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Dive into the research topics where Akira Hashiya is active.

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Featured researches published by Akira Hashiya.


Scientific Reports | 2016

Resonantly Enhanced Emission from a Luminescent Nanostructured Waveguide.

Yasuhisa Inada; Akira Hashiya; Mitsuru Nitta; Shogo Tomita; Akira Tsujimoto; Masaaki Suzuki; Takeyuki Yamaki; Taku Hirasawa

Controlling the characteristics of photon emission represents a significant challenge for both fundamental science and device technologies. Research on microcavities, photonic crystals, and plasmonic nanocavities has focused on controlling spontaneous emission by way of designing a resonant structure around the emitter to modify the local density of photonic states. In this work, we demonstrate resonantly enhanced emission using luminescent nanostructured waveguide resonance (LUNAR). Our concept is based on coupling between emitters in the luminescent waveguide and a resonant waveguide mode that interacts with a periodic nanostructure and hence outcouples via diffraction. We show that the enhancement of resonance emission can be controlled by tuning the design parameters. We also demonstrate that the enhanced emission is attributable to the accelerated spontaneous emission rate that increases the probability of photon emission in the resonant mode, accompanied by enhanced the local density of photonic states. This study demonstrates that nanostructured luminescent materials can be designed to exhibit functional and enhanced emission. We anticipate that our concept will be used to improve the performance of a variety of photonic and optical applications ranging from bio/chemical sensors to lighting, displays and projectors.


Applied Physics Letters | 2014

Improved light extraction from white organic light-emitting devices using a binary random phase array

Yasuhisa Inada; Seiji Nishiwaki; Jumpei Matsuzaki; Taku Hirasawa; Yoshitaka Nakamura; Akira Hashiya; Shinichi Wakabayashi; Masaaki Suzuki

We have developed a binary random phase array (BRPA) to improve the light extraction performance of white organic light-emitting devices (WOLEDs). We demonstrated that the scattering of incoming light can be controlled by employing diffraction optics to modify the structural parameters of the BRPA. Applying a BRPA to the substrate of the WOLED leads to enhanced extraction efficiency and suppression of angle-dependent color changes. Our systematic study clarifies the effect of scattering on the light extraction of WOLEDs.


Archive | 2015

Light-emitting device and light-emitting apparatus

Yasuhisa Inada; Taku Hirasawa; Yoshitaka Nakamura; Akira Hashiya; Mitsuru Nitta; Takeyuki Yamaki


Archive | 2015

Light directional angle control for light-emitting device and light-emitting apparatus

Yasuhisa Inada; Taku Hirasawa; Yoshitaka Nakamura; Akira Hashiya; Mitsuru Nitta; Takeyuki Yamaki


Archive | 2016

LIGHT-EMITTING DEVICE INCLUDING PHOTOLUMINESCENT LAYER

Yoshitaka Nakamura; Taku Hirasawa; Yasuhisa Inada; Akira Hashiya; Mitsuru Nitta; Takeyuki Yamaki


Archive | 2016

LIGHT-EMITTING APPARATUS INCLUDING PHOTOLUMINESCENT LAYER

Akira Hashiya; Taku Hirasawa; Yasuhisa Inada; Yoshitaka Nakamura; Mitsuru Nitta; Takeyuki Yamaki; Masahiro Nakamura


Archive | 2014

OPTICAL SHEET AND LIGHT EMITTING APPARATUS

Taku Hirasawa; Yasuhisa Inada; Akira Hashiya; Yoshitaka Nakamura


Archive | 2016

LIGHT-EMITTING DEVICE HAVING SURFACE STRUCTURE FOR LIMITING DIRECTIONAL ANGLE OF LIGHT

Akira Hashiya; Taku Hirasawa; Yasuhisa Inada


The Japan Society of Applied Physics | 2017

Enhancement of Emission Directionality and Polarization of a YAG:Ce nanobelt Phosphor

Akira Hashiya; Yasuhisa Inada; Mitsuru Nitta; Shogo Tomita; Taku Hirasawa


The Japan Society of Applied Physics | 2016

Demonstration of Resonantly Enhanced Directional and Polarize Emission with a Periodically Nanostructured Waveguide Resonance

Yasuhisa Inada; Akira Hashiya; Mitsuru Nitta; Shogo Tomita; Taku Hirasawa

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