The Bridge - February 2018 - 15

Quantum State Generation in Optical Frequency Combs for Quantum Computing

REFERENCES
[1] T. D. Ladd, F. Jelezko, R. Laflamme, Y. Nakamura, C. Monroe,
and J. L. O'Brien, "Quantum computers," Nature, vol. 464,
pp.45-53, 2010.

[16] J. Suo, S. Dong, W. Zhang, Y. Huang, and J. Peng, "Generation
of hyper-entanglement on polarization and energy-time based on a
silicon micro-ring cavity," Opt. Express, vol. 23, pp.3985-3995, 2015.

[2] J. L. O'Brien, "Optical quantum computing," Science, vol. 318,
pp.1567-1570, 2007.

[17] J. W. Silverstone, R. Santagati, D. Bonneau, M. J. Strain, M. Sorel, J.
L. O'Brien, and M. G. Thompson, "Qubit entanglement between
ring-resonator photon-pair sources on a silicon chip," Nat. Commun.,
vol.6, 7948, 2015.

[3] T. Udem, R. Holzwarth, T. W. and Hänsch, "Optical frequency
metrology," Nature, vol. 416, pp.233-237, 2002.
[4] N. C. Harris, D. Grassani, A. Simbula, M. Pant, M. Galli, T. Baehr-Jones,
M. Hochberg, D. Englund, D. Bajoni, and C. Galland, "Integrated
source of spectrally filtered correlated photons for large-scale quantum
photonic systems," Phys. Rev. X, vol.4, 041047, 2014.
[5] C. Reimer, L. Caspani, M. Clerici, M. Ferrera, M. Kues, M. Peccianti, A.
Pasquazi, L. Razzari, B. E. Little, S. T. Chu, D. J. Moss and R. Morandotti,
"Integrated frequency comb source of heralded single photons," Opt.
Express, vol. 22 pp. 6535-6546, 2014.
[6] S. Azzini, D. Grassani, M. J. Strain, M. Sorel, L. G. Helt, J. E. Sipe, M.
Liscidini, M. Galli, and D. Bajoni, "Ultra-low power generation of twin
photons in a compact silicon ring resonator," Opt. Express, vol. 20, pp.
23100-23107, 2012.
[7] W. Jiang, X. Lu, J. Zhang, O. Painter, and Q. Lin, "Silicon-chip source of
bright photon pairs," Opt. Express, vol. 23, pp.20884-20904, 2015.
[8] C. Reimer, M. Kues, L. Caspani, B. Wetzel, P. Roztocki, M. Clerici, Y.
Jestin, M. Ferrera, M. Peccianti, A. Pasquazi, B. E. Little, S. T. Chu, D. J.
Moss and R. Morandotti, "Cross-polarized photon-pair generation and
bi-chromatically pumped optical parametric oscillation on a chip," Nat.
Commun., vol.6, 8236, 2015.
[9] E. Hemsley, D. Bonneau, J. Pelc, R. Beausoleil, J. L. O'Brien,
and M. G. Thompson. "Photon pair generation in hydrogenated
amorphous silicon microring resonators," Sci. Rep., vol. 6,
38908, 2016.
[10] R. Wakabayashi, M. Fujiwara, K. I. Yoshino, Y. Nambu, M.
Sasaki, and T. Aoki, "Time-bin entangled photon pair generation from
Si micro-ring resonator," Opt. Express, vol. 23, pp.1103-1113, 2015.
[11] C. Reimer, M. Kues, P. Roztocki, B. Wetzel, F. Grazioso, B. E. Little,
S. T. Chu, T. Johnston, Y. Bromberg, L. Caspani, D. J. Moss, and R.
Morandotti, "Generation of multiphoton entangled quantum states by
means of integrated frequency combs," Science, vol. 351, pp.11761180, 2016.
[12] S. Ramelow, A. Farsi, S. Clemmen, A. Gaeta, D. Orquiza, K. Luke, and
M. Lipson, "Silicon-nitride integrated source of narrowband entangled
photon-pairs," Joint Annual Meeting of the Austrian Physical Society
and the Swiss Physical Society together with the Austrian and Swiss
Societies for Astronomy and Astrophysics, pp. 116, 2015.
[13] M. Fujiwara, W. Ryota, S. Masahide, and T. Masahiro, "Wavelength
division multiplexed and double-port pumped time-bin entangled
photon pair generation using Si ring resonator," Opt. Express, vol. 25,
pp. 3445-3453, 2017.
[14] D. Grassani, S. Azzini, M. Liscidini, M. Galli, M. J. Strain, M. Sorel, J. E.
Sipe, and D. Bajoni, "Micrometer-scale integrated silicon source of
time-energy entangled photons," Optica, vol.2, pp. 88-94, 2015.
[15] F. Mazeas, M. Traetta, M. Bentivegna, F. Kaiser, D. Aktas, W. Zhang, C.
Ramos, L. Ngah, T. Lunghi, E. Picholle, and N. B. Plougonven, "Highquality photonic entanglement for wavelength-multiplexed quantum
communication based on a silicon chip," Opt. Express, vol. 24,
pp.28731-28738, 2016.

[18] L. Olislager, J. Cussey, A. T. Nguyen, P. Emplit, S. Massar, J.-M. Merolla,
and K. P. Huy, "Frequency-bin entangled photons," Phys. Rev. A, vol.
82, 013804, 2010.
[19] C. Bernhard, B. Bessire, T. Feurer, and A. Stefanov,
"Shaping frequency-entangled qudits," Phys. Rev. A, vol. 88, 032322,
2013.
[20] R. B. Jin, R. Shimizu, M. Fujiwara, M. Takeoka, R. Wakabayashi, T.
Yamashita, S. Miki, H. Terai, T. Gerrits, and M. Sasaki, "Simple method
of generating and distributing frequency-entangled qudits," Quantum
Sci. Technol., vol.1, 015004, 2016.
[21] M. Kues, C. Reimer, P. Roztocki, L. Cortes, S. Sciara, B. Wetzel, Y.
Zhang, A. Cinio, S. T. Chu, B. E. Little, D. J. Moss, L. Caspani, J.
Azana, and R. Morandotti, "On-chip generation of high-dimensional
entangled quantum states and their coherent controls," Nature, vol.
546, pp. 622-626, 2017.
[22] S. Yokoyama, R. Ukai, S. Armstrong, C. Sornphiphatphong, T. Kaji, S.
Suzuki, J. Yoshikawa, H. Yonezawa, N. C. Menicucci, and A. Furusawa,
"Ultra-large-scale continuous-variable cluster states multiplexed in the
time domain," Nat. Photon. vol.7, pp. 982-986, 2013.
[23] Y. Cai, J. Roslund, G. Ferrini, F. Arzani, X. Xu, C. Fabre, N. Treps,
"Multimode entanglement in reconfigurable graph states using optical
frequency combs," Nat. Commun., vol. 8, 15645, 2017.
[24] M. Pysher, Y. Miwa, R. Shahrokhshahi, R. Bloomer, and
O. Pfister, "Parallel generation of quadripartite cluster entanglement
in the optical frequency comb," Phys. Rev. Lett., vol. 107, 030505,
2011.
[25] M. Chen, N. C. Menicucci, and O. Pfister, "Experimental realization
of multipartite entanglement of 60 modes of a quantum optical
frequency comb," Phys. Rev. Lett., vol. 112,120505, 2014.
[26] S. Gerke, J. Sperling, W. Vogel, Y. Cai, J. Roslund, N. Treps, and C.
Fabre, "Full multipartite entanglement of frequency-comb Gaussian
states," Phys. Rev. Lett., vol.114, 050501, 2015.
[27] C. Joshi, A. Farsi, and A. Gaeta, "Frequency-domain boson sampling,"
Conference on Lasers and Electro-Optics, pp. FTu1F.1, 2017.
[28] J. M. Lukens, and P. Lougovski, "Frequency-encoded photonic qubits
for scalable quantum information processing," Optica, vol. 4, pp.8-16,
2017.
[29] D. Arslanov, M. Spunei, J. Mandon, S. Cristescu, S. Persijn, and F.
Harren, "Continuous‐wave optical parametric oscillator based infrared
spectroscopy for sensitive molecular gas sensing," Laser Photonics
Rev., vol. 7, pp.188-206, 2013.
[30] J. Roslund, R. Arajo, S. Jiang, C. Fabre, and N. Treps, "Wavelengthmultiplexed quantum networks with ultrafast frequency combs," Nat.
Photon., vol.8, pp.109-112, 2014.
[31] J. Zhang and S. L. Braunstein, "Continuous-variable Gaussian analog
of cluster states," Phys. Rev. A, vol. 73, 032318, 2006.

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Table of Contents for the Digital Edition of The Bridge - February 2018

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