17
collaborators
2021–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
5 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Optimally learning functions in interacting quantum sensor networks | QIP 2026 | Erfan Abbasgholinejad, ▸Sean R. Muleady, Jacob Bringewatt, Yu-Xin Wang, Ali Fahimniya, Alexey Gorshkov |
| Absolutely maximal entanglement in continuous variables | QIP 2026 | ▸James Kwon, Victor Albert |
| Optimal function estimation with interacting sensor networks | QIP 2025 | Erfan Abbasgholinejad, Jacob Bringewatt, Ali Fahimniya, Sean R. Muleady, Yuxin Wang, Raphael Kaubruegger, Ana Maria Rey, Alexey Gorshkov |
| Exponential entanglement advantage in sensing correlated noise | QIP 2025 | Yuxin Wang, Jacob Bringewatt, Alireza Seif, Changhun Oh, Alexey Gorshkov |
| Spooky action of a global distance: analysis of space-based entanglement distribution for the quantum internet | QCRYPT 2021 | Sumeet Khatri, Renee A. Desporte, Manon P. Bart, Jonathan P. Dowling |
Recent experimental breakthroughs in satellite quantum communications have opened up the possibility of creating a global quantum internet using satellite links. This approach appears to be particularly viable in the near term, due to the lower attenuation of optical signals from satellite to ground, and due to the currently short coherence times of quantum memories. The latter prevents ground-based entanglement distribution using atmospheric or optical-fiber links at high rates over long distances. In this work, we propose a global-scale quantum internet consisting of a constellation of orbiting satellites that provides a continuous, on-demand entanglement distribution service to ground stations. The satellites can also function as untrusted nodes for the purpose of long-distance quantum-key distribution. We develop a technique for determining optimal satellite configurations with continuous coverage that balances both the total number of satellites and entanglement-distribution rates. Using this technique, we determine various optimal satellite configurations for a polar-orbit constellation, and we analyze the resulting satellite-to-ground loss and achievable entanglement-distribution rates for multiple ground station configurations. We also provide a comparison between these entanglement-distribution rates and the rates of ground-based quantum repeater schemes. Overall, our work provides the theoretical tools and the experimental guidance needed to make a satellite-based global quantum internet a reality. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Alexey Gorshkov | 3 |
| Jacob Bringewatt | 3 |
| Ali Fahimniya | 2 |
| Erfan Abbasgholinejad | 2 |
| Sean R. Muleady | 2 |
| Yuxin Wang | 2 |
| Alireza Seif | 1 |
| Ana Maria Rey | 1 |
| Changhun Oh | 1 |
| James Kwon | 1 |
| Jonathan P. Dowling | 1 |
| Manon P. Bart | 1 |
| Raphael Kaubruegger | 1 |
| Renee A. Desporte | 1 |
| Sumeet Khatri | 1 |
| Victor Albert | 1 |
| Yu-Xin Wang | 1 |