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research article

High density lithium niobate photonic integrated circuits

Li, Zihan  
•
Wang, Rui Ning  
•
Lihachev, Grigory
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August 10, 2023
Nature Communications

Photonic integrated circuits have the potential to pervade into multiple applications traditionally limited to bulk optics. Of particular interest for new applications are ferroelectrics such as Lithium Niobate, which exhibit a large Pockels effect, but are difficult to process via dry etching. Here we demonstrate that diamond-like carbon (DLC) is a superior material for the manufacturing of photonic integrated circuits based on ferroelectrics, specifically LiNbO3. Using DLC as a hard mask, we demonstrate the fabrication of deeply etched, tightly confining, low loss waveguides with losses as low as 4 dB/m. In contrast to widely employed ridge waveguides, this approach benefits from a more than one order of magnitude higher area integration density while maintaining efficient electro-optical modulation, low loss, and offering a route for efficient optical fiber interfaces. As a proof of concept, we demonstrate a III-V/LiNbO3 based laser with sub-kHz intrinsic linewidth and tuning rate of 0.7 PHz/s with excellent linearity and CMOS-compatible driving voltage. We also demonstrated a MZM modulator with a 1.73 cm length and a halfwave voltage of 1.94 V.

Lithium niobate (LN) is difficult to process via dry etching. Here, authors demonstrate the fabrication of deeply etched, tightly confining, low loss LN photonic integrated circuits with losses 4 dB/m using diamond like carbon as a hard mask.

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Type
research article
DOI
10.1038/s41467-023-40502-8
Web of Science ID

WOS:001050351300033

Author(s)
Li, Zihan  
Wang, Rui Ning  
Lihachev, Grigory
Zhang, Junyin  
Tan, Zelin  
Churaev, Mikhail  
Kuznetsov, Nikolai  
Siddharth, Anat  
Bereyhi, Mohammad J.
Riemensberger, Johann  
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Date Issued

2023-08-10

Publisher

Nature Portfolio

Published in
Nature Communications
Volume

14

Issue

1

Subjects

Multidisciplinary Sciences

•

Science & Technology - Other Topics

•

2nd-harmonic generation

•

wave-guides

•

chip

•

diamond

•

diode

•

films

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
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Available on Infoscience
September 11, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/200484
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