Realization and simulation of silicon-on-sapphire mid-infrared one-dimensional photonic crystal cavities
Abstract
The mid-infrared (MIR) waveband is significant for chemical and biological sensing since it covers several atmospheric windows and molecular fingerprint regions. On-chip photonic integrated one-dimensional (1D) microcavities have great potential for high-performance mid-IR sensing because of their high sensitivity and compact structure. However, high-performance 1D microcavities based on the promising silicon-on-sapphire (SoS) MIR platform have not yet been designed or realized. Based on the photonic band structure induced by 1D photonic crystals (PhC), a high-performance Bragg reflector, an inward apodized Bragg grating, and a free spectral range (FSR)-free PhC microcavity integrated system operating in the MIR waveband were developed on the SoS platform. By carefully designing the period and penetration depth of the corrugation in the Bragg reflector, a stopband of 45 nm and an extinction ratio of −12 dB were achieved. The inward apodized Bragg grating was optimized by adjusting the apodization depth and the number of periods, resulting in a quality factor of 1043 at a wavelength of 3088.4 nm. Furthermore, introducing a Fabry–Pérot (F-P) cavity between two Bragg reflectors (with side-coupled light) and precisely tuning the stopband of the Bragg reflector and the FSR of the F-P cavity enabled the realization of an FSR-free PhC microcavity. This microcavity exhibited a single deep resonance dip with subnanometer bandwidth across a record-wide operational waveband from 3025 to 3200 nm, achieving a quality factor of approximately 5090. The MIR 1D PhC microcavities on the SoS platform hold great promise for high-performance gas detection and molecular sensing in future applications.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (11)
Yalan Si
The State Key Lab of Brain-Machine Intelligence, Key Laboratory of Micro-Nano Electronics and Smart System of Zhejiang Province, College of Information Science and Electronic Engineering, Zhejiang University 1 , Hangzhou 310027,
Zezhao Ju
The State Key Lab of Brain-Machine Intelligence, Key Laboratory of Micro-Nano Electronics and Smart System of Zhejiang Province, College of Information Science and Electronic Engineering, Zhejiang University 1 , Hangzhou 310027,
Hui Ma
Key Laboratory of Sustainable Low-carbon Technologies for Textile Dyeing and Finishing, Ministry of Education, State Key Laboratory of Advanced Fiber Materials, College of Chemistry and Chemical Engineering
Kai Xia
Jiaxing Key Laboratory of Biosemiconductors
Shuo Lin
Renjie Tang
Zhejiang Key Laboratory of 3D Micro/Nano Fabrication and Characterization, School of Engineering, Westlake University 4 , Hangzhou, Zhejiang 310030,
Boshu Sun
Zhejiang Key Laboratory of 3D Micro/Nano Fabrication and Characterization, School of Engineering, Westlake University 4 , Hangzhou, Zhejiang 310030,
Chunlei Sun
Zhejiang Key Laboratory of 3D Micro/Nano Fabrication and Characterization, School of Engineering, Westlake University 4 , Hangzhou, Zhejiang 310030,
Lan Li
Peilong Yang
Laboratory of Infrared Materials and Devices, Advanced Technology Research Institute, Ningbo University 2 , Ningbo 315211, Zhejiang,
Hongtao Lin
The State Key Lab of Brain-Machine Intelligence, Key Laboratory of Micro-Nano Electronics and Smart System of Zhejiang Province, College of Information Science and Electronic Engineering, Zhejiang University 1 , Hangzhou 310027,