Tokyo Institute of Technology · Engineering
Professor Tomoyuki Miyamoto's research lab specializes in advanced optoelectronic devices and materials, with a focus on semiconductor heterostructures, particularly GaInNAs-based quantum wells for long-wavelength lasers and high-performance terahertz systems. The lab explores innovative growth techniques such as chemical beam epitaxy for nitride-containing semiconductors and develops compact, high-resolution terahertz imaging systems using resonant tunneling diodes. A key research direction involves advancing wireless power transmission technologies, especially optical wireless power transfer, to enable flexible and maintenance-free power delivery for next-generation electronic systems. The lab also investigates beam-shaping optics and tolerant photodetection systems for robust integration in real-world applications.
Figures are computed from collected data and may differ slightly.
Abstract We report a feasibility study of a terahertz imaging system with resonant tunneling diodes (RTDs) that oscillate at 0.30 THz. A pair of RTDs acted as an emitter and a detector in the system. Terahertz reflection images of opaque samples were acquired with our RTD imaging system. A spatial resolution of 1 mm, which is equal to the wavelength of the RTD emitter, was achieved. The signal-to-noise ratio (SNR) of the reflection image was improved by 6 dB by using polarization optics that red
We propose a novel quantum-well (QW) structure for GaInNAs-GaAs lasers that can emit 1.3 μm or longer wavelength light. The idea is insertion of lattice-matched GaInNAs intermediate layers between well and barrier, which is effective for elongating the emission wavelength and reducing well thickness. It is shown that 1.3-μm emission is achievable by using the proposed GaInNAs-GaAs QW with a well thickness thinner than that of conventional rectangular GaInNAs QWs. This structure will relax the de
The power transmission technology to the equipment is remained behind in contrast to the progress of wireless communication. The existence of wiring and its connections greatly restrict the location of use, installation, maintenance, and configuration of the equipment. Solutions of wireless power transmission may lead to major changes in society, such as new services and new industries as well as convenience. Wireless power transmission such as electromagnetic induction is beginning to be put in
This is the first report on chemical beam epitaxy (CBE) of GaInNAs/GaAs quantum wells (QWs). From the observed clear X-ray diffraction satellite peaks, the QW structure incorporating nitrogen supplied by radical nitrogen was successfully grown. The photoluminescence emission with the emission peak wavelength of 1.0 µm was observed from GaInNAs/GaAs QWs at room temperature. The wavelength could be elongated by increasing the amount of nitrogen and indium.
This paper is an experimental characterization of a light-receiving module containing a fly-eye lens system with high tolerance to beam irradiation conditions. The fly-eye lens system, which is tolerant to fluctuations in beam shape, beam size, number of beams, beam incident position, and beam incident direction, was proposed, a light receiver module with a fly-eye lens system was constructed, and its characteristics were evaluated. The effect of the beam size on the fly-eye lens system was eval
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