Literature DB >> 33863901

High-yield, wafer-scale fabrication of ultralow-loss, dispersion-engineered silicon nitride photonic circuits.

Junqiu Liu1, Guanhao Huang1, Rui Ning Wang1, Jijun He1, Arslan S Raja1, Tianyi Liu1, Nils J Engelsen1, Tobias J Kippenberg2.   

Abstract

Low-loss photonic integrated circuits and microresonators have enabled a wide range of applications, such as narrow-linewidth lasers and chip-scale frequency combs. To translate these into a widespread technology, attaining ultralow optical losses with established foundry manufacturing is critical. Recent advances in integrated Si3N4 photonics have shown that ultralow-loss, dispersion-engineered microresonators with quality factors Q > 10 × 106 can be attained at die-level throughput. Yet, current fabrication techniques do not have sufficiently high yield and performance for existing and emerging applications, such as integrated travelling-wave parametric amplifiers that require meter-long photonic circuits. Here we demonstrate a fabrication technology that meets all requirements on wafer-level yield, performance and length scale. Photonic microresonators with a mean Q factor exceeding 30 × 106, corresponding to 1.0 dB m-1 optical loss, are obtained over full 4-inch wafers, as determined from a statistical analysis of tens of thousands of optical resonances, and confirmed via cavity ringdown with 19 ns photon storage time. The process operates over large areas with high yield, enabling 1-meter-long spiral waveguides with 2.4 dB m-1 loss in dies of only 5 × 5 mm2 size. Using a response measurement self-calibrated via the Kerr nonlinearity, we reveal that the intrinsic absorption-limited Q factor of our Si3N4 microresonators can exceed 2 × 108. This absorption loss is sufficiently low such that the Kerr nonlinearity dominates the microresonator's response even in the audio frequency band. Transferring this Si3N4 technology to commercial foundries can significantly improve the performance and capabilities of integrated photonics.

Entities:  

Year:  2021        PMID: 33863901     DOI: 10.1038/s41467-021-21973-z

Source DB:  PubMed          Journal:  Nat Commun        ISSN: 2041-1723            Impact factor:   14.919


  35 in total

1.  Microresonator-based solitons for massively parallel coherent optical communications.

Authors:  Pablo Marin-Palomo; Juned N Kemal; Maxim Karpov; Arne Kordts; Joerg Pfeifle; Martin H P Pfeiffer; Philipp Trocha; Stefan Wolf; Victor Brasch; Miles H Anderson; Ralf Rosenberger; Kovendhan Vijayan; Wolfgang Freude; Tobias J Kippenberg; Christian Koos
Journal:  Nature       Date:  2017-06-07       Impact factor: 49.962

2.  Battery-operated integrated frequency comb generator.

Authors:  Brian Stern; Xingchen Ji; Yoshitomo Okawachi; Alexander L Gaeta; Michal Lipson
Journal:  Nature       Date:  2018-10-08       Impact factor: 49.962

Review 3.  Dissipative Kerr solitons in optical microresonators.

Authors:  Tobias J Kippenberg; Alexander L Gaeta; Michal Lipson; Michael L Gorodetsky
Journal:  Science       Date:  2018-08-10       Impact factor: 47.728

4.  Ultrafast optical ranging using microresonator soliton frequency combs.

Authors:  P Trocha; M Karpov; D Ganin; M H P Pfeiffer; A Kordts; S Wolf; J Krockenberger; P Marin-Palomo; C Weimann; S Randel; W Freude; T J Kippenberg; C Koos
Journal:  Science       Date:  2018-02-23       Impact factor: 47.728

5.  Soliton microcomb range measurement.

Authors:  Myoung-Gyun Suh; Kerry J Vahala
Journal:  Science       Date:  2018-02-23       Impact factor: 47.728

6.  Massively parallel coherent laser ranging using a soliton microcomb.

Authors:  Johann Riemensberger; Anton Lukashchuk; Maxim Karpov; Wenle Weng; Erwan Lucas; Junqiu Liu; Tobias J Kippenberg
Journal:  Nature       Date:  2020-05-13       Impact factor: 49.962

7.  Integrated turnkey soliton microcombs.

Authors:  Boqiang Shen; Lin Chang; Junqiu Liu; Heming Wang; Qi-Fan Yang; Chao Xiang; Rui Ning Wang; Jijun He; Tianyi Liu; Weiqiang Xie; Joel Guo; David Kinghorn; Lue Wu; Qing-Xin Ji; Tobias J Kippenberg; Kerry Vahala; John E Bowers
Journal:  Nature       Date:  2020-06-17       Impact factor: 49.962

8.  Ultra-dense optical data transmission over standard fibre with a single chip source.

Authors:  Bill Corcoran; Mengxi Tan; Xingyuan Xu; Andreas Boes; Jiayang Wu; Thach G Nguyen; Sai T Chu; Brent E Little; Roberto Morandotti; Arnan Mitchell; David J Moss
Journal:  Nat Commun       Date:  2020-05-22       Impact factor: 14.919

9.  Searching for Exoplanets Using a Microresonator Astrocomb.

Authors:  Myoung-Gyun Suh; Xu Yi; Yu-Hung Lai; S Leifer; Ivan S Grudinin; G Vasisht; Emily C Martin; Michael P Fitzgerald; G Doppmann; J Wang; D Mawet; Scott B Papp; Scott A Diddams; C Beichman; Kerry Vahala
Journal:  Nat Photonics       Date:  2018-12-14       Impact factor: 38.771

10.  Electrically pumped photonic integrated soliton microcomb.

Authors:  Arslan S Raja; Andrey S Voloshin; Hairun Guo; Sofya E Agafonova; Junqiu Liu; Alexander S Gorodnitskiy; Maxim Karpov; Nikolay G Pavlov; Erwan Lucas; Ramzil R Galiev; Artem E Shitikov; John D Jost; Michael L Gorodetsky; Tobias J Kippenberg
Journal:  Nat Commun       Date:  2019-02-08       Impact factor: 14.919

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  9 in total

Review 1.  A Review of Capabilities and Scope for Hybrid Integration Offered by Silicon-Nitride-Based Photonic Integrated Circuits.

Authors:  Frederic Gardes; Afrooz Shooa; Greta De Paoli; Ilias Skandalos; Stefan Ilie; Teerapat Rutirawut; Wanvisa Talataisong; Joaquín Faneca; Valerio Vitali; Yaonan Hou; Thalía Domínguez Bucio; Ioannis Zeimpekis; Cosimo Lacava; Periklis Petropoulos
Journal:  Sensors (Basel)       Date:  2022-06-01       Impact factor: 3.847

2.  Difference-frequency generation in optically poled silicon nitride waveguides.

Authors:  Ezgi Sahin; Boris Zabelich; Ozan Yakar; Edgars Nitiss; Junqiu Liu; Rui N Wang; Tobias J Kippenberg; Camille-Sophie Brès
Journal:  Nanophotonics       Date:  2021-05-03       Impact factor: 7.923

3.  Probing material absorption and optical nonlinearity of integrated photonic materials.

Authors:  Maodong Gao; Qi-Fan Yang; Qing-Xin Ji; Heming Wang; Lue Wu; Boqiang Shen; Junqiu Liu; Guanhao Huang; Lin Chang; Weiqiang Xie; Su-Peng Yu; Scott B Papp; John E Bowers; Tobias J Kippenberg; Kerry J Vahala
Journal:  Nat Commun       Date:  2022-06-09       Impact factor: 17.694

4.  Platicon microcomb generation using laser self-injection locking.

Authors:  Grigory Lihachev; Wenle Weng; Junqiu Liu; Lin Chang; Joel Guo; Jijun He; Rui Ning Wang; Miles H Anderson; Yang Liu; John E Bowers; Tobias J Kippenberg
Journal:  Nat Commun       Date:  2022-04-01       Impact factor: 14.919

Review 5.  Ge Ion Implanted Photonic Devices and Annealing for Emerging Applications.

Authors:  Xingshi Yu; Xia Chen; Milan M Milosevic; Weihong Shen; Rob Topley; Bigeng Chen; Xingzhao Yan; Wei Cao; David J Thomson; Shinichi Saito; Anna C Peacock; Otto L Muskens; Graham T Reed
Journal:  Micromachines (Basel)       Date:  2022-02-12       Impact factor: 2.891

6.  Integrated photonics enables continuous-beam electron phase modulation.

Authors:  Jan-Wilke Henke; Arslan Sajid Raja; Armin Feist; Guanhao Huang; Germaine Arend; Yujia Yang; F Jasmin Kappert; Rui Ning Wang; Marcel Möller; Jiahe Pan; Junqiu Liu; Ofer Kfir; Claus Ropers; Tobias J Kippenberg
Journal:  Nature       Date:  2021-12-22       Impact factor: 49.962

7.  Low-noise frequency-agile photonic integrated lasers for coherent ranging.

Authors:  Grigory Lihachev; Johann Riemensberger; Wenle Weng; Junqiu Liu; Hao Tian; Anat Siddharth; Viacheslav Snigirev; Vladimir Shadymov; Andrey Voloshin; Rui Ning Wang; Jijun He; Sunil A Bhave; Tobias J Kippenberg
Journal:  Nat Commun       Date:  2022-06-20       Impact factor: 17.694

8.  High-Q microresonators on 4H-silicon-carbide-on-insulator platform for nonlinear photonics.

Authors:  Chengli Wang; Zhiwei Fang; Ailun Yi; Bingcheng Yang; Zhe Wang; Liping Zhou; Chen Shen; Yifan Zhu; Yuan Zhou; Rui Bao; Zhongxu Li; Yang Chen; Kai Huang; Jiaxiang Zhang; Ya Cheng; Xin Ou
Journal:  Light Sci Appl       Date:  2021-07-05       Impact factor: 17.782

9.  Overcoming the quantum limit of optical amplification in monolithic waveguides.

Authors:  Zhichao Ye; Ping Zhao; Krishna Twayana; Magnus Karlsson; Victor Torres-Company; Peter A Andrekson
Journal:  Sci Adv       Date:  2021-09-15       Impact factor: 14.136

  9 in total

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