All‐Solid Near‐Infrared Light‐Induced Self‐Written Optical Waveguides and Optical Self‐Coupling

Author:

Kawasaki Yasunari12ORCID,Otaka Haruki2,Ota Tomomi3,Terasawa Hidetaka3,Kondo Keisuke3,Sugihara Okihiro23

Affiliation:

1. Smart Device and Material Business Division NTT Advanced Technology Corporation 3-9-11 Midori-cho Musashino-shi Tokyo 180-0012 Japan

2. The Graduate school of Regional Development and Creativity Division of Advanced Trans‐disciplinary Science Utsunomiya University 7-1-2 Yoto Utsunomiya Tochigi 321-8585 Japan

3. The School of Engineering Utsunomiya University 7-1-2 Yoto Utsunomiya Tochigi 321-8585 Japan

Abstract

In recent datacenters, considerable data communication has been performed between servers and storages; therefore, an optical interconnection with a wider band is required. Silicon photonics has attracted attention as a technology that places optical engines closer to switch application‐specific integrated circuits and realizes broadband optical interconnection. To utilize silicon photonics, it is necessary to overcome high‐precision alignment between silicon waveguides and single‐mode fibers (SMFs) having vastly different mode field diameters. Optical self‐coupling using light‐induced self‐written (LISW) optical waveguide technology is a potential solution. Previously, near‐infrared (NIR) LISW optical waveguides are fabricated using an SMF with an approximate 10 μm core through irradiation with 10 μW NIR light (1310 and 1550 nm). However, the cladding is liquid, which motivates to fabricate all‐solid LISW optical waveguides. In this study, all‐solid NIR LISW optical waveguides are produced using a core‐selective polymerization method, and single‐mode LISW optical self‐coupling between two SMFs is realized. To enhance the performance of the waveguides, additional resins are incorporated into the high‐refractive‐index base monomer during the cladding formation process. Through the experimentation, the potential for achieving even greater loss reduction by optimizing the hybridization between the base monomer and the supplementary resins is demonstrated.

Funder

Adaptable and Seamless Technology Transfer Program through Target-Driven R and D

Japan Society for the Promotion of Science

National Institute of Information and Communications Technology

Publisher

Wiley

Subject

Materials Chemistry,Electrical and Electronic Engineering,Surfaces, Coatings and Films,Surfaces and Interfaces,Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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