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Building a fault-tolerant quantum computer will require vast numbers of physical qubits.
Comparison of mobility-limiting mechanisms in high-mobility Si 1-x
Don Monroe, Y. H. Xie, E. A. Fitzgerald, P. J. Silverman, and G. P Watson · 1993
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Influence of misfit dislocations on the surface morphology of Si 1-x
M. A. Lutz, R. M. Feenstra, F. K. LeGoues, P. M. Mooney, and J. O. Chu · 1995
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High-mobility Si and Ge structures
F. Schäffler · 1997
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Electron transport in quantum dots
L. P. Kouwenhoven, C. M. Marcus, P. L. McEuen, S. Tarucha, R. M. Westervelt, and N. S. Wingreen · 1997
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Quantum computation with quantum dots
Daniel Loss and David P. DiVincenzo · 1998
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Universal quantum computation with the exchange interaction
D. P. DiVincenzo, D. Bacon, J. Kempe, G. Burkard, and K. B. Whaley · 2000
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A review of recent MOSFET threshold voltage extraction methods
A. Ortiz-Conde, F. J. García Sánchez, J. J. Liou, A. Cerdeira, M. Estrada, and Y. Yue · 2002
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Implementing qubits with superconducting integrated circuits
Michel H. Devoret and John M. Martinis · 2004
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Differential charge sensing and charge delocalization in a tunable double quantum dot
L. DiCarlo, H. J. Lynch, A. C. Johnson, L. I. Childress, K. Crockett, C. M. Marcus, M. P. Hanson, and A. C. Gossard · 2004
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Single-shot read-out of an individual electron spin in a quantum dot
J. M. Elzerman, R. Hanson, L. H. Willems Van Beveren, B. Witkamp, L. M. K. Vandersypen, and L. P. Kouwenhoven · 2004
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Cryogenic amplifier for fast real-time detection of single-electron tunneling
I. T. Vink, T. Nooitgedagt, R. N. Schouten, L. M. K. Vandersypen, and W. Wegscheider · 2007
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Electrically driven single-electron spin resonance in a slanting Zeeman field
M. Pioro-Ladrière, T. Obata, Y. Tokura, Y.-S. Shin, T. Kubo, K. Yoshida, T. Taniyama, and S. Tarucha · 2008
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Randomized benchmarking of quantum gates
E. Knill, D. Leibfried, R. Reichle, J. Britton, R. B. Blakestad, J. D. Jost, C. Langer, R. Ozeri, S. Seidelin, and D. J. Wineland · 2008
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Modern Semiconductor Devices for Integrated Circuits
Chenming Hu · 2009
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Process technology variation
Kelin J. Kuhn, Martin D. Giles, David Becher, Pramod Kolar, Avner Kornfeld, Roza Kotlyar, Sean T. Ma, Atul Maheshwari, and Sivakumar Mudanai · 2011
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Silicon quantum electronics
Floris A. Zwanenburg, Andrew S. Dzurak, Andrea Morello, Michelle Y. Simmons, Lloyd C. L. Hollenberg, Gerhard Klimeck, Sven Rogge, Susan N. Coppersmith, and Mark A. Eriksson · 2013
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Integration of on-chip field-effect transistor switches with dopantless Si/SiGe quantum dots for high-throughput testing
D. R. Ward, D. E. Savage, M. G. Lagally, S. N. Coppersmith, and M. A. Eriksson · 2013
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Gate-count estimates for performing quantum chemistry on small quantum computers
Dave Wecker, Bela Bauer, Bryan K. Clark, Matthew B. Hastings, and Matthias Troyer · 2014
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Charge offset stability in Si single electron devices with Al gates
Neil M. Zimmerman, Chih-Hwan Yang, Nai Shyan Lai, Wee Han Lim, and Andrew S. Dzurak · 2014
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Majorana zero modes and topological quantum computation
Sankar Das Sarma, Michael Freedman, and Chetan Nayak · 2015
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Quantum error correction for quantum memories
Barbara M. Terhal · 2015
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A reconfigurable gate architecture for Si/SiGe quantum dots
D. M. Zajac, T. M. Hazard, X. Mi, K. Wang, and J. R. Petta · 2015
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Undoped accumulation-mode Si/SiGe quantum dots
M. G. Borselli, K. Eng, R. S. Ross, T. M. Hazard, K. S. Holabird, B. Huang, A. A. Kiselev, P. W. Deelman, L. D. Warren, I. Milosavljevic, A. E. Schmitz, M. Sokolich, M. F. Gyure, and A. T. Hunter · 2015
Cited alongside, same era.
Cryogenic preamplification of a single-electron-transistor using a silicon-germanium heterojunction-bipolar-transistor
M. J. Curry, T. D. England, N. C. Bishop, G. Ten-Eyck, J. R. Wendt, T. Pluym, M. P. Lilly, S. M. Carr, and M. S. Carroll · 2015
Cited alongside, same era.
Metamorphic materials for quantum computing
P. W. Deelman, L. F. Edge, and C. A. Jackson · 2016
Cited alongside, same era.
Single shot spin readout using a cryogenic high-electron-mobility transistor amplifier at sub-Kelvin temperatures
L. A. Tracy, D. R. Luhman, S. M. Carr, N. C. Bishop, G. A. Ten Eyck, T. Pluym, J. R. Wendt, M. P. Lilly, and M. S. Carroll · 2016
Cited alongside, same era.
Gate fidelity and coherence of an electron spin in an Si/SiGe quantum dot with micromagnet
Erika Kawakami, Thibaut Jullien, Pasquale Scarlino, Daniel R. Ward, Donald E. Savage, Max G. Lagally, Viatcheslav V. Dobrovitski, Mark Friesen, Susan N. Coppersmith, Mark A. Eriksson, and Lieven M. K. Vandersypen · 2016
Coherent control of individual electron spins in a two-dimensional quantum dot array
Pierre-André Mortemousque, Emmanuel Chanrion, Baptiste Jadot, Hanno Flentje, Arne Ludwig, Andreas D. Wieck, Matias Urdampilleta, Christopher Bäuerle, and Tristan Meunier · 2021
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How to factor 2048 bit RSA integers in 8 hours using 20 million noisy qubits
Craig Gidney and Martin Ekerå · 2021
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Crystalline materials for quantum computing: Semiconductor heterostructures and topological insulators exemplars
G. Scappucci, P. J. Taylor, J. R. Williams, T. Ginley, and S. Law · 2021
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Pauli Blockade in Silicon Quantum Dots with Spin-Orbit Control
Amanda E. Seedhouse, Tuomo Tanttu, Ross C.C. Leon, Ruichen Zhao, Kuan Yen Tan, Bas Hensen, Fay E. Hudson, Kohei M. Itoh, Jun Yoneda, Chih Hwan Yang, Andrea Morello, Arne Laucht, Susan N. Coppersmith, Andre Saraiva, and Andrew S. Dzurak · 2021
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Strong electron-electron interactions in Si/SiGe quantum dots
H. Ekmel Ercan, S. N. Coppersmith, and Mark Friesen · 2021
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Cited alongside, same era.
Silicon CMOS architecture for a spin-based quantum computer
M. Veldhorst, H. G. J. Eenink, C. H. Yang, and A. S. Dzurak · 2017
Cited alongside, same era.
Semiconductor quantum computation
Xin Zhang, Hai-Ou Li, Gang Cao, Ming Xiao, Guang-Can Guo, and Guo-Ping Guo · 2018
Cited alongside, same era.
Palladium gates for reproducible quantum dots in silicon
Matthias Brauns, Sergey V. Amitonov, Paul-Christiaan Spruijtenburg, and Floris A. Zwanenburg · 2018
Cited alongside, same era.
Low temperature thin films for next-generation microelectronics (invited)
Jurriaan Schmitz · 2018
Cited alongside, same era.
A crossbar network for silicon quantum dot qubits
Ruoyu Li, Luca Petit, David P. Franke, Juan Pablo Dehollain, Jonas Helsen, Mark Steudtner, Nicole K. Thomas, Zachary R. Yoscovits, Kanwal Singh, Stephanie Wehner, Lieven M. K. Vandersypen, James S. Clarke, and Menno Veldhorst · 2018
Cited alongside, same era.
A quantum-dot spin qubit with coherence limited by charge noise and fidelity higher than 99.9%
Jun Yoneda, Kenta Takeda, Tomohiro Otsuka, Takashi Nakajima, Matthieu R. Delbecq, Giles Allison, Takumu Honda, Tetsuo Kodera, Shunri Oda, Yusuke Hoshi, Noritaka Usami, Kohei M. Itoh, and Seigo Tarucha · 2018
Cited alongside, same era.
High volume electrical characterization of semiconductor qubits
R. Pillarisetty, H. C. George, T. F. Watson, L. Lampert, N. Thomas, S. Bojarski, P. Amin, R. Caudillo, E. Henry, N. Kashani, P. Keys, R. Kotlyar, F. Luthi, D. Michalak, K. Millard, J. Roberts, J. Torres, O. Zietz, T. Krähenmann, A. M. Zwerver, M. Veldhorst, G. Scappucci, L. M. K. Vandersypen, and J. S. Clarke · 2019
Cited alongside, same era.
Magnetic Gradient Fluctuations from Quadrupolar 73 Ge in Si / Si Ge Exchange-Only Qubits
J. Kerckhoff, B. Sun, B.H. Fong, C. Jones, A.A. Kiselev, D.W. Barnes, R.S. Noah, E. Acuna, M. Akmal, S.D. Ha, J.A. Wright, B.J. Thomas, C.A.C. Jackson, L.F. Edge, K. Eng, R.S. Ross, and T.D. Ladd · 2021
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Quantum logic with spin qubits crossing the surface code threshold
Xiao Xue, Maximilian Russ, Nodar Samkharadze, Brennan Undseth, Amir Sammak, Giordano Scappucci, and Lieven M. K. Vandersypen · 2022
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Fast universal quantum gate above the fault-tolerance threshold in silicon
Akito Noiri, Kenta Takeda, Takashi Nakajima, Takashi Kobayashi, Amir Sammak, Giordano Scappucci, and Seigo Tarucha · 2022
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Two-qubit silicon quantum processor with operation fidelity exceeding 99 % \%
Adam R. Mills, Charles R. Guinn, Michael J. Gullans, Anthony J. Sigillito, Mayer M. Feldman, Erik Nielsen, and Jason R. Petta · 2022
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Universal control of a six-qubit quantum processor in silicon
Stephan G. J. Philips, Mateusz T. Mądzik, Sergey V. Amitonov, Sander L. de Snoo, Maximilian Russ, Nima Kalhor, Christian Volk, William I. L. Lawrie, Delphine Brousse, Larysa Tryputen, Brian Paquelet Wuetz, Amir Sammak, Menno Veldhorst, Giordano Scappucci, and Lieven M. K. Vandersypen · 2022
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A flexible design platform for Si/SiGe exchange-only qubits with low disorder
Wonill Ha, Sieu D. Ha, Maxwell D. Choi, Yan Tang, Adele E. Schmitz, Mark P. Levendorf, Kangmu Lee, James M. Chappell, Tower S. Adams, Daniel R. Hulbert, Edwin Acuna, Ramsey S. Noah, Justine W. Matten, Michael P. Jura, Jeffrey A. Wright, Matthew T. Rakher, and Matthew G. Borselli · 2022
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Qubits made by advanced semiconductor manufacturing
A. M. J. Zwerver, T. Krähenmann, T. F. Watson, L. Lampert, H. C. George, R. Pillarisetty, S. A. Bojarski, P. Amin, S. V. Amitonov, J. M. Boter, R. Caudillo, D. Correas-Serrano, J. P. Dehollain, G. Droulers, E. M. Henry, R. Kotlyar, M. Lodari, F. Luthi, D. J. Michalak, B. K. Mueller, S. Neyens, J. Roberts, N. Samkharadze, G. Zheng, O. K. Zietz, G. Scappucci, M. Veldhorst, L. M. K. Vandersypen, and J. S. Clarke · 2022
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Mitigating impact of defects on performance with classical device engineering of scaled Si/SiGe qubit arrays
R. Kotlyar, S. Premaratne, G. Zheng, J. Corrigan, R. Pillarisetty, S. Neyens, O. Zietz, T. Watson, F. Luthi, F. Borjans, L. Lampert, E. Henry, H. George, S. Bojarski, J. Roberts, A. Y. Matsuura, and J. S. Clarke · 2022
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A quantum dot crossbar with sublinear scaling of interconnects at cryogenic temperature
P. L. Bavdaz, H. G. J. Eenink, J. van Staveren, M. Lodari, C. G. Almudever, J. S. Clarke, F. Sebastiano, M. Veldhorst, and G. Scappucci · 2022
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Methodology for an efficient characterization flow of industrial grade Si-based qubit devices
L.C. Contamin, B. Cardoso Paz, B. Martinez Diaz, B. Bertrand, H. Niebojewski, V. Labracherie, A. Sadik, E. Catapano, M. Cassé, E. Nowak, Y.-M. Niquet, F. Gaillard, T. Meunier, P.-A. Mortemousque, and M. Vinet · 2022
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Spiderweb array: A sparse spin-qubit array
Jelmer M. Boter, Juan P. Dehollain, Jeroen P. G. van Dijk, Yuanxing Xu, Toivo Hensgens, Richard Versluis, Henricus W. L. Naus, James S. Clarke, Menno Veldhorst, Fabio Sebastiano, and Lieven M. K. Vandersypen · 2022
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Toward robust autotuning of noisy quantum dot devices
Joshua Ziegler, Thomas McJunkin, E. S. Joseph, Sandesh S. Kalantre, Benjamin Harpt, D. E. Savage, M. G. Lagally, M. A. Eriksson, Jacob M. Taylor, and Justyna P. Zwolak · 2022
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Semiconductor spin qubits
Guido Burkard, Thaddeus D. Ladd, Andrew Pan, John M. Nichol, and Jason R. Petta · 2023
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Universal logic with encoded spin qubits in silicon
Aaron J. Weinstein, Matthew D. Reed, Aaron M. Jones, Reed W. Andrews, David Barnes, Jacob Z. Blumoff, Larken E. Euliss, Kevin Eng, Bryan H. Fong, Sieu D. Ha, Daniel R. Hulbert, Clayton A. C. Jackson, Michael Jura, Tyler E. Keating, Joseph Kerckhoff, Andrey A. Kiselev, Justine Matten, Golam Sabbir, Aaron Smith, Jeffrey Wright, Matthew T. Rakher, Thaddeus D. Ladd, and Matthew G. Borselli · 2023
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Shared control of a 16 semiconductor quantum dot crossbar array
Francesco Borsoi, Nico W. Hendrickx, Valentin John, Marcel Meyer, Sayr Motz, Floor van Riggelen, Amir Sammak, Sander L. de Snoo, Giordano Scappucci, and Menno Veldhorst · 2023
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Practical strategies for enhancing the valley splitting in Si/SiGe quantum wells
Merritt P. Losert, M. A. Eriksson, Robert Joynt, Rajib Rahman, Giordano Scappucci, Susan N. Coppersmith, and Mark Friesen · 2023
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