Published January 2018 | Version v1
Journal article

Micro-combs: A novel generation of optical sources

  • 1. INRS-EMT, 1650 Blvd. Lionel-Boulet, Varennes, Québec J3X 1S2 (Canada)
  • 2. Department of Physics and Astronomy, University of Sussex, Brighton BN1 9QH (United Kingdom)
  • 3. Centre for Microphotonics, Swinburne University of Technology, Hawthorn Victoria, 3122 (Australia)
  • 4. GeorgiaTech-CNRS Joint International Laboratory [UMI 2958], Atlanta Mirror Site, School of Electrical and Computer Engineering, 777 Atlantic Drive NW, Atlanta, GA 30332 (United States)
  • 5. FEMTO-ST Institute, Univ. Bourgogne Franche-Comté, CNRS, Optics Department, 15B Avenue des Montboucons, 25030 Besançon cedex (France)
  • 6. Dipartimento di Ingegneria dell'Informazione, Università di Brescia, and INO-CNR, via Branze 38, 25123 Brescia (Italy)
  • 7. Department of Electronic Engineering, Tsinghua University, Beijing 100084 (China)
  • 8. School of Electrical and Computer Engineering, Purdue University, 465 Northwestern Avenue, West Lafayette, IN 47907-2035 (United States)
  • 9. National Research University of Information Technologies, Mechanics and Optics, St Petersburg (Russian Federation)
  • 10. Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu 610054 (China)

Description

The quest towards the integration of ultra-fast, high-precision optical clocks is reflected in the large number of high-impact papers on the topic published in the last few years. This interest has been catalysed by the impact that high-precision optical frequency combs (OFCs) have had on metrology and spectroscopy in the last decade [[1], [2], [3], [4], [5]]. OFCs are often referred to as optical rulers: their spectra consist of a precise sequence of discrete and equally-spaced spectral lines that represent precise marks in frequency. Their importance was recognised worldwide with the 2005 Nobel Prize being awarded to T.W. Hänsch and J. Hall for their breakthrough in OFC science [5]. They demonstrated that a coherent OFC source with a large spectrum – covering at least one octave – can be stabilised with a self-referenced approach, where the frequency and the phase do not vary and are completely determined by the source physical parameters. These fully stabilised OFCs solved the challenge of directly measuring optical frequencies and are now exploited as the most accurate time references available, ready to replace the current standard for time. Very recent advancements in the fabrication technology of optical micro-cavities [6] are contributing to the development of OFC sources. These efforts may open up the way to realise ultra-fast and stable optical clocks and pulsed sources with extremely high repetition-rates, in the form of compact and integrated devices. Indeed, the fabrication of high-quality factor (high-Q) micro-resonators, capable of dramatically amplifying the optical field, can be considered a photonics breakthrough that has boosted not only the scientific investigation of OFC sources [[8], [13], [11], [12], [10], [7], [9]] but also of optical sensors and compact light modulators [[14], [6]]. In this framework, the demonstration of planar high-Q resonators, compatible with silicon technology [[14], [13], [11], [12], [10]], has opened up a unique opportunity for these devices to provide entirely new capabilities for photonic-integrated technologies. Indeed, it is well acknowledged by the electronics industry that future generations of computer processing chips will inevitably require an extremely high density of copper-based interconnections, significantly increasing the chip power dissipation to beyond practical levels [[15], [16], [17]]; hence, conventional approaches to chip design must undergo radical changes. On-chip optical networks, or optical interconnects, can offer high speed and low energy per-transferred-bit, and micro-resonators are widely seen as a key component to interface the electronic world with photonics. Many information technology industries have recently focused on the development of integrated ring resonators to be employed for electrically-controlled light modulators [[14], [15], [16], [17]], greatly advancing the maturity of micro-resonator technology as a whole. Recently [[13], [11], [12]], the demonstration of OFC sources in micro-resonators fabricated in electronic (i.e. in complementary metal oxide semiconductor (CMOS)) compatible platforms has given micro-cavities an additional appeal, with the possibility of exploiting them as light sources in microchips. This scenario is creating fierce competition in developing highly efficient OFC generators based on micro-cavities which can radically change the nature of information transport and processing. Even in telecommunications, perhaps a more conventional environment for optical technologies, novel time-division multiplexed optical systems will require extremely stable optical clocks at ultra-high pulse repetition-rates towards the THz scale. Furthermore, arbitrary pulse generators based on OFC [[18], [19]] are seen as one of the most promising solutions for this next generation of high-capacity optical coherent communication systems. This review will summarise the recent exciting achievements in the field of micro-combs, namely optical frequency combs based on high-Q micro-resonators, with a perspective on both the potential of this technology, as well as the open questions and challenges that remain.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.physrep.2017.08.004

Additional details

Identifiers

DOI
10.1016/j.physrep.2017.08.004;
PII
S0370157317303253;

Publishing Information

Journal Title
Physics Reports
Journal Volume
729
Journal Page Range
p. 1-81
ISSN
0370-1573
CODEN
PRPLCM

INIS

Country of Publication
Netherlands
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
50043741
Subject category
S75: CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY;
Descriptors DEI
CAPACITY; INTERFACES; OPTICAL SYSTEMS; PULSE GENERATORS; QUALITY FACTOR; RESONATORS; SEMICONDUCTOR MATERIALS; SENSORS; SILICON; SPECTRA; SPECTROSCOPY
Descriptors DEC
DIMENSIONLESS NUMBERS; ELECTRONIC EQUIPMENT; ELEMENTS; EQUIPMENT; FUNCTION GENERATORS; MATERIALS; SEMIMETALS

Optional Information

Copyright
Copyright (c) 2017 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.