus sensors is a powerful tool for high-resolution analysis in various liquids, including high-viscosity or opaque environments. However, the relatively high displacement sensor noise density (n_{ds}), combined with the high spring constant and the low resonance frequency, limits force sensitivity and has hindered high-speed imaging. In this paper, we clarify the dominant factors governing n_{ds} and the minimum detectable force gradient (F'_{min}) through a comprehensive analysis of sensor geometry and circuit theory. Based on these findings, we developed a low-noise qPlus sensor that achieves an n_{ds} of 9.3 fm Hz^{-1/2}, which is approximately one-third that of conventional sensors, and reduces F'_{min} by half. Using this sensor, we demonstrated high-speed, atomic-resolution imaging of a molten gallium interface at a frame rate of 6.6 s frame^{-1} (39 lines s^{-1}), proving its advantage for analyzing fast interfacial dynamics in liquid environments.

physics.ins-det

Maximum likelihood estimation of mean functions for Gaussian processes under small noise asymptotics

Maximum likelihood estimators for time-dependent mean functions within Gaussian processes are provided in the context of continuous observations. We find the widest possible class of mean functions for which the likelihood function can be written explicitly. When it is subjected to a small noise asymptotic condition leading to the vanishing of the primary Gaussian noise, we attain local asymptotic normality results, accompanied by insights into the asymptotic efficiency of these estimators. In addition, we introduce M-estimators based on discrete samples, which also leads us to the asymptotic efficiency. Furthermore, we provide quasi-information criteria for model selection analogous to Akaike Information Criteria in discretely observed cases.

math.ST

One-step Fabrication of Sharp Platinum/Iridium Tips via Amplitude-Modulated Alternating-Current Electropolishing

The platinum/iridium (Pt/Ir) alloy tip for scanning probe microscopy (SPM) was fabricated by amplitude-modulated alternating-current (AC) electropolishing. The clean tips with a radius of curvature less than 100 nm were reproducibly obtained by applying the sinusoidal voltage in the frequency ($f_0$) of $900\ \mathrm{Hz} \leq f_0 \leq 1500\ \mathrm{Hz}$ with amplitude modulation by the sinusoidal wave in the modulation frequency ($f_s$) of $f_s=0.1f_0$ in $\mathrm{CaCl}_2$/$\mathrm{H_2O}$/acetone solution. The analyses by scanning electron microscopy with an energy-dispersive X-ray analyzer (SEM-EDX) and atom probe tomography (APT) showed that a uniform Pt/Ir alloy was exposed on the tip surface as a clean surface without O or Cl contamination. The STM imaging using the fabricated tip showed that it is more suitable for investigating rough surfaces than conventional as-cut tips and applicable for atomic-resolution imaging. Furthermore, we applied the fabricated tip to qPlus AFM analysis in liquid and showed that it has atomic resolution in both the horizontal and vertical directions. Therefore, it is concluded that the amplitude-modulated AC etching method reproducibly provides sharp STM/AFM tips capable of both atomic resolution and large-area analyses without complex etching setups.

cond-mat.mtrl-sci