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Further Reading: Chapter 28 — Photonic, Neutral Atom, and Other Approaches: The Diversity of Quantum Hardware and Why No One Has Won Yet
- Knill, E., Laflamme, R., and Milburn, G. J. "A scheme for efficient quantum computation with linear optics." Nature, 409, 46–52 (2001). — The KLM scheme.
- Aaronson, S. and Arkhipov, A. "The computational complexity of linear optics." Theory of Computing, 9(4), 143–252 (2013). — Boson sampling complexity.
- Saffman, M., Walker, T. G., and Mølmer, K. "Quantum information with Rydberg atoms." Reviews of Modern Physics, 82(3), 2313 (2010). — Rydberg atom review.
- Bluvstein, D., et al. "Logical quantum processor based on reconfigurable atom arrays." Nature, 626, 58–65 (2024). — QuEra's logical qubit demonstration.
- Loss, D. and DiVincenzo, D. P. "Quantum computation with quantum dots." Physical Review A, 57(1), 120 (1998). — Spin qubit proposal.
- Kitaev, A. Y. "Unpaired Majorana fermions in quantum wires." Physics-Uspekhi, 44(10S), 131 (2001). — Majorana zero modes.
- Awschalom, D. D., et al. "Quantum technologies with optically interfaced solid-state spins." Nature Photonics, 12(9), 516–527 (2018). — NV centers review.
- Madsen, L. S., et al. "Quantum computational advantage with a programmable photonic processor." Nature, 606, 75–81 (2022). — Xanadu's Borealis demonstration.
- Browne, D. E. and Rudolph, T. "Resource-efficient linear optical quantum computation." Physical Review Letters, 95(1), 010501 (2005). — Cluster-state approach for photonic QC.
- Zwanenburg, F. A., et al. "Silicon quantum electronics." Reviews of Modern Physics, 85(3), 961 (2013). — Silicon spin qubit review.