High Q‐Factor Polymer Microring Resonators Realized by Versatile Damascene Soft Nanoimprinting Lithography

Author:

Lin Wei‐Kuan1ORCID,Liu Shuai1,Lee Sungho12,Zhang Zhesheng1,Wang Xueding34,Xu Guan35,Guo L. Jay1ORCID

Affiliation:

1. Department of Electrical Engineering and Computer Sciences University of Michigan 1301 Beal Avenue Ann Arbor 48109 USA

2. Department of Mechanical Engineering Dong‐A University 37 Nakdong‐daero 550beon‐gil, Saha‐gu Busan South Korea

3. Department of Biomedical Engineering University of Michigan Carl A. Gerstacker Building, 2200 Bonisteel Blvd. Ann Arbor 48109 USA

4. Department of Radiology University of Michigan 1500 E. Medical Center Dr Ann Arbor 48109 USA

5. Department of Ophthalmology and Visual Sciences University of Michigan 1000 Wall Street Ann Arbor 48105 USA

Abstract

AbstractHigh‐quality‐factor microring resonators are highly desirable in many applications. Fabricating a microring resonator typically requires delicate instruments to ensure a smooth side wall of waveguides and 100‐nm critical feature size in the coupling region. In this work, a new method “damascene soft nanoimprinting lithography” is demonstrated that can create high‐fidelity waveguide by simply backfilling an imprinted cladding template with a high refractive index polymer core. This method can easily realize high Q‐factor polymer microring resonators (e.g., ≈5 × 105 around 770 nm wavelength) without the use of any expensive instruments and can be conducted in a normal lab environment. The high Q‐factors can be attributed to the residual layer‐free feature and controllable meniscus cross‐section profile of the filled polymer core. Furthermore, the new method is compatible with different polymers, yields low fabrication defects, enables new functionalities, and allows flexible substrate. These benefits can broaden the applicability of the fabricated microring resonator.

Funder

National Institute of Diabetes and Digestive and Kidney Diseases

National Cancer Institute

National Science Foundation

Publisher

Wiley

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