Bibliography
Hardware Abstractions and Noise Models
Quantum Circuits
Network Protocols
Demos
Complete References List
- and Englund, D. (2023). Zero-Added-Loss Entangled-Photon Multiplexing for Ground- and Space-Based Quantum Networks. Phys. Rev. Applied 19, 054029.
- and Guha, S. (2022). Heralded Multiplexed High-Efficiency Cascaded Source of Dual-Rail Entangled Photon Pairs Using Spontaneous Parametric Down-Conversion. Phys. Rev. Applied 17, 034071.
- Choi, H.; Pant, M.; Guha, S. and Englund, D. (2019). Percolation-based architecture for cluster state creation using photon-mediated entanglement between atomic memories, npj Quantum Information 5, 1–7.
- Fujii, K. and Yamamoto, K. (2009). Entanglement purification with double selection. Phys. Rev. A 80, 042308.
- Muralidharan, S.; Li, L.; Kim, J.; Lütkenhaus, N.; Lukin, M. D. and Jiang, L. (2016). Optimal architectures for long distance quantum communication. Scientific reports 6, 1–10.
- Naomi H. Nickerson, Y. L. and Benjamin, S. C. (2013). Topological quantum computing with a very noisy network and local error rates approaching one percent. Nature.
- Prajit Dhara, D. E. and Guha, S. (2023). Entangling quantum memories via heralded photonic Bell measurement. Phys. Rev. Research 5, 033149.
- Promponas, P.; Valls, V.; Guha, S. and Tassiulas, L. (2024). Maximizing Entanglement Rates via Efficient Memory Management in Flexible Quantum Switches. IEEE Journal on Selected Areas in Communications.
- Stefan Krastanov, V. V. and Jiang, L. (2019). Optimized Entanglement Purification. Arxiv.