노윤수 교수
Yoonsoo Rho
UNIST 기계공학과 · 공학
연구실 소개
노윤수 교수의 연구실은 나노스케일 물질의 광전자적 성질을 정밀하게 제어하고 응용하는 데 초점을 맞추고 있습니다. 특히 2차원 물질의 두께와 형상 제어, 나노입자 인쇄 및 레이저 소결을 통한 고성능 전극 패턴 제작, 실리카 표면 결함의 광물성 동역학 분석, 그리고 광열적 상전이를 이용한 인공 synapse 개발 등 다학제적 기술을 융합한 연구를 수행하고 있습니다. 이는 차세대 나노전자소자 및 신재생 에너지 기술의 핵심 기반을 마련하는 데 기여하고 있습니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15Various exotic optoelectronic properties of two-dimensional (2D) transition metal dichalcogenides (TMDCs) strongly depend on their number of layers, and typically manifest in ultrathin few-layer or monolayer formats. Thus, precise manipulation of thickness and shape is essential to fully access their potential in optoelectronic applications. Here, we demonstrate site-selective atomic layer precision thinning of exfoliated MoS<sub>2</sub> flake by laser. The oxidation mediated anisotropic chemica
In this study, we perform drop-on-demand (DOD) inkjet printing and laser reductive sintering of precrystallized NiO nanoparticle (NP) ink under ambient conditions to obtain NiO/Ni hybrid electrode patterns on a highly localized area. By formulating an inkjet-printable and laser-reducible NiO NP ink, and by exploring the optimum conditions of inkjet printing parameters, we generate stable droplets, enabling arbitrary shapes of NiO NP dot arrays or line patterns to be deposited. Subsequent short-t
Carrier distribution and dynamics in semiconductor materials often govern their physical properties that are critical to functionalities and performance in industrial applications. The continued miniaturization of electronic and photonic devices calls for tools to probe carrier behavior in semiconductors simultaneously at the picosecond time and nanometer length scales. Here, we report pump-probe optical nanoscopy in the visible-near-infrared spectral region to characterize the carrier dynamics
Abstract The effect of various materials of the spherical scattering centre in a TiO 2 nanoporous structure in dye-sensitized solar cells (DSSCs) was investigated by both theoretical simulation and experiment. Three materials, titania, electrolyte and silica, were investigated using the Mie Theory, in which the concepts of volume total cross section and solar spectrum were accommodated for better accuracy. Of those materials, silica was chosen in this study due to its perfectly transparent natur
Biological nervous systems rely on the coordination of billions of neurons with complex, dynamic connectivity to enable the ability to process information and form memories. In turn, artificial intelligence and neuromorphic computing platforms have sought to mimic biological cognition through software-based neural networks and hardware demonstrations utilizing memristive circuitry with fixed dynamics. To incorporate the advantages of tunable dynamic software implementations of neural networks in
We describe a wide-field approach to probe transient changes in photoluminescence (PL) of defects on silica surfaces. This technique allows simultaneous capture of spatially resolved PL with spontaneous quenching behavior. We attribute the quenching of PL intensity to photochemical reactions of surface defects and/or subsurface fractures with ambient molecules. Such quenching curves can be accurately reproduced by our theoretical model using two quenchable defect populations with different react
Nonlinear optical response is a fingerprint of various physicochemical properties of materials related to symmetry, including crystallography, interfacial configuration, and carrier dynamics. However, the intrinsically weak nonlinear optical susceptibility and the diffraction limit of far-field optics restrict probing deep-subwavelength-scale nonlinear optics with measurable signal-to-noise ratio. Here, we propose an alternative approach toward efficient second harmonic generation (SHG) nanoscop
Abstract A key feature of 2D transition metal dichalcogenides (2D‐TMDCs) is that their properties are strongly dependent on their thickness, typically appearing in ultrathin mono‐ or few‐ layers. Thus, precise control of functional nanostructure is critical for fundamental research and applications in 2D‐TMDCs. Here, atomic layer precision thinning of molybdenum ditelluride (MoTe 2 ) at nanoscale lateral resolution by introducing laser irradiated hot tip is demonstrated. The contact of the hot t
We use photoluminescence (PL) imaging to study damage growth precursors within laser damage sites on the surface of silica. Damage site evolution is induced by multiple shots of UV nanosecond pulsed laser at various energy densities and monitored throughout the early stages of growth. Wide-field PL imaging rapidly locates microscopic light absorption centers within the silica damage site. Our quantitative analysis shows that damage sites with strong local PL intensity show a higher probability o
Transition metal dichalcogenides (TMDCs) have shown exceptional optoelectronic properties that can potentially substitute conventional silicon-based devices and be utilized in sensors and energy devices. To exploit their wide array of potential applications, it is necessary to develop methods capable of on demand, location selective, and tunable formation of structures of arbitrary shape. Here, we demonstrated high-speed direct writing of MoSe2 by laser-induced selenization process in vacuum or
Source Data supporting the plots within the paper "A laser-assisted chlorination process for reversible writing of doping patterns in graphene." Including Source Data for Figures 1-4 in the main text, and Supplementary Figures S1, S3-12, S14, S17.
Source Data supporting the plots within the paper "A laser-assisted chlorination process for reversible writing of doping patterns in graphene." Including Source Data for Figures 1-4 in the main text, and Supplementary Figures S1, S3-12, S14, S17.
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