Satellites promise global-scale quantum networks

Fuente: arXiv
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Main Authors: Goswami, Sumit, Dhara, Sayandip, Sinclair, Neil, Mohageg, Makan, Sidhu, Jasminder S., Mukhopadhyay, Sabyasachi, Krutzik, Markus, Lowell, John R., Oi, Daniel K. L., Gundogan, Mustafa, Chen, Ying-Cheng, Jen, Hsiang-Hua, Simon, Christoph
Format: Preprint
Published: 2025
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author Goswami, Sumit
Dhara, Sayandip
Sinclair, Neil
Mohageg, Makan
Sidhu, Jasminder S.
Mukhopadhyay, Sabyasachi
Krutzik, Markus
Lowell, John R.
Oi, Daniel K. L.
Gundogan, Mustafa
Chen, Ying-Cheng
Jen, Hsiang-Hua
Simon, Christoph
author_facet Goswami, Sumit
Dhara, Sayandip
Sinclair, Neil
Mohageg, Makan
Sidhu, Jasminder S.
Mukhopadhyay, Sabyasachi
Krutzik, Markus
Lowell, John R.
Oi, Daniel K. L.
Gundogan, Mustafa
Chen, Ying-Cheng
Jen, Hsiang-Hua
Simon, Christoph
contents Academia, governments, and industry around the world are on a quest to build long-distance quantum communication networks for a future quantum internet. Using air and fiber channels, quantum communication quickly faced the daunting challenge of exponential photon loss with distance. Quantum repeaters were invented to solve the loss problem by probabilistically establishing entanglement over short distances and using quantum memories to synchronize the teleportation of such entanglement to long distances. However, due to imperfections and complexities of quantum memories, ground-based proof-of-concept repeater demonstrations have been restricted to metropolitan-scale distances. In contrast, direct photon transmission from satellites through empty space faces almost no exponential absorption loss and only quadratic beam divergence loss. A single satellite successfully distributed entanglement over more than 1,200 km. It is becoming increasingly clear that quantum communication over large intercontinental distances (e.g. 4,000-20,000 km) will likely employ a satellite-based architecture. This could involve quantum memories and repeater protocols in satellites, or memory-less satellite-chains through which photons are simply reflected, or some combination thereof. Rapid advancements in the space launch and classical satellite communications industry provide a strong tailwind for satellite quantum communication, promising economical and easier deployment of quantum communication satellites.
format Preprint
id arxiv_https___arxiv_org_abs_2505_06693
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Satellites promise global-scale quantum networks
Goswami, Sumit
Dhara, Sayandip
Sinclair, Neil
Mohageg, Makan
Sidhu, Jasminder S.
Mukhopadhyay, Sabyasachi
Krutzik, Markus
Lowell, John R.
Oi, Daniel K. L.
Gundogan, Mustafa
Chen, Ying-Cheng
Jen, Hsiang-Hua
Simon, Christoph
Quantum Physics
Optics
Space Physics
Academia, governments, and industry around the world are on a quest to build long-distance quantum communication networks for a future quantum internet. Using air and fiber channels, quantum communication quickly faced the daunting challenge of exponential photon loss with distance. Quantum repeaters were invented to solve the loss problem by probabilistically establishing entanglement over short distances and using quantum memories to synchronize the teleportation of such entanglement to long distances. However, due to imperfections and complexities of quantum memories, ground-based proof-of-concept repeater demonstrations have been restricted to metropolitan-scale distances. In contrast, direct photon transmission from satellites through empty space faces almost no exponential absorption loss and only quadratic beam divergence loss. A single satellite successfully distributed entanglement over more than 1,200 km. It is becoming increasingly clear that quantum communication over large intercontinental distances (e.g. 4,000-20,000 km) will likely employ a satellite-based architecture. This could involve quantum memories and repeater protocols in satellites, or memory-less satellite-chains through which photons are simply reflected, or some combination thereof. Rapid advancements in the space launch and classical satellite communications industry provide a strong tailwind for satellite quantum communication, promising economical and easier deployment of quantum communication satellites.
title Satellites promise global-scale quantum networks
topic Quantum Physics
Optics
Space Physics
url https://arxiv.org/abs/2505.06693