Takeuchi Goro, Terada Yosuke, Takeuchi Moe, Abe Hiroshi, Ito Hiroyuki, Baba Toshihiko
Opt Express. 2018 Apr 30;26(9):11529-11537. doi: 10.1364/OE.26.011529.
The doubly periodic Si photonic crystal waveguide radiates the guided slow light into free space as an optical beam. The waveguide also functions as a beam steering device, in which the steering angle is changed substantially by a slight variation in the wavelength generated due to the large angular dispersion of the slow light. A similar function is obtained when the wavelength is fixed and the refractive index of the waveguide is changed. In this study, we tested two kinds of integrated heater structures and observed the beam steering using the thermo-optic effect. For a p-i-p doped waveguide, the heating current was made to flow directly across the waveguide and a beam steering range of 21° was obtained with a relatively low heating power and high-speed response of the order of 100 kHz, maintaining a narrow beam divergence of 0.1-0.3° and a 120 resolution points. We also performed a preliminary life test of the device but did not observe any severe degradation in the temperature variation of 80-430 K for the duration up to 20‒40 h. For a TiN heater device, we obtained the comparable beam steering characteristics, but the required heating power increased, and the response speed decreased drastically.
双周期硅光子晶体波导将导行慢光作为光束辐射到自由空间中。该波导还起到光束转向装置的作用,其中由于慢光的大角度色散,波长的微小变化会使转向角发生显著变化。当波长固定且改变波导的折射率时,也能获得类似的功能。在本研究中,我们测试了两种集成加热器结构,并利用热光效应观察了光束转向。对于p-i-p掺杂波导,使加热电流直接流过波导,在相对较低的加热功率和100 kHz量级的高速响应下,获得了21°的光束转向范围,保持了0.1 - 0.3°的窄光束发散角和120个分辨率点。我们还对该器件进行了初步寿命测试,但在80 - 430 K的温度变化下,持续20 - 40小时未观察到任何严重退化。对于TiN加热器器件,我们获得了可比的光束转向特性,但所需的加热功率增加,响应速度急剧下降。