Frank Ian W, Deotare Parag B, McCutcheon Murray W, Loncar Marko
School of Engineering and Applied Sciences, Harvard University, 33 Oxford St., Cambridge, MA 02138, USA.
Opt Express. 2010 Apr 12;18(8):8705-12. doi: 10.1364/OE.18.008705.
We present dynamically reconfigurable photonic crystal nanobeam cavities, operating at ~1550 nm, that can be continuously and reversibly tuned over a 9.5 nm wavelength range. The devices are formed by two coupled nanobeam cavities, and the tuning is achieved by varying the lateral gap between the nanobeams. An electrostatic force, obtained by applying bias voltages directly to the nanobeams, is used to control the spacing between the nanobeams, which in turn results in tuning of the cavity resonance. The observed tuning trends were confirmed through simulations that modeled the electrostatic actuation as well as the optical resonances in our reconfigurable geometries.
我们展示了工作在~1550纳米的动态可重构光子晶体纳米束腔,其可在9.5纳米波长范围内连续且可逆地调谐。这些器件由两个耦合的纳米束腔构成,通过改变纳米束之间的横向间隙来实现调谐。通过直接向纳米束施加偏置电压获得的静电力,用于控制纳米束之间的间距,进而导致腔共振的调谐。通过模拟证实了观察到的调谐趋势,该模拟对我们可重构几何结构中的静电驱动以及光学共振进行了建模。