Fetching the paper…
Reading the bibliography…
Photonic interconnects between quantum systems will play a central role in both scalable quantum computing and quantum networking.
D. Wineland, C. Monroe, W. Itano, D. Leibfried, B. King, and D. Meekhof, “Experimental issues in coherent quantum-state manipulation of trapped atomic ions,” Journal of Research of the National Institute of Standards and Technology 103
1998
Earlier work this paper cites.
B. E. King, C. S. Wood, C. J. Myatt, Q. A. Turchette, D. Leibfried, W. M. Itano, C. Monroe, and D. J. Wineland, “Cooling the collective motion of trapped ions to initialize a quantum register,” Physical Review Letters 81
1998
Earlier work this paper cites.
D. Kielpinski, C. Monroe, and D. J. Wineland, “Architecture for a large-scale ion-trap quantum computer,” Nature 417
2002
Earlier work this paper cites.
L. Laughlin and J. M. Sasian, “Source modeling and calculation of mask illumination during extreme-ultraviolet lithography condenser design,” in International Optical Design Conference 2002 , Vol. 4832 (SPIE, 2002) pp. 283–292
2002
Earlier work this paper cites.
X. Zhao, V. L. Ryjkov, and H. A. Schuessler, “Parametric excitations of trapped ions in a linear rf ion trap,” Physical Review A 66
2002
Earlier work this paper cites.
S. L. Zhu, C. Monroe, and L. M. Duan, “Trapped ion quantum computation with transverse phonon modes,” Physical Review Letters 97
2006
Earlier work this paper cites.
H. Häffner, C. Roos, and R. Blatt, “Quantum computing with trapped ions,” Physics Reports 469
2008
Earlier work this paper cites.
S. Gerber, D. Rotter, M. Hennrich, R. Blatt, F. Rohde, C. Schuck, M. Almendros, R. Gehr, F. Dubin, and J. Eschner, “Quantum interference from remotely trapped ions,” New Journal of Physics 11
2009
Earlier work this paper cites.
M. R. Dietrich, N. Kurz, T. Noel, G. Shu, and B. B. Blinov, “Hyperfine and optical barium ion qubits,” Phys. Rev. A 81
2010
Earlier work this paper cites.
Y. Ibaraki, U. Tanaka, and S. Urabe, “Detection of parametric resonance of trapped ions for micromotion compensation,” Applied Physics B: Lasers and Optics 105
2011
Earlier work this paper cites.
R. Maiwald, A. Golla, M. Fischer, M. Bader, S. Heugel, B. Chalopin, M. Sondermann, and G. Leuchs, “Collecting more than half the fluorescence photons from a single ion,” Phys. Rev. A 86
2012
Earlier work this paper cites.
Corning, “Macor: Machinable glass ceramic for industrial applications,” (2012), available online at https://www.corning.com/worldwide/en/products/advanced-optics/product-materials/specialty-glass-and-glass-ceramics/glass-ceramics/macor.html
2012
Earlier work this paper cites.
C. Monroe and J. Kim, “Scaling the ion trap quantum processor,” Science 339
2013
Earlier work this paper cites.
P. Liebetraut, S. Petsch, J. Liebeskind, and H. Zappe, “Elastomeric lenses with tunable astigmatism,” Light: Science & Applications 2
2013
Earlier work this paper cites.
T. Harty, D. Allcock, C. Ballance, L. Guidoni, H. Janacek, N. Linke, D. Stacey, and D. Lucas, “High-fidelity preparation, gates, memory, and readout of a trapped-ion quantum bit,” Physical Review Letters 113
2014
Earlier work this paper cites.
C. Monroe, R. Raussendorf, A. Ruthven, K. R. Brown, P. Maunz, L.-M. Duan, and J. Kim, “Large-scale modular quantum-computer architecture with atomic memory and photonic interconnects,” Phys. Rev. A 89
2014
Earlier work this paper cites.
J. Keller, H. L. Partner, T. Burgermeister, and T. E. Mehlstäubler, “Precise determination of micromotion for trapped-ion optical clocks,” Journal of Applied Physics 118
2015
Earlier work this paper cites.
M. Brownnutt, M. Kumph, P. Rabl, and R. Blatt, “Ion-trap measurements of electric-field noise near surfaces,” Reviews of Modern Physics 87
2015
Cited alongside, same era.
J. Gaebler, T. Tan, Y. Lin, Y. Wan, R. Bowler, A. Keith, S. Glancy, K. Coakley, E. Knill, D. Leibfried, and D. Wineland, “High-fidelity universal gate set for 9 Be + ion qubits,” Physical Review Letters , 060505 (2016)
2016
Cited alongside, same era.
C. Ballance, T. Harty, N. Linke, M. Sepiol, and D. Lucas, “High-fidelity quantum logic gates using trapped-ion hyperfine qubits,” Physical Review Letters 117
2016
Cited alongside, same era.
J. D. Wong-Campos, K. G. Johnson, B. Neyenhuis, J. Mizrahi, and C. Monroe, “High-resolution adaptive imaging of a single atom,” Nature Photonics 10
2016
Cited alongside, same era.
P. L. W. Maunz, “High optical access trap 2.0.” Tech. Rep. SAND-2016-0796R (Sandia National Lab. (SNL-NM), Albuquerque, NM (United States), 2016)
K. Sosnova, Mixed-species ion chains for quantum networks , Ph.D. thesis, University of Maryland, College Park (2020)
2020
Later among the works it cites.
P. Wang, C.-Y. Luan, M. Qiao, M. Um, J. Zhang, Y. Wang, X. Yuan, M. Gu, J. Zhang, and K. Kim, “Single ion qubit with estimated coherence time exceeding one hour,” Nature Communications 12
2021
Later among the works it cites.
R. Srinivas, S. C. Burd, H. M. Knaack, R. T. Sutherland, A. Kwiatkowski, S. Glancy, E. Knill, D. J. Wineland, D. Leibfried, A. C. Wilson, D. T. C. Allcock, and D. H. Slichter, “High-fidelity laser-free universal control of trapped ion qubits,” Nature 597
2021
Later among the works it cites.
C. R. Clark, H. N. Tinkey, B. C. Sawyer, A. M. Meier, K. A. Burkhardt, C. M. Seck, C. M. Shappert, N. D. Guise, C. E. Volin, S. D. Fallek, H. T. Hayden, W. G. Rellergert, and K. R. Brown, “High-fidelity Bell-state preparation with 40
2021
Later among the works it cites.
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
2016
Cited alongside, same era.
I. V. Inlek, C. Crocker, M. Lichtman, K. Sosnova, and C. Monroe, “Multispecies trapped-ion node for quantum networking,” Physical Review Letters 118
2017
Cited alongside, same era.
C.-K. Chou, C. Auchter, J. Lilieholm, K. Smith, and B. Blinov, “Note: Single ion imaging and fluorescence collection with a parabolic mirror trap,” Review of Scientific Instruments 88
2017
Cited alongside, same era.
C. Robens, S. Brakhane, W. Alt, F. Kleißler, D. Meschede, G. Moon, G. Ramola, and A. Alberti, “High numerical aperture (NA = 0.92) objective lens for imaging and addressing of cold atoms,” Optics Letters 42
2017
Cited alongside, same era.
D. Yum, D. D. Munshi, T. Dutta, and M. Mukherjee, “Optical barium ion qubit,” J. Opt. Soc. Am. B 34
2017
Cited alongside, same era.
K. Wright et al. , “Benchmarking an 11-qubit quantum computer,” Nature Communications 10
2019
Cited alongside, same era.
C. Crocker, M. Lichtman, K. Sosnova, A. Carter, S. Scarano, and C. Monroe, “High purity single photons entangled with an atomic qubit,” Optics Express 27
2019
Cited alongside, same era.
S. Crain, C. Cahall, G. Vrijsen, E. E. Wollman, M. D. Shaw, V. B. Verma, S. W. Nam, and J. Kim, “High-speed low-crosstalk detection of a 171
2019
Cited alongside, same era.
C. Gidney and M. Ekerå, “How to factor 2048 bit RSA integers in 8 hours using 20 million noisy qubits,” Quantum 5
2021
Later among the works it cites.
Y. Alexeev, D. Bacon, K. R. Brown, R. Calderbank, L. D. Carr, F. T. Chong, B. DeMarco, D. Englund, E. Farhi, B. Fefferman, A. V. Gorshkov, A. Houck, J. Kim, S. Kimmel, M. Lange, S. Lloyd, M. D. Lukin, D. Maslov, P. Maunz, C. Monroe, J. Preskill, M. Roetteler, M. J. Savage, and J. Thompson, “Quantum computer systems for scientific discovery,” PRX Quantum 2
2021
Later among the works it cites.
J. M. Pino, J. M. Dreiling, C. Figgatt, J. P. Gaebler, S. A. Moses, M. S. Allman, C. H. Baldwin, M. Foss-Feig, D. Hayes, K. Mayer, C. Ryan-Anderson, and B. Neyenhuis, “Demonstration of the trapped-ion quantum CCD computer architecture,” Nature 592
2021
Later among the works it cites.
J. Schupp, V. Krcmarsky, V. Krutyanskiy, M. Meraner, T. Northup, and B. Lanyon, “Interface between trapped-ion qubits and traveling photons with close-to-optimal efficiency,” PRX Quantum 2
2021
Later among the works it cites.
M. Teller, D. A. Fioretto, P. C. Holz, P. Schindler, V. Messerer, K. Schüppert, Y. Zou, R. Blatt, J. Chiaverini, J. Sage, and T. E. Northup, “Heating of a trapped ion induced by dielectric materials,” Physical Review Letters 126
2021
Later among the works it cites.
A. L. Carter, Design and construction of a three-node quantum network , Ph.D. thesis, University of Maryland, College Park (2021)
2021
Later among the works it cites.
F. A. An, A. Ransford, A. Schaffer, L. R. Sletten, J. Gaebler, J. Hostetter, and G. Vittorini, “High fidelity state preparation and measurement of ion hyperfine qubits with I > 1 2 {I}>\frac{1}{2} ,” Physical Review Letters 129
2022
Later among the works it cites.
M. Cetina, L. Egan, C. Noel, M. Goldman, D. Biswas, A. Risinger, D. Zhu, and C. Monroe, “Control of transverse motion for quantum gates on individually addressed atomic qubits,” PRX Quantum 3
2022
Later among the works it cites.
D. Reens, M. Collins, J. Ciampi, D. Kharas, B. F. Aull, K. Donlon, C. D. Bruzewicz, B. Felton, J. Stuart, R. J. Niffenegger, P. Rich, D. Braje, K. K. Ryu, J. Chiaverini, and R. McConnell, “High-fidelity ion state detection using trap-integrated avalanche photodiodes,” Physical Review Letters 129
2022
Later among the works it cites.
S. A. Moses et al. , “A race-track trapped-ion quantum processor,” Phys. Rev. X 13
2023
Closest in time.
2023
Closest in time.
P. Drmota, D. Main, D. P. Nadlinger, B. C. Nichol, M. A. Weber, E. M. Ainley, A. Agrawal, R. Srinivas, G. Araneda, C. J. Ballance, and D. M. Lucas, “Robust quantum memory in a trapped-ion quantum network Node,” Physical Review Letters 130
2023
Closest in time.
L. Feng, Y.-Y. Huang, Y.-K. Wu, W.-X. Guo, J.-Y. Ma, H.-X. Yang, L. Zhang, Y. Wang, C.-X. Huang, C. Zhang, L. Yao, B.-X. Qi, Y.-F. Pu, Z.-C. Zhou, and L.-M. Duan, “Realization of a crosstalk-avoided quantum network node using dual-type qubits of the same ion species,” Nature Communications 15
2024
Closest in time.