ITO-based electro-optical modulator integrated in silicon-on-insulator waveguide using surface plasmon interference

2021 ◽  
Vol 602 ◽  
pp. 412313
Author(s):  
Khai Q. Le
2014 ◽  
Vol 31 (11) ◽  
pp. 2908 ◽  
Author(s):  
Tomohiro Amemiya ◽  
Eijun Murai ◽  
Zhichen Gu ◽  
Nobuhiko Nishiyama ◽  
Shigehisa Arai

2018 ◽  
Vol 38 (7) ◽  
pp. 0713001
Author(s):  
梁凤超 Liang Fengchao ◽  
李敏 Li Min ◽  
吴东岷 Wu Dongmin

Sensors ◽  
2020 ◽  
Vol 20 (19) ◽  
pp. 5543
Author(s):  
Anitharaj Nagarajan ◽  
Shusuke Hara ◽  
Hiroaki Satoh ◽  
Aruna Priya Panchanathan ◽  
Hiroshi Inokawa

We present a pixel-level angle sensitive detector composed of silicon-on-insulator (SOI) photodiode (PD) stacked with a gold surface plasmon (SP) antenna to affect the direction of the incoming light. The surface plasmons are excited in the grating-type SP antenna and enhance the diffraction efficiency of the grating. The diffracted light is coupled strongly with the propagation light in the SOI waveguide when the phase matching condition is satisfied. The phase matching takes place at a specific angle of light incidence, and the discrimination of the light based on the incident angle is achieved. As spatial patterns in the polar coordinate of the elevation-azimuth angles (θ, ϕ) of the incident light, we present the phase matching condition theoretically, the absorption efficiency in the SOI by simulation, and also the quantum efficiency of the SOI PD experimentally for different SP antennas of one-dimensional (1D) line-and-space (L/S) and two-dimensional (2D) hole array gratings under various polarization angles. 1D grating offers a polarization sensitive angle detection and 2D grating exhibits angle detection in two orthogonal directions, enabling a polarization independent angle sensitivity. A good agreement among the theory, simulation, and experiment are attained. The proposed device features relatively high quantum efficiency as an angle-sensitive pixel (ASP) and gives wider opportunities in applications such as three-dimensional (3D) imaging, depth-of-field extension, and lensless imaging.


2019 ◽  
Vol 30 ◽  
pp. 14004
Author(s):  
Dmitry Gulyaev ◽  
Dmitry Dmitriev ◽  
Alexander Toropov ◽  
Nataly Valisheva ◽  
Andrey Tsarev ◽  
...  

The energy structure and the value of the electrooptic effect in heteroepitaxial structures (HES) with multiple InGaAlAs / InAlAs quantum wells have been studied. The interferometric method has been developed to determine small changes in the refractive index under transverse transmission of light through a layered structure. The length of the Mach-Zehnder interferometer for the modulator at HES with multiple InGaAlAs / InAlAs quantum wells has been chosen.


Sensors ◽  
2020 ◽  
Vol 20 (21) ◽  
pp. 6176
Author(s):  
Zhen Wang ◽  
Kin-Pang Cheong ◽  
Mingsheng Li ◽  
Qiang Wang ◽  
Wei Ren

We report the theoretical and experimental study of calibration-free heterodyne phase-sensitive dispersion spectroscopy (HPSDS) in the mid-infrared using a direct current modulated mid-infrared quantum cascade laser (QCL). The modulation of QCL current at several hundred MHz or higher generates the synchronous frequency and intensity modulation of the QCL emission. An analytical model of the phase of the beat note signal in HPSDS is derived by considering the absorption and dispersion processes and incorporating the QCL modulation parameters. In the experiment, a 4.5 μm QCL modulated at 350 MHz was used to measure N2O at 200 Torr in a 10 cm gas cell. The N2O concentrations inferred from the analytical model were compared with the nominal values to show good agreement over the concentration range of 189−805 ppm with a standard deviation <3%. When the QCL wavelength was locked at the line-center of the molecular transition, it was of interest to find that the theoretical model was simplified to that used for near-infrared HPSDS with an electro-optical modulator for laser modulation.


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