laser communication in space
Illustration — A diagram showing two solar-powered satellites communicating optically in space via lasers. The use of free-space optical communication in outer space. Communication may be fully in space (an inter-satellite laser link) or in a ground-to-satellite or satellite-to-ground application.
Also recorded as laser space communication · space laser communication · inter-satellite laser link
laser communication in space

NASA/Goddard · Public domain
- Field
- free-space optical communication · laser communication
VALÉORINE Encyclopedia
VALÉORINE documentary reading
Documentary summary
Illustration — A diagram showing two solar-powered satellites communicating optically in space via lasers. The use of free-space optical communication in outer space. Communication may be fully in space (an inter-satellite laser link) or in a ground-to-satellite or satellite-to-ground application.
Admitted source layer · organised and presented by VALÉORINE
Note VALÉORINE
No house-authored Note is published until its assertions and sources pass the VALÉORINE evidence contract. The documentary article remains available in full while that enrichment is being consolidated.
Documentary enrichment in progress · no unsupported statement published
Reference Check
Propose documentary evidence for laser communication in space. A contribution is never written directly as fact: identity, source, rights and evidence gates still decide.
Sign in to contribute
World of VALÉORINE
Documentary connections
Only confirmed graph relationships appear here. Images are shown only when their identity and reuse rights both pass the documentary gate.
Documentary evidence
Evidence Panel
original value insufficient · checked 25 September 2026
- Identity
- resolved
- Independent source families
- 0
- Admitted assertions
- 0
- Open conflicts
- 0
Authority files
wikidata · Q15844817 · wikipedia · Laser communication in space
In this article
Before 1990
Before 1990
The main advantage of using laser communications over radio waves is increased bandwidth, enabling the transfer of more data in less time. In outer space, the communication range of free-space optical communication is currently of the order of hundreds of thousands of kilometers. Laser-based optical communication has been demonstrated between the Earth and Moon and it has the potential to bridge interplanetary distances of millions of kilometers, using optical telescopes as beam expanders.
On 20 January 1968, the television camera of the Surveyor 7 lunar lander successfully detected two argon lasers from Kitt Peak National Observatory in Arizona and Table Mountain Observatory in Wrightwood, California.
1991–2000
1991–2000
In 1992, the Galileo probe proved successful one-way detection of laser light from Earth as two ground-based lasers were seen from by the out-bound probe. The first successful laser-communication link from space was carried out by Japan in 1995 between the NASDA's ETS-VI GEO satellite and the National Institute of Information and Communications Technology (NICT)s optical ground station in Tokyo achieving 1 Mbit/s.
2001–2010
2001–2010
In November 2001, the world's first laser intersatellite link was achieved in space by the European Space Agency (ESA) satellite Artemis, providing an optical data transmission link with the CNES Earth observation satellite SPOT 4. Achieving 50 Mbps across, the distance of a LEO-GEO link. Since 2005, ARTEMIS has been relaying two-way optical signals from Kirari, the Japanese Optical Inter-orbit Communications Engineering Test Satellite. In May 2005, a two-way distance record for communication was set by the Mercury laser altimeter instrument aboard the MESSENGER spacecraft. This diode-pumped infrared neodymium laser, designed as a laser altimeter for a Mercury orbit mission, was able to communicate across a distance of, as the craft neared Earth on a fly-by. In 2006, Japan carried out the first LEO-to-ground laser-communication downlink from JAXA's OICETS LEO satellite and NICT's optical ground station. In 2008, the ESA used laser communication technology designed to transmit 1.8 Gbit/s across, the distance of a LEO-GEO link. Such a terminal was successfully tested during an in-orbit verification using the German radar satellite TerraSAR-X and the American Near Field Infrared Experiment (NFire) satellite. The two Laser Communication Terminals (LCT) used during these tests were built by the German company Tesat-Spacecom, in cooperation with the German Aerospace Center (DLR).
2011–2020
2011–2020
• Illustration — Depiction of the optical module of the LLCD • Illustration — Rendering of the successful OPALS experiment, the invisible laser shown here as a visible beam In January 2013, NASA used lasers to beam an image of the Mona Lisa to the Lunar Reconnaissance Orbiter (LRO) roughly away at night from the Next Generation Satellite Laser Ranging (NGSLR) Station at NASA's Earth-based Goddard Space Flight Center. To compensate for atmospheric interference, an error correction code algorithm similar to that used in CDs was implemented. In September 2013, a laser communication system was one of four science instruments launched with the NASA LADEE (Lunar Atmosphere and Dust Environment Explorer) mission. After a month-long transit to the Moon and a 40-day spacecraft checkout, daytime laser communications experiments were performed over three months during late 2013 and early 2014. Initial data returned from the Lunar Laser Communication Demonstration (LLCD) equipment on LADEE set a space communication bandwidth record in October 2013 when early tests using a pulsed laser beam to transmit data over the between the Moon and Earth passed data at a "record-breaking download rate of 622 megabits per second (Mbps)", and also demonstrated an error-free data upload rate of 20 Mbit/s from an Earth ground station to LADEE in lunar orbit. The LLCD is NASA's first attempt at two-way space communication using an optical laser instead of radio waves, and is expected to lead to operational laser systems on NASA satellites in future years. In November 2013, laser communication from a jet platform Tornado was successfully demonstrated for the first time. A laser terminal of the German company Mynaric (formerly ViaLight Communications) was used to transmit data at a rate of 1 Gbit/s over a distance of 60 km and at a flight speed of 800 km/h in daylight. Additional challenges in this scenario were the fast flight maneuvers, strong vibrations, and the effects of atmospheric turbulence. The demonstration was financed by EADS Cassidian Germany and performed in cooperation with the German Aerospace Center DLR. In November 2014, the first ever use of gigabit laser-based communication as part of the European Data Relay System (EDRS) was carried out. Further system and operational service demonstrations were carried out in 2014. Data from the EU Sentinel-1A satellite in LEO was transmitted via an optical link to the ESA-Inmarsat Alphasat in GEO and then relayed to a ground station using a conventional Ka-band downlink. The new system can offer speeds up to 7.2 Gbit/s. The Laser terminal on Alphasat is called TDP-1 and is still regularly used for tests. The first EDRS terminal (EDRS-A) for productive use has been launched as a payload on the Eutelsat EB9B spacecraft and became active in December 2016. It routinely downloads high-volume data from the Sentinel 1A/B and Sentinel 2A/B spacecraft to ground. So far (April 2019) more than 20000 links (11 PBit) have been performed. As of May 2023, EDRS has over one million minutes of communications with more than 50,000 successful inter-satellite links. In December 2014, NASA's Optical Payload for Lasercomm Science (OPALS) announced a breakthrough in space-to-ground laser communication, downloading at a speed of 400 megabits per second. The system is also able to re-acquire tracking after the signal is lost due to cloud cover. The OPALS experiment was launched on 18 April 2014 to the International Space Station (ISS) to further test the potential for using a laser to transmit data to Earth from space. The first LEO-to-ground lasercom demonstration using a Japanese microsatellite (SOCRATES) was carried out by NICT in 2014, and the first quantum-limited experiments from space were done by using the same satellite in 2016. In February 2016, Google X announced to have achieved a stable laser communication connection between two stratospheric balloons over a distance of as part of Project Loon. The connection was stable over many hours and during day and nighttime and reached a data rate of 155 Mbit/s. In June 2018, Facebook's Connectivity Lab (related to Facebook Aquila) was reported to have achieved a bidirectional 10 Gbit/s air-to-ground connection in collaboration with Mynaric. The tests were carried out from a conventional Cessna aircraft in distance to the optical ground station. While the test scenario had worse platform vibrations, atmospheric turbulence and angular velocity profiles than a stratospheric target platform the uplink worked flawlessly and achieved 100% throughput at all times. The downlink throughput occasionally dropped to about 96% due to a non-ideal software parameter which was said to be easily fixed. In April 2020, the Small Optical Link for International Space Station (SOLISS) created by JAXA and Sony Computer Science Laboratories, established bidirectional communication between the ISS and a telescope of the National Institute of Information and Communications Technology of Japan. On 29 November 2020, Japan launched the inter-satellite optical data relay geostationary orbit satellite with high speed laser communication technology, named LUCAS (Laser Utilizing Communication System).
2021–present
2021–present
• Illustration — First video transmitted via laser from Psyche. Uploaded before launch, the short ultra-high definition video features an orange tabby cat named Taters, the pet of a JPL employee, chasing a laser pointer, with overlaid graphics. The graphics illustrate several features from the tech demo, such as Psyche's orbital path, Palomar's telescope dome, and technical information about the laser and its data bit rate. Tater's heart rate, color, and breed are also on display. In June 2021, the US Space Development Agency launched two 12U CubeSats to Sun-synchronous orbit to demonstrate laser communication links between the satellites and a remotely controlled MQ-9 Reaper. On December 7, 2021, NASA's Laser Communications Relay Demonstration (LCRD) launched as part of USAF STP-3, to communicate between geosynchronous orbit and the Earth's surface. In May 2022, TeraByte InfraRed Delivery (TBIRD) was launched (on PTD-3) and tested 100 Gbit/s comms from 300 mile orbit to California. Laser communications in deep space will be tested on the Psyche mission to the main-belt asteroid 16 Psyche, launched in 2023. The system is called Deep Space Optical Communications (DSOC), and is expected to increase spacecraft communications performance and efficiency by 10 to 100 times over conventional means. In April 2024, the test was successfully completed with the Psyche spacecraft at a distance of 140 million miles. In April 2026, the crewed Artemis II mission successfully used a laser communication system known as the Orion Artemis II Optical Communications System (O2O).
Future missions
Future missions
Japan's National Institute of Information and Communications Technology (NICT) will demonstrate in 2022 the fastest bidirectional lasercom link between the geosynchronous orbit and the ground at 10 Gbit/s by using the HICALI (High-speed Communication with Advanced Laser Instrument) lasercom terminal on board the ETS-9 (Engineering Test Satellite IX) satellite, as well as the first intersatellite link at the same high speed between a CubeSat in LEO and HICALI in GEO one year later. As of 2024 May, a Full Trasceiver type terminal compatible for CubeSat has been designed and in development. CubeSOTA is expected to launch during the Japanese fiscal year 2025 with the terminal for "demonstrating various scenarios, including LEO–ground, LEO–HAPS, and LEO–LEO." CubeSOTA "will be the first in-orbit validation of the terminals." LunaNet is a NASA and ESA project and proposed data network aiming to provide a “Lunar Internet“ for cis-lunar spacecraft and installations. The specification for the system includes optical communications for links between the Earth and the Moon as well as for links between lunar satellites and the lunar surface.
Commercial use
Commercial use
Corporations like SpaceX, Facebook and Google and a series of startups are currently pursuing various concepts based on laser communication technology. The most promising commercial applications can be found in the interconnection of satellites or high-altitude platforms to build up high-performance optical backbone networks. Other applications include transmitting large amounts of data directly from a satellite, aircraft or unmanned aerial vehicle (UAV) to the ground.
Operators
Operators
Multiple companies and government organizations want to use laser communication in space for satellite constellations in low Earth orbit to provide global high-speed Internet access. Similar concepts are pursued for networks of aircraft and stratospheric platforms. • Project — Project Concept — Environment — Scenario — Data rate — Total number of lasers deployed/anticipated — Supplier — Status • European Data Relay System (EDRS) — Data relay to GEO satellites from LEO Earth observation satellites and for intelligence, surveillance and reconnaissance missions — GEO, LEO — Space-to-space — 1.8 Gbit/s — 7/9 — Tesat-Spacecom — Active since 2016 • Starlink — Satellite mega-constellation for global telecommunications — LEO — Space-to-space — 100 Gbit/s — >1,000/>10,000 — SpaceX / Starlink — Active since 2021 • DARPA Blackjack — Risk reduction efforts to test the viability of new military space capabilities provided by emerging commercial LEO constellations — LEO — Space-to-space — 2/unknown — Mynaric, SA Photonics — Active since 2022 • Rassvet — Satellite constellation for global telecommunications — LEO — Space-to-space — 10 Gbp/s — >30/900 — Bureau 1440 — Being deployed, partial user service expected to start in 2027 • Amazon Kuiper — Satellite mega-constellation for global telecommunications — LEO — Space-to-space — 0/>10,000 — Development • SDA Proliferated Warfighter Space Architecture — Proliferated LEO constellation consisting of multiple layers serving needs of the U.S. Department of Defense (DoD). — LEO — Space-to-space — 2.5 Gbit/s — 0/>1,000 — Mynaric, SA Photonics (a CACI subsidiary), Skyloom, Tesat-Spacecom — Development • OneWeb Gen Two — Satellite mega-constellation for global telecommunications — LEO — Space-to-space — 0/>1,000 — Development • Telesat LEO constellation — Satellite mega-constellation for global telecommunications — LEO — Space-to-space — 0/752 — Development • Laser Light Communications — Satellite constellation for global telecommunications building an optical backbone network in space — MEO — Space-to-space, Space-to-ground — 100 Gbit/s — Ball Aerospace & Technologies — Development • WarpHub InterSat — Inter satellite data relay for LEO Earth observation satellites, space-to-ground communication uses RF. — MEO — Space-to-space — 1 Gbit/s — Development • Analytical Space — In-space hybrid RF/optical data relay network for Earth observation satellites — LEO — Space-to-ground — Development • BridgeComm — Direct data downstream from LEO Earth observation satellites to the ground — LEO — Space-to-ground — 1 Gbit/s — Surrey Satellite Technology — Development • Cloud Constellation — Secure data storage on satellites and secure intercontinental connections — LEO — Space-to-space — Mynaric — Development • Facebook Aquila — Telecommunications for rural and remote areas provided by a network of high-altitude platforms — Stratosphere — Air-to-air, Air-to-ground — 10 Gbit/s — Mynaric — Terminated • LeoSat — Satellite mega-constellation for global telecommunications — LEO — Space-to-space — Thales Alenia Space — Terminated • Google Loon — Telecommunications for rural and remote areas provided by a network of stratospheric balloons — Stratosphere — Air-to-air — 0.155 Gbit/s — Terminated • SpaceLink — Data relay services from MEO for LEO satellites — MEO, LEO — Space-to-space — Mynaric — Terminated 1= • Legend:
Suppliers
Suppliers
• Illustration — Mynaric optical communication terminal intended for satellite use A substantial market for laser communication equipment may establish when these projects will be fully realized. New advancements by equipment suppliers is enabling laser communications while reducing the cost. Beam modulation is being refined, as its software, and gimbals. Cooling problems have been addressed and photon detection technology is improving. Currently active notable companies in the market include: • Company — Product status • Ball Aerospace and Honeywell [1] — in development • Ecuadorian Space Agency [2] — in production • Hensoldt [3] • LGS Innovations • MBRYONICS [4] — in development • Mostcom JSC [5] — in development • Mynaric [6] • Sony — in development • SpaceX / Starlink — in production • Surrey Satellite Technology — in development • Tesat-Spacecom — in production • Thales Alenia Space — in production • Transcelestial [7] — in development
Secure communications
Secure communications
Secure communications have been proposed using a laser N-slit interferometer where the laser signal takes the form of an interferometric pattern, and any attempt to intercept the signal causes the collapse of the interferometric pattern. This technique uses populations of indistinguishable photons and has been demonstrated to work over propagation distances of practical interest and, in principle, it could be applied over large distances in space. Assuming available laser technology, and considering the divergence of the interferometric signals, the range for satellite-to-satellite communications has been estimated to be approximately. These estimates are applicable to an array of satellites orbiting the Earth. For space vehicles or space stations, the range of communications is estimated to increase up to. This approach to secure space-to-space communications was selected by Laser Focus World as one of the top photonics developments of 2015.

O2O optical communications modules on the Orion Spacecraft
NASA

Dave Brennen, an electronics technician, installing the optical system under the belly of the PC-12 aircraft that streamed the first 4K video from aircraft to the International Space Station and back.
NASA Glenn Research Center / NASA/GRC/Sara Lowthian-Hanna · This image or video was catalogued by Glenn Research Center of the United States National Aeronautics and Space Administration (NASA) under Photo ID: GRC-2024-C-05345.
Notes from the source article
Cited by Wikipedia
Notes from the source article
These works are cited by the source article, in its own numbering. They are recorded as its citations, not as sources VALÉORINE has verified.
- 1.National Aeronautics and Space Agency. LLCD: 2013-2014. June 15, 2018.
- 2.Steen Eiler Jørgensen. Optisk kommunikation i deep space – Et feasibilitystudie i forbindelse med Bering-missionen. Dansk Rumforskningsinstitut. October 27, 2003.
- 3.Argon Laser as Seen from the Moon.
- 4.Berger, Brian. NASA To Test Laser Communications With Mars Spacecraft. Space.com. November 15, 2004.
- 5.Araki, Kenichi. Performance evaluation of laser communication equipment onboard the ETS-VI satellite. Free-Space Laser Communication Technologies VIII. SPIE. 2699. 52. 1996. 10.1117/12.238434.
- 6.A world first: Data transmission between European satellites using laser light. 22 November 2001.
- 7.ESA. Optical Communications in Space. August 1997.
- 8.ESA. Another world first for ARTEMIS: a laser link with an aircraft. 19 December 2006.
- 9.BBC News. Space probe breaks laser record: A spacecraft has sent a laser signal to Earth from 24 million km away in interplanetary space. January 6, 2006.
- 10.Toyoshima, Morio. Acta Astronautica "Results of Kirari optical communication demonstration experiments with NICT optical ground station (KODEN) aiming for future classical and quantum communications in space". Acta Astronautica. 74. 40–49. May 2012. 10.1016/j.actaastro.2011.12.020.
- 11.Laser Communication Terminals: An Overview
- 12.Tesat-Spacecom Website
- 13.TerraSAR-X NFIRE test.
- 14.Peckham, Matt. NASA Beams Mona Lisa Image Into Space. Time. January 21, 2013.
- 15.NASA launches robotic explorer to moon from Va.; trouble develops early in much-viewed flight. Toledo Blade. Associated Press. 2013-09-07.
- 16.Messier, Doug. NASA Laser System Sets Record with Data Transmissions From Moon. Parabolic Arc. 2013-10-23.
- 17.Belz, Lothar. Optical data link successfully demonstrated between fighter plane and ground station. 2013-12-19.
- 18.Extreme Test for the ViaLight Laser Communication Terminal MLT-20 – Optical Downlink from a Jet Aircraft at 800 km/h, December 2013
- 19.Laserkommunikation zwischen Jet und Bodenstation.
- 20.First image download over new gigabit laser connection in space.
- 21.ESA. Laser link offers high-speed delivery. 28 November 2014.
- 22.ESA. Start of service for_Europe's Space Data Highway. 23 November 2016.
- 23.ESA. European Space Data Highway forges 20000 successful laser links. 2 April 2019.
- 24.EDRS reached 1,000,000 minutes of communications!. Airbus. 2023-04-25.
- 25.SpaceDataHighway reaches milestone of 50,000 successful laser connections. Airbus. 2021-06-24.
- 26.AUTO-TDS: ENABLING LASER COMMUNICATION NETWORKS TO AUTO DETECT INCOMING LINKS, SECURING CONNECTION AND AUTO-ROUTING THE DATA. ResearchGate. 2022-09-18.
- 27.Landau, Elizabeth. OPALS: Light Beams Let Data Rates Soar. Jet Propulsion Laboratory. NASA PD-notice. 9 December 2014.
- 28.L. Smith, Stephanie. JPL Cargo Launched to Space Station. Jet Propulsion Laboratory. NASA. 21 April 2014.
- 29.Carrasco-Casado, Alberto. Acta Astronautica "LEO-to-ground optical communications using SOTA (Small Optical TrAnsponder) – Payload verification results and experiments on space quantum communications". Acta Astronautica. 139. 377–384. October 2017. 10.1016/j.actaastro.2017.07.030.
- 30.Takenaka, Hideki. Satellite-to-ground quantum-limited communication using a 50-kg-class microsatellite. Nature Photonics. 11. 8. 502–508. 2017. 1749-4885.
- 31.Metz, Cade. Google Laser-Beams the Film Real Genius 60 Miles Between Balloons. Wired. 24 February 2016.
- 32.Price, Rob. Facebook tested plane-mounted lasers that fire super high-speed internet over California — here are the photos. Business Insider. 29 June 2018.
- 33.JAXA. Small Optical Link for International Space Station (SOLISS) Succeeds in Bidirectional Laser Communication Between Space and Ground Station. April 23, 2020.
- 34.NHK. 「データ中継衛星」搭載のH2Aロケット43号機打ち上げ成功. November 29, 2020.
- 35.JAXA. 光衛星間通信システム(LUCAS. October 30, 2020.
- 36.NASA's Tech Demo Streams First Video From Deep Space via Laser. NASA Jet Propulsion Laboratory (JPL).
- 37.SpaceNews. DoD space agency to launch laser communications experiments on SpaceX rideshare. 2021-06-02.
- 38.Communications system achieves fastest laser link from space yet
- 39.Greicius, Tony. Psyche Overview. Nasa. 14 September 2017.
- 40.Deep Space Communications via Faraway Photons NASA, 18 October 2017
- 41.NASA's Optical Comms Demo Transmits Data Over 140 Million Miles - NASA. 2024-04-25.
- 42.NASA's Orion Artemis II Optical Communications System (O2O) - NASA. 2023-08-02.
- 43.Toyoshima, Morio. 2017 IEEE International Conference on Space Optical Systems and Applications (ICSOS). 267–271. 2017. 978-1-5090-6511-0.
- 44.Carrasco-Casado, Alberto. 2019 IEEE International Conference on Space Optical Systems and Applications (ICSOS). 1–5. 2020. 978-1-7281-0500-0.
- 45.Carrasco-Casado, Alberto. Miniaturized Multi-Platform Free-Space Laser-Communication Terminals for Beyond-5G Networks and Space Applications. Photonics. 11. 6. 545. 2024-06-07. 10.3390/photonics11060545.
- 46.SPIE. Broadband Backhaul Communication for Stratospheric Platforms: The Stratospheric Optical Payload Experiment (STROPEX). July 21, 2006.
- 47.Aviation Week. Inside The World's First Space-Based Commercial Laser-Relay Service.
- 48.European Data Relay Satellite System (EDRS) Overview. artes.esa.int.
- 49.Fréquences Après consultation publique, l'Arcep attribue une nouvelle autorisation d'utilisation de fréquences à Starlink (see ZIP file linked from article narrative). arcep.fr. 2 Jun 2022.
- 50.Latest Starlink Satellites Equipped with Laser Communications, Musk Confirms - Via Satellite -. Via Satellite. 2021-01-25.
- 51.Grush, Loren. With latest Starlink launch, SpaceX touts 100 Mbps download speeds and 'space lasers'. The Verge. 2020-09-03.
- 52.Hitchens, Theresa. DARPA's Mandrake 2 satellites: communicating at the speed of light. Breaking Defense. 25 August 2022.
- 53.To boost its military space business, Lockheed Martin turns to commercial players. SpaceNews. 2020-11-23.
- 54.DoD to test laser communications terminals in low Earth orbit. SpaceNews. 2020-06-08.
- 55.Erwin, Sandra. Military experiment demonstrates intersatellite laser communications in low Earth orbit. SpaceNews. 17 May 2022.
- 56.Pylypiv, Ihor. Russia lost access to Starlink and is building a replacement. What is known about the Rassvet system?. Ukrainska Pravda. 8 August 2026.
- 57.Erwin, Sandra. Amazon to link Kuiper satellites to DoD's mesh network in space. SpaceNews. 14 October 2022.
- 58.US Military Places a Bet on LEO for Space Security. interactive.satellitetoday.com.
- 59.Space Development Agency, Office of the Under Secretary of Defense For Research and Engineering (OUSD(R&E)). Optical Communications Terminal (OCT) Standard Version 3.0.
- 60.Werner, Debra. SDA slide reveals Tranche 0 optical terminal manufacturers. SpaceNews. 18 October 2022.
- 61.OneWeb 'plans optical links' for next generation of satellit. www.capacitymedia.com. March 2021.
- 62.Telesat Lightspeed LEO Network Telesat. www.telesat.com. 20 May 2020.
- 63.HALO Global Network by Laser Light Communications.
- 64.Ball Corp Prime Contractor for Laser Light's Satellite Fleet - Analyst Blog. nasdaq.com. 2014-09-11.
- 65.WarpHub InterSat.
- 66.Khalid, Asma. With US$200 Million, MIT's The Engine Makes Its First Investments In 'Tough Tech'. wbur.org. September 19, 2017.
- 67.Harris, David L. This Boston startup is building a faster way to send data from satellites — using lasers. Boston Business Journal. March 12, 2015.
- 68.SPIE Europe. Miniature satellites to transmit optical data from space. optics.org.
- 69.Cloud Constellation Selects Mynaric Laser OISL Terminals for its SpaceBelt Satellites - Via Satellite -. Via Satellite. 2021-05-20.
- 70.Newton, Casey. Inside the test flight of Facebook's first internet drone. The Verge. 2016-07-21.
- 71.SPIE Europe. Thales signs deal on optically connected satellites. optics.org.
- 72.SpaceNews. LeoSat, absent investors, shuts down. 13 November 2019.
- 73.Mynaric, SpaceLink Partner to Accelerate Satellite Laser Terminal Technology - Via Satellite -. Via Satellite. 2021-05-12.
- 74.Werner, Debra. SpaceLink to wind down operations, barring last-minute investment. SpaceNews. 31 October 2022.
- 75.Aviation Week. Big Gains On Horizon For Laser Communications Suppliers. March 11, 2015.
- 76.Russell, Kendall. Honeywell, Ball to Develop Optical Communication Links - Via Satellite -. Satellite Today. 17 April 2018.
- 77.RBC Signals. RBC Signals and Ecuadorian Civilian Space Agency (EXA) Announce Collaboration For Optical Communication System -. 4 October 2018.
- 78.Research Gate. LASER COMMUNICATIONS FOR CUBESATS: A 50 MBPS LASER/RADIO HYBRID TRANSCEIVER IN A PC-104 FORM FACTOR CARD -. 14 October 2019.
- 79.Henry, Caleb. DARPA Awards Optical Satellite Terminal Contract to LGS Innovations. Satellite Today. 2016-05-18.
- 80.Nikkei Asian Review. Sony to launch space business. April 15, 2018.
- 81.Tesat-Spacecom. Tesat - Products - Laser Products.
- 82.Karekar, Rupali. Space buffs make light work of data transfer. The Straits Times. 2017-03-22.
- 83.F. J. Duarte. Secure interferometric communications in free space. Optics Communications. 205. 4. 313–319. May 2002. 10.1016/S0030-4018(02)01384-6.
- 84.Duarte, F. J. Secure interferometric communications in free space: enhanced sensitivity for propagation in the metre range. Journal of Optics A: Pure and Applied Optics. 7. 1. 73–75. January 2005. 10.1088/1464-4258/7/1/011.
- 85.[http://iopscience.iop.org/2040-8986/13/3/035710 F. J. Duarte, T. S. Taylor, A. M. Black, W. E. Davenport, and P. G. Varmette, N-slit interferometer for secure free-space optical communications: 527 m intra interferometric path length, J. Opt 13, 035710 (2011)]
- 86.F. J. Duarte and T. S. Taylor, Quantum entanglement physics secures space-to-space interferometric communications, Laser Focus World 51(4), 54-58 (2015)
- 87.J. Wallace, Technology Review: Top 20 technology picks for 2015 showcase wide scope of photonics advances, Laser Focus World 51(12), 20-30 (2015)
Bibliography printed in the source article · 1
- David G. Aviv (2006): Laser Space Communications, ARTECH HOUSE
References
Citations
References
Each reference names the institution holding it, so a reader may go to the document itself.
reference work
Partially resolvedreference work
Partially resolved
The Encyclopedia exists whether or not anything is for sale. Corrections are recorded rather than overwritten, and every version of this record is kept. Published 14 August 2026.
Elsewhere in Scientific instruments
736 published records in this field, each with its sources named.
- Large Binocular TelescopeTerminology
- Large Latin American Millimeter ArrayTerminology
- Large Millimeter TelescopeTerminology
- Large Zenith TelescopeTerminology
- laser guide starTerminology
- Laser Ranging RetroflectorTerminology
- Lehmer sieveTerminology
- Leonhard Euler TelescopeTerminology
Best supported in this field
For owners
Own an object connected with laser communication in space?
A specialist will read what you send and tell you what the house can establish, what it cannot, and whether the object is suited to sale. There is no charge and no obligation. The object stays with you throughout; nothing is shipped to us unless it is arranged in writing beforehand.