Kyoto University · 공학
Ryoichi Sakata 교수의 연구실은 광학 및 반도체 레이저 기반의 비기계적 2차원 빔 스캐닝 기술을 핵심으로 하며, 특히 다중 조절형 포토닉 크리스탈 표면발광레이저(DF-PCSEL)와 이중 조절형 포토닉 크리스탈 레이저(DM-PCSEL)를 통해 고출력, 고비중량, 고해상도 빔 제어를 실현합니다. 응용 분야로는 스마트 모빌리티용 LiDAR, 스트럭처드 라이트, 고성능 조명 및 광통신 등이 포함되며, 외부 렌즈나 기계적 구동 장치 없이도 넓은 시야각에서 정밀한 빛 조작이 가능한 차세대 레이저 소자 개발에 집중하고 있습니다. 특히 기울기 효율 향상과 구조적 최적화를 통해 실용화 가능한 고성능 레이저 소자를 목표로 하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Mechanical-free, high-power, high-beam-quality two-dimensional (2D) beam scanning lasers are in high demand for various applications including sensing systems for smart mobility, object recognition systems, and adaptive illuminations. Here, we propose and demonstrate the concept of dually modulated photonic crystals to realize such lasers, wherein the positions and sizes of the photonic-crystal lattice points are modulated simultaneously. We show using nano-antenna theory that this photonic nano
We present a new method to characterize thin-film electro-optic materials. The method is based on resolving the electric and/or magnetic field distributions in the near-field region of a split-ring resonator (SRR) designed for the terahertz (THz) frequency range. We experimentally validate our simulations by THz near-field imaging of SRRs directly patterned in contact with a thin-film lithium niobate crystal as a sensor. Furthermore, we analytically study the effect of the different applied elec
Photonic-crystal surface-emitting lasers (PCSELs) with modulated photonic crystals have attracted much attention for their unrivaled capabilities, such as broad area coherent resonance, and lens-free beam scanning and flash illumination. In this paper, we first explain the principles and the development of PCSELs with modulated photonic crystals toward non-mechanical two-dimensional (2D) beam-scanning applications. Then, we show PCSELs with modulated photonic crystals, whose modulation is design
Flash light sources with a wide field of view (FOV) are indispensable in various fields such as light detection and ranging (LiDAR), optical wireless communication, and adaptive lighting. However, conventional flash light sources, which combine lasers with external optical elements, tend to suffer from high complexity, large size, and high cost. In this study, we investigate a new wide-FOV flash light source which does not require external optical elements, based on a dually modulated photonic c
Dually modulated photonic-crystal surface-emitting lasers (DM-PCSELs) are a new type of semiconductor laser that enable on-chip, mechanical-free, high-power, high-beam-quality 2D beam scanning over a wide field of view. These lasers are attracting attention for application in light detection and ranging, and the improvement of their slope efficiency is desired for this application. Thus far, the highest experimentally demonstrated slope efficiency is approximately 0.4 W/A at wavelengths of aroun
We propose modulated PCSELs (M-PCSELs) with a double lattice and a Q-switching mechanism for emitting structured light. A 28-dot pattern with a peak power of >5W is successfully generated at a current injection of ~1A, where the pulse width is <100ps and each dot has a narrow divergence angle of <0.5°.
Compact, high-peak-power light sources emitting structured light such as multi-dot patterns are desired for face recognition and light detection and ranging (LiDAR) applications, especially in the field of mobile technology. Conventionally, such light sources are composed of VCSEL arrays, lenses, and diffractive optical elements (DOEs), resulting in large and complex systems. To address these issues, we propose and introduce double-lattice structures and saturable absorbers to modulated photonic
Mechanical-free, high-power, high-beam quality two-dimensional beam scanning is strongly required for LiDAR systems for autonomous driving. Here, we propose and demonstrate a new, dually-modulated photonic crystal laser, with which we successfully emit a high-quality laser beam with watt-class power in any desired direction.