Krishna Rakesh, Fan Tianren, Hosseinnia Amir H, Wu Xi, Peng Zhongdi, Adibi Ali
Opt Express. 2024 Apr 8;32(8):14555-14564. doi: 10.1364/OE.517840.
In this paper, we demonstrate a novel hybrid 3C-silicon carbide-lithium niobate (3C-SiC-LN) platform for passive and active integrated nanophotonic devices enabled through wafer bonding. These devices are fabricated by etching the SiC layer, with the hybrid optical mode power distributed between SiC and LN layers through a taper design. We present a racetrack resonator-based electro-optic (EO) phase shifter where the resonator is fabricated in SiC while using LN for EO-effect (r≈ 27 pm/V). The proposed phase shifter demonstrates efficient resonance wavelength tuning with low voltage-length product (V.L ≈ 2.18 V cm) using the EO effect of LN. This hybrid SiC-LN platform would enable high-speed, low-power, and miniaturized photonic devices (e.g., modulators, switches, filters) operable over a broad range of wavelengths (visible to infrared) with applications in both classical and quantum nanophotonics.
在本文中,我们展示了一种新型的混合3C碳化硅-铌酸锂(3C-SiC-LN)平台,用于通过晶圆键合实现的无源和有源集成纳米光子器件。这些器件通过蚀刻SiC层制造,混合光学模式功率通过锥形设计分布在SiC和LN层之间。我们提出了一种基于环形谐振器的电光(EO)移相器,其中谐振器在SiC中制造,同时使用LN实现电光效应(r≈27 pm/V)。所提出的移相器利用LN的电光效应,以低电压-长度乘积(V.L≈2.18 V·cm)实现了高效的谐振波长调谐。这种混合SiC-LN平台将使高速、低功耗和小型化的光子器件(如调制器、开关、滤波器)能够在很宽的波长范围(可见光到红外光)内工作,在经典和量子纳米光子学中都有应用。