High-temperature-resistant silicon-polymer hybrid modulator operating at up to 200 Gbit s−1 for energy-efficient datacentres and harsh-environment applications

Author:

Lu Guo-WeiORCID,Hong JianxunORCID,Qiu Feng,Spring Andrew M.,Kashino Tsubasa,Oshima Juro,Ozawa Masa-aki,Nawata Hideyuki,Yokoyama ShiyoshiORCID

Abstract

AbstractTo reduce the ever-increasing energy consumption in datacenters, one of the effective approaches is to increase the ambient temperature, thus lowering the energy consumed in the cooling systems. However, this entails more stringent requirements for the reliability and durability of the optoelectronic components. Herein, we fabricate and demonstrate silicon-polymer hybrid modulators which support ultra-fast single-lane data rates up to 200 gigabits per second, and meanwhile feature excellent reliability with an exceptional signal fidelity retained at extremely-high ambient temperatures up to 110 °C and even after long-term exposure to high temperatures. This is achieved by taking advantage of the high electro-optic (EO) activities (in-device n3r33 = 1021 pm V−1), low dielectric constant, low propagation loss (α, 0.22 dB mm−1), and ultra-high glass transition temperature (Tg, 172 °C) of the developed side-chain EO polymers. The presented modulator simultaneously fulfils the requirements of bandwidth, EO efficiency, and thermal stability for EO modulators. It could provide ultra-fast and reliable interconnects for energy-hungry and harsh-environment applications such as datacentres, 5G/B5G, autonomous driving, and aviation systems, effectively addressing the energy consumption issue for the next-generation optical communication.

Funder

MEXT | Japan Society for the Promotion of Science

MEXT | JST | Strategic International Collaborative Research Program

MEXT | JST | Core Research for Evolutional Science and Technology

the Cooperative Research Programs of “Network Joint Research Center for Materials and Devices” and “Dynamic Alliance for Open Innovation Bridging Human, Environment, and Materials” of MEXT

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

Reference60 articles.

1. Andrae, Anders, S. G. Total consumer power consumption forecast. In The Nordic Digital Business Summit (Huawei, Helsinki, 2017).

2. Jones, N. How to stop data centres from gobbling up the world’s electricity. Nature 561, 163–166 (2018).

3. Ni, J. & Bai, X. A review of air conditioning energy performance in data centres. Renew. Sustain. Energy Rev. 67, 625–640 (2017).

4. Miller, R. Google: raise your data center temperature. Data Center Knowledge http://www.datacenterknowledge.com/archives/2008/10/14/google-raise-your-data-center-temperature (2008).

5. Reed, G. T., Mashanovich, G., Gardes, F. Y. & Thomson, D. J. Silicon optical modulators. Nat. Photon 4, 518–526 (2010).

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