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One of the most formidable challenges of scaling up quantum computers is that of control signal delivery.
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D. Kienzler, Quantum Harmonic Oscillator State Synthesis by Reservoir Engineering , Doctoral Thesis , ETH Zurich (2015)
2015
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M. Brownnutt, M. Kumph, P. Rabl, and R. Blatt, Ion-trap measurements of electric-field noise near surfaces, Reviews of Modern Physics 87
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N. D. Guise, S. D. Fallek, K. E. Stevens, K. R. Brown, C. Volin, A. W. Harter, J. M. Amini, R. E. Higashi, S. T. Lu, H. M. Chanhvongsak, T. A. Nguyen, M. S. Marcus, T. R. Ohnstein, and D. W. Youngner, Ball-grid array architecture for microfabricated ion traps, Journal of Applied Physics 117
2015
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M. G. Blain, R. Haltli, P. Maunz, C. D. Nordquist, M. Revelle, and D. Stick, Hybrid MEMS-CMOS ion traps for NISQ computing, Quantum Science and Technology 6
2021
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2021
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C. Decaroli, Multi-Wafer Ion Traps for Scalable Quantum Information Processing , Doctoral Thesis , ETH Zurich (2021)
2021
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M. Ivory, W. J. Setzer, N. Karl, H. McGuinness, C. DeRose, M. Blain, D. Stick, M. Gehl, and L. P. Parazzoli, Integrated Optical Addressing of a Trapped Ytterbium Ion, Physical Review X 11
2021
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D.-I. Cho, S. Hong, M. Lee, and T. Kim, A review of silicon microfabricated ion traps for quantum information processing, Micro and Nano Systems Letters 3
2015
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L. E. de Clercq, H.-Y. Lo, M. Marinelli, D. Nadlinger, R. Oswald, V. Negnevitsky, D. Kienzler, B. Keitch, and J. P. Home, Parallel Transport Quantum Logic Gates with Trapped Ions, Physical Review Letters 116
2016
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T. Ruster, C. T. Schmiegelow, H. Kaufmann, C. Warschburger, F. Schmidt-Kaler, and U. G. Poschinger, A long-lived Zeeman trapped-ion qubit, Applied Physics B 122
2016
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J. Alonso, F. M. Leupold, Z. U. Solèr, M. Fadel, M. Marinelli, B. C. Keitch, V. Negnevitsky, and J. P. Home, Generation of large coherent states by bang–bang control of a trapped-ion oscillator, Nature Communications 7
2016
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I. Talukdar, D. J. Gorman, N. Daniilidis, P. Schindler, S. Ebadi, H. Kaufmann, T. Zhang, and H. Häffner, Implications of surface noise for the motional coherence of trapped ions, Physical Review A 93
2016
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R. Nigmatullin, C. J. Ballance, N. de Beaudrap, and S. C. Benjamin, Minimally complex ion traps as modules for quantum communication and computing, New Journal of Physics 18
2016
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H. Kaufmann, T. Ruster, C. T. Schmiegelow, M. A. Luda, V. Kaushal, J. Schulz, D. von Lindenfels, F. Schmidt-Kaler, and U. G. Poschinger, Fast ion swapping for quantum-information processing, Physical Review A 95
2017
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2017
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I. Pogorelov, T. Feldker, Ch. D. Marciniak, L. Postler, G. Jacob, O. Krieglsteiner, V. Podlesnic, M. Meth, V. Negnevitsky, M. Stadler, B. Höfer, C. Wächter, K. Lakhmanskiy, R. Blatt, P. Schindler, and T. Monz, Compact Ion-Trap Quantum Computing Demonstrator, PRX Quantum 2
2021
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M. Malinowski, Unitary and Dissipative Trapped-Ion Entanglement Using Integrated Optics , Doctoral Thesis , ETH Zurich (2021)
2021
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J. M. Stuart, Integrated Technologies and Control Techniques for Trapped Ion Array Architectures , Doctoral Thesis , Massachusetts Institute of Technology (2021)
2021
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C. Decaroli, R. Matt, R. Oswald, C. Axline, M. Ernzer, J. Flannery, S. Ragg, and J. P. Home, Design, fabrication and characterization of a micro-fabricated stacked-wafer segmented ion trap with two X-junctions, Quantum Science and Technology 6
2021
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P. Zhao, J.-P. Likforman, H. Y. Li, J. Tao, T. Henner, Y. D. Lim, W. W. Seit, C. S. Tan, and L. Guidoni, TSV-integrated Surface Electrode Ion Trap for Scalable Quantum Information Processing, Applied Physics Letters 118
2021
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2021
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2021
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2021
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2022
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2022
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E. Pelofske, A. Bärtschi, and S. Eidenbenz, Quantum Volume in Practice: What Users Can Expect from NISQ Devices, IEEE Transactions on Quantum Engineering 3
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