A Universal Approach to High‐Index‐Contrast Flexible Integrated Photonics

Author:

Chen Zequn123,Shi Yilin23,Wei Maoliang4,Luo Ye23,Ma Hui4,Tang Renjie23,Weng Yang23,Dai Hao4,Zhong Chuyu4,Sun Chunlei23,Wang Lichun4,Si Ke5,Gong Wei5,Lin Hongtao45,Li Lan23ORCID

Affiliation:

1. College of Optical Science and Engineering Zhejiang University Hangzhou 310027 China

2. Key Laboratory of 3D Micro/Nano Fabrication and Characterization of Zhejiang Province School of Engineering Westlake University Hangzhou 310030 China

3. Institute of Advanced Technology Westlake Institute for Advanced Study Hangzhou 310024 China

4. State Key Laboratory of Modern Optical Instrumentation College of Information Science and Electronic Engineering Zhejiang University Hangzhou 310027 China

5. MOE Frontier Science Center for Brain Science & Brain‐Machine Integration Zhejiang University Hangzhou 310027 China

Abstract

AbstractFlexible integrated photonics is an essential technology for emerging applications, including flexible optical interconnects, optogenetic stimulation, and implantable conformal sensing. Here, a novel and universal route for fabricating flexible photonic components with high‐refractive‐index contrast is reported. Central to such a unique method is the utilization of germanium oxide (GeO) as the sacrificial layer for releasing nanostructures from rigid substrates to flexible substrates. Various high‐quality inorganic optical materials can be grown directly on GeO by different thin‐film deposition methods due to its resistance to both high temperature and high‐power oxygen plasmas. In addition to the absence of restrictions on the material choices and integration processes for flexible photonic structures, the approach uses water as the etchant to remove the sacrificial layer, which has minimal impact on the optical performance of the photonic structures. Using this approach, a strain‐insensitive/sensitive microring resonator based on plasma‐enhanced chemical vapor deposited silicon nitride and reactive sputtered titanium oxide, respectively, is demonstrated, establishing the strategy as a facile and universal route for the fabrication of high‐index‐contrast flexible integrated photonic devices with various functionalities.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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