Antenna-coupled silicon-organic hybrid integrated photonic crystal modulator for broadband electromagnetic wave detection
Xingyu Zhang, Amir Hosseini, Harish Subbaraman, Shiyi Wang, Qiwen, Zhan, Jingdong Luo, Alex K.-Y. Jen, Chi-jui Chung, Hai Yan, Zeyu Pan, Robert, L. Nelson, Charles Y.-C. Lee, and Ray T. Chen

TL;DR
This paper presents a novel silicon-organic hybrid photonic crystal modulator integrated with a bowtie antenna, achieving broadband electromagnetic wave detection with record-high sensitivity and high EO modulation efficiency.
Contribution
The work introduces the first silicon-organic hybrid device and photonic crystal waveguide for electromagnetic wave detection, combining broadband antenna coupling with high electro-optic efficiency.
Findings
Effective EO modulation efficiency of 1230 pm/V
Modulation bandwidth up to 40 GHz with 11 GHz 3-dB bandwidth
Minimum detectable electric field of 2.5 V/m at 8.4 GHz
Abstract
In this work, we design, fabricate and characterize a compact, broadband and highly sensitive integrated photonic electromagnetic field sensor based on a silicon-organic hybrid modulator driven by a bowtie antenna. The large electro-optic (EO) coefficient of organic polymer, the slow-light effects in the silicon slot photonic crystal waveguide (PCW), and the broadband field enhancement provided by the bowtie antenna, are all combined to enhance the interaction of microwaves and optical waves, enabling a high EO modulation efficiency and thus a high sensitivity. The modulator is experimentally demonstrated with a record-high effective in-device EO modulation efficiency of r33=1230pm/V. Modulation response up to 40GHz is measured, with a 3-dB bandwidth of 11GHz. The slot PCW has an interaction length of 300um, and the bowtie antenna has an area smaller than 1cm2. The bowtie antenna in the…
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